
==== Front
Curr Neuropharmacol
Curr Neuropharmacol
CN
Current Neuropharmacology
1570-159X
1875-6190
Bentham Science Publishers

38362904
CN-22-1672
10.2174/1570159X22666240131121032
Medicine, Neurology, Pharmacology, Neuroscience
Metabolic Reprogramming in Gliocyte Post-cerebral Ischemia/ Reperfusion: From Pathophysiology to Therapeutic Potential
Gong Lipeng 1
Liang Junjie 1
Xie Letian 1
Zhang Zhanwei 2*
Mei Zhigang 13*
Zhang Wenli 4*
1 Key Laboratory of Hunan Province for Integrated Traditional Chinese and Western Medicine on Prevention and Treatment of Cardio-Cerebral Diseases, College of Integrated Traditional Chinese Medicine and Western Medicine, Hunan University of Chinese Medicine, Changsha, Hunan 410208, China;
2 Department of Neurosurgery, First Affiliated Hospital of Hunan University of Traditional Chinese Medicine, Changsha, Hunan 410007, China;
3 Third-Grade Pharmacological Laboratory on Chinese Medicine Approved by State Administration of Traditional Chinese Medicine, College of Medicine and Health Sciences, China Three Gorges University, Yichang, Hubei 443002, China;
4 School of Pharmacy, Hunan University of Chinese Medicine, Changsha, Hunan 410208, China
* Address correspondence to these authors at the Department of Neurosurgery, First Affiliated Hospital of Hunan University of Traditional Chinese Medicine, Changsha, Hunan 410007, China; E-mail: gaoyugyyg@163.com; Key Laboratory of Hunan Province for Integrated Traditional Chinese and Western Medicine on Prevention and Treatment of Cardio-Cerebral Diseases, College of Integrated Traditional Chinese Medicine and Western Medicine, Hunan University of Chinese Medicine, Changsha, Hunan 410208, China; E-mail: meizhigang@hnucm.edu.cn; School of Pharmacy, Hunan University of Chinese Medicine, Changsha, Hunan 410208, China; E-mail: 004754@hnucm.edu.cn
09 2 2024
2024
22 10 16721696
21 8 2023
08 12 2023
13 12 2023
© 2024 The Author(s). Published by Bentham Science Publishers
2024
The Author(s)
https://creativecommons.org/licenses/by/4.0/ © 2024 The Author(s). Published by Bentham Science Publishers. This is an open access article published under CC BY 4.0 https://creativecommons.org/licenses/by/4.0/legalcode.
Ischemic stroke is a leading cause of disability and death worldwide. However, the clinical efficacy of recanalization therapy as a preferred option is significantly hindered by reperfusion injury. The transformation between different phenotypes of gliocytes is closely associated with cerebral ischemia/reperfusion injury (CI/RI). Moreover, gliocyte polarization induces metabolic reprogramming, which refers to the shift in gliocyte phenotype and the overall transformation of the metabolic network to compensate for energy demand and building block requirements during CI/RI caused by hypoxia, energy deficiency, and oxidative stress. Within microglia, the pro-inflammatory phenotype exhibits upregulated glycolysis, pentose phosphate pathway, fatty acid synthesis, and glutamine synthesis, whereas the anti-inflammatory phenotype demonstrates enhanced mitochondrial oxidative phosphorylation and fatty acid oxidation. Reactive astrocytes display increased glycolysis but impaired glycogenolysis and reduced glutamate uptake after CI/RI. There is mounting evidence suggesting that manipulation of energy metabolism homeostasis can induce microglial cells and astrocytes to switch from neurotoxic to neuroprotective phenotypes. A comprehensive understanding of underlying mechanisms and manipulation strategies targeting metabolic pathways could potentially enable gliocytes to be reprogrammed toward beneficial functions while opening new therapeutic avenues for CI/RI treatment. This review provides an overview of current insights into metabolic reprogramming mechanisms in microglia and astrocytes within the pathophysiological context of CI/RI, along with potential pharmacological targets. Herein, we emphasize the potential of metabolic reprogramming of gliocytes as a therapeutic target for CI/RI and aim to offer a novel perspective in the treatment of CI/RI.

Keywords

Ischemic stroke
cerebral ischemia/reperfusion injury
metabolic reprogramming
gliocyte
pathophysiology
oxidative stress
==== Body
pmc1 INTRODUCTION

Ischemic stroke is a leading cause of disability and death worldwide [1]; however, the clinical efficacy of recanalization therapy as a preferred option is significantly hindered by reperfusion injury [2]. Recombinant tissue plasminogen activator (rtPA), an intravenous drug for treating acute is chemic stroke, is the primary approved treatment [3, 4]. However, only a small percentage of patients benefit from this treatment, and the therapeutic time window from the onset of symptoms is short [2]. Furthermore, reperfusion therapy can cause various side effects, including excitatory amino acid release, oxidative stress, calcium ion overload, inflammatory responses, and apoptosis, collectively known as reperfusion injury [2, 5]. As the existing clinical strategies for cerebral ischemia/reperfusion injury (CI/RI) are extremely limited, there is an urgent need to explore and develop novel effective drugs to treat CI/RI. Therapies targeting gliocytes are increasingly replacing neuron-centric methods, particularly microglia and astrocytes, in preclinical studies [6-8]. However, once activated, microglia and astrocytes represent a double-edged sword in the battle between neurological injury and protection, thus complicating the course and prognosis of CI/RI. Microglia and astrocytes with M2 and A2 phenotypes exhibit anti-inflammatory, neuroprotective, and regenerative activities during the acute phase of injury. In contrast, M1 and A1 interact synergistically and are involved in neuroinflammation; excessive inflammation produces neurotoxic effects [7-9]. Additionally, glial cells, including astrocytes, NG2 cells, and microglia, proliferate and become reactive gliocytes, forming a glial scar that protects the surrounding tissue from further damage. However, glial scars prevent the reconnection of neurons [10]. Microglia and astrocytes have significant therapeutic potential due to their dual protective and destructive nature, but the exact regulatory mechanism behind the phenotypic switch has not been fully investigated (Fig. 1).

Among other effects, high rates of glycolysis and low levels of glucose oxidative metabolism due to cerebral ischemia [11], mitochondrial dysfunction, and oxidative stress due to reactive oxygen species (ROS) accumulation after reperfusion [12], causing activation of microglia and astrocytes and specific metabolic shifts in these cells [13, 14]. The expression of M2 microglia predominates in the initial phase of ischemic stroke, exerting anti-inflammatory effects, supporting tissue regeneration, and tending to utilize energy from mitochondrial oxidative phosphorylation (OXPHOS). However, later in disease progression, metabolism shifts toward lactate-driven glycolysis and significant expression of M1 microglia, which exacerbates neuroinflammation [15-17]. Besides the synergistic effect of astrocytes and microglia in neuroinflammation, metabolic coupling between astrocytes and neurons is critical for neuronal survival after ischemia [18]. Nevertheless, after CI/RI, the lactate-driven glycolytic flux of astrocytes is increased, OXPHOS activity is decreased [19], and glycogen breakdown is impaired [20], factors that may exacerbate neuronal injury. Metabolic reprogramming is an active process that can regulate stem cells, cell differentiation, and reprogramming [21]. Regulating metabolic reprogramming promises to transform microglia and astrocytes into beneficial phenotypes, making this an important area for future stroke research.

This review summarizes the current mechanisms of metabolic reprogramming in astrocytes and microglia, focusing on CI/RI. We highlight existing studies identifying potential molecular targets for metabolic reprogramming in the CI/RI treatment.

2 METABOLIC PATHWAYS AND REPROGRAMMING IN MICROGLIA

Metabolic reprogramming is a process by which cells upregulate various metabolic pathways to alter their phenotype, balance energy, and building-block requirements. A typical example is the Warburg effect in tumor cells, in which most cancer cells convert glucose into lactate via aerobic glycolysis instead of completely oxidizing it in the tricarboxylic acid (TCA) cycle [22]. Recent studies have demonstrated that activated microglia can undergo cytoskeletal changes, functional phenotypic changes, and cytokine production by reprogramming their cellular metabolism [23]. Specifically, studies have depicted that microglia prefer glucose oxidation [15] and fatty acid oxidation [24] under anti-inflammatory stimuli, while glycolysis [16] and fatty acid production [25] occur in response to proinflammatory stimuli. Recently, amino acids have also been discovered to regulate microglial functions [15]. Altering specific metabolic profiles with drugs and other agents may inhibit microglial phenotypic transformation or induce microglia to adopt favorable phenotypes. We first discuss the mechanisms of metabolic transformation of microglia discovered in various central nervous system (CNS) diseases and then discuss the metabolic reprogramming mechanisms and possible therapeutic targets in CI/RI. Despite the different etiologies of various CNS diseases, the metabolic reprogramming process of microglia is almost comparable [21], which can serve as a reference for exploring the metabolic transformation mechanisms of microglia in CI/RI.

2.1 Microglial Glucose Metabolism in Health and Disease

The CNS uses glucose as a primary fuel source for energy production. Microglia can metabolize glucose to fuel glycolysis and OXPHOS, as evidenced by their ability to express the required genes [26]. Following glucose uptake by microglia, pyruvate and two ATP molecules are generated via the glycolytic pathway, where pyruvate can be further converted to lactate or acetyl-coenzyme A (acetyl-CoA), subsequently entering the TCA cycle for further oxidation. Finally, electron transfer through the electron transfer chain terminates mitochondrial OXPHOS and generates significant ATP molecules. Existing research demonstrates that microglia rely heavily on glucose metabolism under both healthy and pathological conditions [18].

2.1.1 Aerobic Glycolysis Activation in Pro-inflammatory Microglia

Infection or injury activates microglial cells to the proinflammatory phenotype, which produces proinflammatory mediators and promotes inflammation, neurotoxicity, and overexpression of glycolysis-related genes [27]. To support proinflammatory functions, microglial metabolism shifts from OXPHOS to glycolysis in the resting state [28]. First, switching metabolism to glycolysis allows microglia to produce ATP more rapidly at the expense of some efficiency [29]. Second, this reduces the amount of pyruvate entering the TCA cycle, which contributes to the production of nitric oxide (NO) and interleukin (IL)-1 [30], and the NO produced inhibits pyruvate dehydrogenase (PD), which in turn prevents pyruvate from entering the TCA cycle [31]. In addition, the mitochondrial electron transport chain can be impaired by an excess of NO, directly lowering OXPHOS levels [32]. Finally, increased glycolysis levels lead to the production of ROS and reactive nitrogen species (RNS), which also contribute to the bactericidal effect [33].

Mechanistically, microglia upregulate glucose transporter protein 1 (GLUT1) gene expression when activated, resulting in a substantial increase in glucose uptake and glycolytic metabolism in microglia [26]. Research has displayed that the major molecular mechanism regulating glycolysis in microglia is the phosphatidylinositol 3-kinase (PI3K)-AKT-mammalian target of rapamycin (mTOR)-hypoxia-inducible factor-1α (HIF-1α) axis [34-36]. The PI3K-AKT axis increases the conversion of pyruvate to lactate [37], and activated AKT can contribute to mTOR phosphorylation and ultimately upregulate HIF-1α levels, an important protein that regulates glycolysis [38, 39]. HIF-1α induces the expression of glycolysis-regulating enzymes such as hexokinase (HK) 2, phosphoglycerate kinase 1, and lactate dehydrogenase A [40]. AMP-activated protein kinase (AMPK)-mTOR-HIF-1α is also an important regulatory pathway; however, phosphorylated AMPK negatively regulates mTOR [41]. In addition, another primary regulator of glycolysis is thought to be 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase (PFKFB) 3 [42], which is responsible for phosphofructokinase (PFK)1 activation. PFK1 regulates the conversion of fructose-6-phosphate to fructose-1,6-bisphosphate and is activated by fructose-2,6-bisphosphate (F-2,6P) generated by PFKFB3 activity [43]. Reportedly, IFN-γ + lipopolysaccharide (LPS) + amyloid β-protein (Aβ) treatment of microglia leads to an increase in PFKFB3 levels that parallels the shift in glycolysis [44, 45], and IFN-γ + Aβ also increases glycolysis in microglia, accompanied by an increase in PFKFB3, HK2, and pyruvate kinase M2(PKM2) [46], while LPS+ Aβ-induced glycolysis is inhibited by the PFKFB3 inhibitor 3PO [47]. This strongly suggests that increased PFKFB3 levels may be another important mechanism of proinflammatory microglia-driven glycolysis. Toll-like receptor 4 (TLR4) is critical for microglial activation and regulation of neuroinflammation. TLR4 activation leads to gluconeogenic reprogramming of microglia and has been demonstrated to increase lactate production and inflammatory factor secretion, inhibit succinate dehydrogenase (SDH) activity, and disrupt the TCA cycle [48]. Moreover, alpha-synuclein was recently revealed to control the glycolytic reprogramming of microglia and activate their migratory ability, which is dependent on PKM2 [49]. However, the exact mechanism has not been fully elucidated and requires further investigation.

2.1.2 PPP Activation and OXPHOS Reduction in Pro-inflammatory Microglia

The TCA cycle in inflammatory microglia exhibits enzymatic breakpoints in SDH and isocitrate dehydrogenase [50], which not only accumulates metabolites but also upregulates glucose flux via the pentose phosphate pathway (PPP) [51]. More triphosphopyridine nucleotide (NADPH) is produced via PPP, which provides intermediates for fatty acid and nucleotide synthesis and promotes inflammation through ribose production and amino acid synthesis [52], all of which contribute to inflammatory gene expression and cytokine release. ROS can be produced by the multicomplex enzymatic protein NADPH oxidase (NOX), which uses NADPH as a cofactor and catalyzes the production of superoxide anions [51, 53]. NOX-derived ROS plays a crucial role in regulating immunological responses, mitogen-activated protein kinase (MAPK) activation, and microglial phagocytosis [33, 54], and a recent study has demonstrated that NOX4 promotes the glycolytic process via ROS, thereby promoting M1 polarization of microglial cells, exacerbating the inflammatory response, and increasing the release of inflammatory factors [55]. Moreover, glucose-6-phosphate dehydrogenase (G6PD), the first enzyme and rate-limiting enzyme of PPP, can activate the downstream nuclear factor kappa-B (NF-кB) signaling pathway and cause proinflammatory polarization of microglia [56].

Reduction of OXPHOS activity in the mitochondria is also an important component of reprogramming glucose metabolism in microglia. In response to inflammatory stimuli, microglial mitochondria divide and fuse [48], leading to a reduction in the accumulation of TCA cycle products and respiratory chain electron transport by reducing the activities of succinate dehydrogenase and cytochrome c oxidase. These effects ultimately decrease the metabolic flux of OXPHOS, regulate the stability of HIF-1α, and increase cytokine secretion [57].

In conclusion, microglia increased glycolytic and PPP activity and decreased mitochondrial OXPHOS capacity in response to various inflammatory stimuli.

2.1.3 Enhancement of Mitochondrial OXPHOS in Anti-inflammatory Microglia

When stimulated with anti-inflammatory stimuli, such as IL-4 and IL-13, primary cultured mouse microglia and BV2 microglia maintain high rates of oxidative glucose metabolism and a metabolic rate equivalent to that of unstimulated cells [58]. Moreover, less lactate is produced by BV2 microglia after IL-4 activation, suggesting that glycolytic metabolism is suppressed [41]. Anti-inflammatory drugs that activate microglia decrease the flux of PPP, thereby regulating cellular NADPH levels and decreasing ROS levels [59]. This suggests that anti-inflammatory microglia maintain OXPHOS rather than glycolysis for energy production [44]. Maintaining a high level of OXPHOS allows for more effective substrate consumption by microglia to obtain more ATP. However, the rate of energy production is not as fast as glycolysis, which is more beneficial for the long-term functional activities of microglia, such as exerting long-lasting neuroprotective effects and long-term wound healing processes and releasing trophic factors after injury. In these activities, microglia must maintain high membrane fluidity for complete phagocytosis and a significant amount of energy is required for these tasks [57].

Itaconate is a novel, therapeutically promising innate immunity agent found in macrophages and has recently been found to possess important anti-inflammatory properties. The expression of immune response gene 1 (IRG1) is enhanced following metabolic reprogramming of macrophage activation, which increases glycolysis and catalyzes the decarboxylation of cis-aconite to itaconate in the tricarboxylic acid cycle. However, in brain sections lacking microglia, IRG1 protein levels are significantly reduced, demonstrating the importance of microglia as a source of itaconate in the brain [60]. Itaconate significantly reduces IL-1 production and SDH activity, or it can activate nuclear factor erythroid 2-related factor 2 (Nrf2) by alkylating Kelch-like ECH-associated protein 1 (Keap1) [61, 62]. In addition, itaconate can control immunological effects and suppress the M1 polarization of microglia via the Nrf2/heme oxygenase-1 (HO-1) pathway [63, 64]. Interestingly, the overall effect of endogenous itaconate on microglia is anti-inflammatory, although the inhibitory effect of itaconate on SDH leads to succinate formation. Further mechanisms should be investigated.

Notably, Dickkopf (DKK) 3, a secretory glycoprotein, plays an important role in promoting cell survival by suppressing superoxide-producing enzymes and suppressing inflammation [65]. DKK3 is an emerging target in the field of stroke, and DKK3 is thought to be potentially neurotoxic in cerebral ischemia as an inhibitor of Wnt/β-catenin signaling [66]. However, DKK3 upregulation in hemorrhagic stroke [67] and neuropathic pain [68] has been reported to attenuate neuroinflammation and induce microglial polarization from M1 to M2 [68]; however, the mechanism by which DKK3 induces microglial polarization is unclear.

In conclusion, the current data suggest that anti-inflammatory microglia are more predisposed to OXPHOS, although the specific mechanism of microglial polarization toward the M2 phenotype has not been fully elucidated by previous studies.

2.1.4 Inhibition of Microglial Aerobic Glycolysis as Therapeutic Approaches in CI/RI

CI/RI-induced metabolic abnormalities are characterized by the accumulation of glucose and glycolytic intermediates, as depicted by metabolomic analysis [69]. Following cerebral ischemia, the hypoxic microenvironment promotes a shift from oxidative phosphorylation to glycolysis in the microglia. This contributes to microglia exhibiting proinflammatory responses, expressing proinflammatory cytokines, and triggering bactericidal activities to adapt to the hypoxic environment. After reperfusion, oxidative phosphorylation metabolism is temporarily restored in the early phase due to the spontaneous recovery of brain function [70]. However, several mechanisms, including an increase in oxygen radicals and other harmful factors and a significant increase in the concentration of glycolytic products, impair the metabolic function of the reperfusion zone [12], which ultimately promotes proinflammatory activation of microglia and exacerbates neuroinflammation. According to our review and summary of relevant studies [71-74], early microglial glycolytic reprogramming can be suppressed to limit excessive microglial activation and, consequently, microglial proinflammatory effects. This may also effectively attenuate microglia-induced neuronal cell death and thus be neuroprotective [75], which is a beneficial strategy for alleviating CI/RI.

The hexokinase family is the first glycolytic pathway rate-limiting enzyme [76]. Li et al. indicated that the neuroinflammatory responses triggered by cerebral ischemia injury can be successfully reduced by targeted HK2 suppression in microglia of male rats with middle cerebral artery occlusion (MCAO) [71]. Mechanistically, HK2 overexpression causes acetyl-coenzyme A accumulation. Subsequently, HK2 can affect the upstream effectors of histone acetylation, including the activities of histone acetylases and deacetylases and, finally, the transcriptional regulation of IL-1 [77]. Moreover, CX3CL1 and its receptor CX3CR1 are crucial for the normal execution of immunological tasks by microglia under physiological and pathological conditions [78]. CX3CL1 inhibits microglia-mediated neuroinflammatory responses and has neuroprotective effects in cerebral ischemic injury [78, 79]. Specifically, CX3CL1 promotes the in vivo and in vitro development of microglia to an anti-inflammatory phenotype while switching metabolism from glycolytic to oxidative pathways by upregulating OXPHOS-related genes and downregulating glycolytic metabolism-related genes [78].

Moreover, recent studies have displayed that chemokine-like factor 1 (CKLF1), an ischemia-induced expression protein, promotes proinflammatory activation and phagocytosis of microglia upon acute exposure by increasing their glycolytic metabolism, which is dependent on the AMPK/mTOR pathway. However, repeated administration of CKLF1 did not activate microglia, which are characterized by decreased cytokine production, phagocytosis, and glycolytic activity. This suggests that microglia acquire an immune tolerance state and that short-term blockade of CKLF1 activity improves long-term locomotor function of mice after stroke [72]. Consequently, the dual response triggered by CKLF1 in microglia may be a critical component of the inflammatory response after stroke. Dichloroacetic acid (DCA), which is known to inhibit the mitochondrial enzyme pyruvate dehydrogenase kinase (PDK), can improve oxidative glucose metabolism by increasing the pyruvate flux from the cytoplasm to mitochondria and promoting pyruvate dehydrogenase (PDH) activity [73]. In rats with acute cerebral ischemia, concomitant treatment with DAC and pyruvate reduced neuronal mortality and oxidative stress by inhibiting proinflammatory activation and improving the basal metabolic activity of microglia in the ischemic area [74]. Moreover, salvianolic acid C inhibited microglial activation of TLR4-NOD-like receptor thermal protein domain-associated protein 3 (NLRP3)-NF-кB signaling and glycolysis, preventing M1 polarization and neurotoxic effects [80]. One study found that inhibiting microglial Na/H exchanger (NHE1) increased oxidative phosphorylation, immune metabolism, and phagocytosis function, all associated with tissue remodeling and cognitive function recovery after stroke [81] (Fig. 2).

2.1.5 Improvement of Microglial PPP may Provide Neuroprotection in CI/RI

Although already highlighted in previous sections that proinflammatory microglia exhibit an increased PPP flux as one of their metabolic features, this does not necessarily mean that an increased PPP flux negatively affects the CI/RI pathological process. Post-reperfusion, microglia-mediated moderate inflammation supports the natural healing process [82], while heightened PPP flux attenuates oxidative damage to microglia, providing protection. The human oncogene TP53 is essential for controlling cellular glucose metabolism [83]. Studies have indicated that TP53-induced glycolysis and apoptosis regulator (TIGAR) improved microglial pyroptosis after CI/RI by reducing intracellular levels of F-2,6-P, decreasing PFK1 activity and flux through the major glycolytic pathway, redirecting microglial glucose metabolism to PPP, increasing production of reduced glutathione to counteract oxidative stress, and reducing reperfusion injury [34, 84, 85]. Mechanistically, F-2,6-P inhibits PPP [86], but TIGAR can act as a fructose-2,6-bisphosphatase and catalyze the conversion of F-2,6-P to fructose-6-phosphate. Consequently, TIGAR channels cellular glucose metabolism via PPP rather than glycolysis [84, 87].

Moreover, the PPP metabolite NADPH has antioxidant and anti-inflammatory properties [88]. It increases intracellular NADPH levels and the ratio of glutathione/oxidized glutathione after oxygen/glucose deprivation/reoxygenation (OGD/R) and decreases microglial ROS levels when exogenous NADPH is administered [34, 89]. NADPH has also been shown to protect neurons from CI/RI [89, 90]. G6PD, the key cytoprotective enzyme of PPP, has been revealed to have a neuroprotective effect during cerebral ischemia by effectively boosting neuronal PPP metabolism [91]. However, the available evidence does not support the therapeutic effectiveness of G6PD upregulation in microglia during CI/RI. Conversely, G6PD inhibition and silencing have been demonstrated to increase LPS-induced ROS production and NF-кB activation while decreasing proinflammatory activation of microglia and attenuating inflammatory responses in Parkinson's disease. This is because microglia with high G6PD activity or expression can produce excessive NADPH, which is an abundant substrate for overactivated NOX, thereby producing excessive ROS [57]. The exact functional state of microglia at different stages of the pathological process should be considered, as PPP flow in microglia under different pathological conditions does not have the same impact on pathological outcomes. However, this must be further examined and validated through further investigation.

2.2 Amino Acids Metabolism in Microglia

Amino acids are key immune system components and precursors of CNS neurotransmitters [92]. Succinate is a metabolite involved in the TCA cycle, and succinate accumulation in microglia during inflammation upregulates proinflammatory gene expression and mitochondrial ROS production [93, 94]. Glutamine uptake leads to conversion to glutamate by glutaminase. Subsequently, glutamate is processed by glutamate dehydrogenase to α-ketoglutarate, an essential TCA cycle metabolite. This α-ketoglutarate then enters the TCA cycle to produce succinate [95]. Alternatively, glutamate is converted to gamma-aminobutyric acid (GABA), which is then used to produce succinate [95]. Both metabolic processes increase the succinate concentration in microglia. As SDH, the enzyme that links the urea and TCA cycles, is deactivated, metabolic substrates that divert the urea cycle are also increased in proinflammatory microglia. In contrast, blocking aspartate aminotransferase, a key enzyme in the arginosuccinate shunt, reduces NO and IL-6 production [49]. Recent research suggests that amino acid metabolism, particularly glutamine metabolism [51, 96], influences the microglial phenotype.

2.2.1 Reduction of Intracellular Glutamine on Microglia Promotes Neurotoxic Effects

Glutamate, a deaminated derivative of glutamine, is the major excitatory neurotransmitter in the CNS [97, 98]. In vivo, studies have demonstrated the metabolic flexibility of microglia [51], which, upon glucose deprivation, can take up glutamine via the recombinant sodium-coupled neutral amino acid transporter (SNAT) 1 and switch to glutaminolysis in an mTOR-dependent manner. This metabolic reprogramming effectively reduces the proinflammatory activation of microglia, preserves the bioenergetic function of microglial mitochondria after hypoxia and glucose deprivation [96], and attenuates microglia-mediated inflammatory responses [51]. However, interestingly, mTOR controls the transition from glucose to glutamine metabolism, while glutamine controls mTOR [99, 100].

The process by which glutamate is consumed and converted to nontoxic glutamine via glutamine synthetase (GS) and glutamate transporter 1(GLT-1) [22] is generally associated with astrocytes [57]; however, microglia also possess this ability [101]. Therefore, it has been suggested that microglia can eliminate extracellular excessive glutamate (converting it to glutamine) [102], which may be related to the microglial cell response to inflammatory stimuli. Reportedly, GS contributes to simple glutamine synthesis and helps regulate microglial proinflammatory activity and metabolic conversion. In a model of autoimmune encephalomyelitis, Palmieri et al. [103] discovered that GS expression was significantly increased in LPS-stimulated microglia, the glutamine/glutamate ratio was imbalanced when GS activity was inhibited, and glutamine homeostasis was dysregulated, resulting in a significantly increased inflammatory response. Moreover, GS inhibition may decrease the ability of active microglia to absorb glucose [103]. This finding suggests that a reduction in intracellular glutamine may promote neurotoxic effects.

2.2.2 Extracellular Glutamine Increases NO Formation in Microglia

Conversely, Jayasooriya et al. [104] discovered that extracellular glutamine increases the expression of inducible nitric oxide synthase (iNOS) and NO formation in microglia. The phosphorylation of extracellular regulatory protein kinases (ERK) upregulates SNAT1 and SNAT2 in the presence of extracellular glutamine and LPS stimulation, thereby increasing glutamine uptake and NO formation in microglia [104]. In fact, the role of NO in the brain is highly complex. In particular, physiological amounts of NO are neuroprotective [105], and NO is essential for human physiology as an intracellular and extracellular messenger molecule [106]. However, NO synthesized and released by microglia via iNOS has been depicted to be an important mechanism for promoting neuroinflammation [107, 108]. Moreover, under various pathological conditions, including cerebral ischemia, large amounts of NO are produced in the brain because of induced expression of iNOS [109], and superoxide, such as ROS, can quench NO, thus quenching the bioavailability and action of NO [110]. However, the study by Jayasooriya et al. is not representative of real brain environments; therefore, it is unknown whether glutamine-mediated NO formation from glutamine has deleterious effects on the CNS due to the complexity of NO function.

Existing evidence suggests that intracellular and extracellular glutamine have different effects on microglia. It is important to understand how GS and related metabolic enzymes are specifically activated at different concentrations of extracellular and intracellular glutamine. This may depend on the regulation of intracellular glutamine metabolism or its relationship with different pathological conditions in the CNS [111]. Additionally, there are limited studies on glutamine metabolism in microglia under anti-inflammatory conditions, necessitating the development of more detailed metabolic mechanisms.

2.2.3 Arginine and Other Amino Acids

One of the characteristic features of M2 microglia is the high expression of arginase 1 (Arg-1) [112]. iNOS and Arg-1 are enzymes that control microglial cell polarization and operation [113], and both use arginine as a substrate. The Arg-1 enzyme converts arginine to proline and polyamide, which are required for tissue repair and remodeling during wound healing [114]. In contrast, iNOS promotes M1 microglial polarization, secretion of inflammatory cytokines, and catalyzes the NO formation from arginine [115]. Studies have shown that arginine suppresses M1 microglial polarization by blocking HIF-1/LDHA signaling [116] and dampens excessive inflammatory responses [117], suggesting that arginine may have therapeutic significance as a substrate for iNOS and Arg-1 metabolism.

Glycine has neuroprotective effects in various disease models, including ischemic stroke, hypoxia, and cerebral hemorrhage [118]. Liu et al. demonstrated that glycine therapy reduced ischemia-induced inflammation and enhanced M2 microglial polarization [119]. Similarly, Chen et al. reported that homocysteine could cause brain damage via the Janus family tyrosine kinase 2 (JAK2)/signal transducer and activator transcription (STAT)3 pathway by activating microglia in MCAO and producing inflammatory cytokines including TNF-α and IL-6 [120]. The effect of branched-chain amino acids (BCAA) on microglia is also noteworthy, as demonstrated by Simone et al., who demonstrated that high-dose BCAA treatment altered the microglial response to LPS activation [121]. Specifically, LPS-induced levels of NO, IL-1, and TNF-α were significantly reduced in the M1 phenotype, while other M2-associated genes, such as IL-10 and MRC-1, were upregulated, suggesting that the activation pattern at high BCAA levels favored the M2 phenotype. However, there was no corresponding increase in Arg-1 mRNA expression or activity, suggesting that high BCAA therapy does not cause microglia to adopt the full M2 phenotype [121].

2.2.4 Glutaminase 1, a Potential Therapeutic Target for CI/RI

Disturbance of amino acid metabolism, especially the abnormally high concentrations of excitatory amino acids, is involved in the pathological process following CI/RI [122]. Glutaminase is an enzyme that deamidates glutamine hydrolytically into glutamate and ammonium ions. The well-known pathogenic effects of glutaminase are its glutamine-mediated toxic effects, first documented in 1957 [123]. Since then, glutaminase overexpression has been closely associated with acute brain disease or trauma [124]. Glutaminase 1 overexpression promotes microglial activation and exacerbates neuroinflammation and secondary brain injury in a mouse model of acute cerebral ischemia; this effect could be reduced by the glutaminase 1 inhibitor CB839. Its mechanism of action may be closely related to the release of proinflammatory exosomes [124]. This suggests that the clinical use of glutaminase 1 inhibitors is important for treating neuroinflammation. Moreover, glutaminase 1 may control microglial activation through intracellular processes. One proposed explanation is that glutaminase 1 functions as a mitochondrial enzyme that controls ROS production by regulating the ratio of two metabolites downstream of glutamate degradation, α-ketoglutarate and succinate, and that ROS activates microglia by promoting oxidative stress and activating signaling pathways such as the HIF-1α and NF-кB pathways [124].

Chen et al. found that arginine reduced proinflammatory markers and increased anti-inflammatory markers in microglia following CI/RI [116]. This neuroprotective effect is achieved by blocking the HIF-1α/LDHA pathway to reduce the neurotoxicity caused by excessive inflammatory responses. Liu et al. [119] reported that glycine suppressed NF-кB p65 and HIF-1α by downregulating phosphatase and tensin homolog deleted on chromosome 10 (PTEN) to activate the PI3K/AKT pathway.

2.3 Fatty Acid Metabolism in Microglia

Fatty acids are essential components of membrane lipids and an important source of energy reserves in all living organisms [125]. Fatty acids are classified into three types based on their number of double bonds: saturated fatty acids (SFAs), polyunsaturated fatty acids (PUFAs) with many double bonds, and monounsaturated fatty acids (MUFAs). When exposed to pathogenic stimuli, microglia undergo a series of changes, including cytokine release, ROS generation, chemotaxis, and pseudopod formation, which form phagocytic vesicles. All these changes require the provision of energy or biofilm expansion, which are both enabled by using lipids.

Studies have revealed that resting microglia express lipid transport proteins and several key lipid metabolism genes, including fatty acid oxidase and lipoprotein lipase (LPL) [126-130]. Transcriptional analysis of microglia isolated from Alzheimer's disease patients and mice revealed significant gene mutations related to fatty acid oxidation in microglia [131]. Single-cell sequencing revealed that microglia were significantly concentrated in areas near Aβ plaques and that apolipoprotein E (ApoE) gene expression dramatically increased when microglia were activated [132]. This evidence supports that reprogramming of fatty acid metabolism is involved in microglial activation. Moreover, when microglia are exposed to external stimuli, such as apoptotic cells or myelin remnants, lipids may act as signaling molecules to stimulate phagocytosis in microglia [130]. Therefore, fatty acids are thought to play a crucial role in the metabolism and function of microglia.

2.3.1 Fatty Acid Metabolic Profiles in Microglia of Various Phenotypes

Existing research suggests that phenotypic M2 polarization can be generated in microglia and macrophages, promoting fatty acid uptake and oxidation [27] in these cells to enhance mitochondrial biosynthesis [50]. Mechanistically, microglia can express long-chain fatty acid acetyl-CoA synthase, which catalyzes the production and subsequent conversion of fatty acid acetyl-CoA via the β-oxidation of fatty acids that enter the TCA cycle to be used as fuel. One of the prominent features of M2 is the high expression of LPL, the rate-limiting enzyme that hydrolyzes triglyceride-rich lipoproteins and produces free fatty acids. Bruce et al. found that increased LPL activity was associated with higher fatty acid uptake and oxidation in M2 [24]. They discovered that LPL-deficient microglia decreased lipid uptake, while genes associated with the M2 phenotype, including Arg-1 and YM-1, were significantly downregulated in microglia. These cells also polarized to a proinflammatory phenotype characterized by iNOS, the expression of inflammatory cytokines, and a metabolic switch to glycolysis. Conversely, the alternate activation phenotype of LPL-expressing cells was maintained and included increased Arg-1 expression, insulin-like growth factor-1 (IGF-1) production, and fatty acid oxidative activity [24]. This suggests that microglia increase LPL expression to increase fatty acid oxidation and modulate M2 polarization.

Moreover, in a rat model, IFN-β administration decreased proinflammatory activation of microglia and reduced ROS and lipid peroxidation, which was associated with a shift in metabolic preference toward fatty acid oxidation [133]. L-carnitine, which helps in fatty acid transport to mitochondria, has also been shown to reverse microglia-triggered neuroinflammation [134]. It has been hypothesized that downstream activation of PPAR-γ and PPARγ-coactivator-1 (PGC-1β) induces fatty acid oxidation and mitochondrial biosynthesis, two metabolic pathways that lead to an anti-inflammatory phenotype in microglia via mechanisms possibly mediated by STAT6 activation [135, 136].

In contrast, proinflammatory microglia crank up genes involved in fatty acid production in response to proinflammatory stimuli, such as LPS [25]. Regarding metabolism, citric acid is first exported from the mitochondria to the cytoplasm by citric acid carriers, where it is degraded by the appropriate enzymes to acetyl-CoA, which may be a crucial building block for fatty acid synthesis [137]. Second, inflammatory stimulation increases microglial mTOR activity, which promotes cellular lipid metabolism by interacting with numerous lipid-associated proteins, including SREBP-1 and PPAR-γ [138]. Moreover, the increased NADPH induced by the high PPP flux of M1 is used as a cofactor for fatty acid formation, which ultimately promotes the expansion of the endoplasmic reticulum and Golgi apparatus to support cytokine release [139]. Finally, malonyl-CoA, an important metabolite, is increased in LPS-stimulated microglia; one of its key functions is to prevent the binding of fatty acids with carnitine in the cytoplasm by controlling carnitine acyltransferase [140]. Fatty acids that cannot bind to carnitine cannot enter the mitochondria for fatty acid oxidation, resulting in mitochondrial OXPHOS downregulation [141].

2.3.2 PUFAs Induce an Anti-inflammatory Phenotype in Microglia

Phagocytosis is another important function of microglia that clears apoptotic cells, cell debris, and infections, with lipids acting as important signaling molecules [142, 143]. It has been demonstrated that PUFA can induce an anti-inflammatory or phagocyte-like phenotype in microglia [130], and lipidomic analysis [144] has depicted that oleate stimulates PUFA formation in microglia while upregulating cluster of differentiation 36 (CD36) expression. Nuclear PPAR-γ, an important switch site for anti-inflammatory responses that can be activated by fatty acids [145], can also regulate CD36 expression. Treatment with n-3 PUFAs reduced the growth of astrocytes and microglia in the striatum and substantia nigra in a mouse model of Parkinson's disease and protected the dopaminergic system in the striatum by preventing neuroinflammation and oxidative stress [146].

Mechanistically, PUFAs can inhibit lipogenesis and glycolysis by downregulating the genes involved in glucose uptake and lipid synthesis in cells. This changes the metabolic pattern of cells from glycolysis, fatty acid synthesis, and fatty acid storage to OXPHOS [147]. Docosahexaenoic acid (DHA) and eicosapentaenoic acid (EPA) can also limit the production of microglial proinflammatory mediators and enhance microglial phagocytosis by upregulating M2 and downregulating M1 signature genes such as TNF-α and IL-1 to promote M2 polarization [148]. DHA regulates inflammation within the natural range and contributes to defining neuronal function in the CNS. The brain microenvironment of DHA-deficient animals displays increased production of proinflammatory molecules, a substantial increase in the cortical microglia count, larger somas, and impaired M2 anti-inflammatory properties [149]. DHA can attenuate LPS-induced inflammation by promoting liposome production, interacting with microglial proinflammatory activity, and restoring mitochondrial function [150]. Notably, long-chain acyl-CoA synthetase 6 (Acsl6) plays an important role in DHA accumulation in the brain [151]. In vivo studies have demonstrated that Acsl6-deficient mice have increased microglial activation and altered glutamate metabolism, exacerbating neuroinflammatory responses in the brain, whereas Acsl6-deficient tissues have fewer DHA-containing lipids [152].

2.3.3 SFAs Trigger Pro-inflammatory Responses in Microglia

Extracellular SFA has been shown to activate microglia and trigger proinflammatory responses [142, 152, 153]. Button et al. pretreated microglia with palmitic acid, stearic acid, and oleic acid and found that microglia secreted matrix metalloprotein (MMP)-9 activity and secretion of the proinflammatory cytokine IL-6 increased after LPS stimulation [154]. This suggests that extracellular SFA and MUFA may increase the proinflammatory invasive capacity of microglia. Interestingly, TNF-α expression in microglia significantly increased in cell cultures pretreated with MUFA, whereas it was altered negligibly after treatment with SFA [154]. Similarly, saturated fatty acids, including palmitic acid and stearic acid, can enhance microglial proinflammatory activation by activating TLR4 and NF-кB signaling pathways and increasing ROS and NO [142, 152, 153]. Moreover, following proinflammatory activation, SFA concentration in microglia often increases, consistent with the observation that SFA can trigger an inflammatory response [154].

Notably, triggering receptor 2 (TREM2), expressed on myeloid cells and microglia and functioning as an APOE receptor, is critical for regulating microglial metabolism, phagocytosis, proliferation, and survival [155]. TREM2 deficiency impairs mTOR activation, increases autophagy, and causes metabolic dysfunction in microglia [156, 157]. TREM2 also induces APOE signaling, and the APOE pathway mediates the change in microglial phenotype after phagocytosis of apoptotic neurons in mouse models of amyotrophic lateral sclerosis and Alzheimer's disease [158]. Moreover, enhancing the microglia-mediated clearance of oxidized phosphatidylcholines via TREM2 may help prevent neurodegeneration in MS [159]. These results suggest that TREM2 has great potential as a therapeutic target for neuroinflammation diseases.

Collectively, these data suggest that fatty acids serve as signals that mediate microglial phenotypes and functions. Generally, PUFA supports the transition of microglia to an anti-inflammatory phenotype, whereas SFA supports their proinflammatory activity.

2.3.4 Omega-3 PUFA Modulation of Microglia as a Therapy for CI/RI

Compared with resting microglia, activated microglia exhibit altered concentrations of metabolites associated with fatty acid metabolic pathways after cerebral ischemia, manifested by lipid droplet accumulation and fatty acid use as fuel [160]. Additionally, adipocyte fatty acid-binding protein (A-FABP), an adipokine implicated in several metabolic diseases, is significantly overexpressed in microglia during the acute phase after cerebral ischemia [161], which exacerbates microglia-mediated blood-brain barrier (BBB) disruption through MMP-9 [154]. A recent study indicated that microglia in areas of degenerating white matter exhibit increased oxidative fatty acid metabolism activity during the chronic recovery phase following cerebral ischemia. This increase in fatty acid metabolism may be due to the breakdown of white matter debris, and itaconate may be an important regulator of this metabolic switch and the inflammatory response in degenerating white matter [162].

DHA and EPA are n-3 PUFAs that are thought to play a protective role in CI/RI [163-165]. The data also suggest that long-term supplementation of n-3 PUFA before the end of cerebral ischemia in mice may make the brain more resistant to interruptions in the blood supply. The injection of n-3 PUFA after ischemic stroke also improves brain repair and regeneration [166], cognitive and behavioral recovery after ischemic stroke [167, 168], and mice mortality [169]. Altering the lipid content of neuronal cell membranes is a possible mechanism that promotes the activity of glial cells involved in inflammatory responses and repair [170]. A recent study discovered that DHA could prevent CI/RI injury by activating the G protein-coupled receptor (GPR) 120 in two different ways: preventing microglial inflammation via the GPR120/β-arrestin2 pathway and preventing neuronal apoptosis via the PI3K/AKT pathway [171]. By reducing the release of HIF-1, iNOS, and IL-1 by astrocytes and microglia, Zendedel et al. [172] demonstrated that n-3 PUFA can reduce neuroinflammatory responses and exert neuroprotective activities in mice with CI/RI. Fourrier et al. depicted that in the hippocampal region of a mouse brain, DHA inhibited the induction of IL-6 production by LPS [173]. Specialized pro-resolving mediators (SPMs) are one of the many important bioactive substances regulating the beneficial effects of PUFA [170]. SPMs may affect tissue repair and anti-inflammation, attenuating CI/RI by reducing neuroinflammation. These effects include non-inflammatory phagocytosis promotion by microglia and macrophages. Moreover, transient local ischemia in mice causes demyelination of neurons, which damages the white matter and destroys oligodendrocytes; long-term n-3 PUFA supplementation prevents oligodendrocyte damage and reduces demyelination, which supports white matter regeneration after ischemic stroke [174].

These data suggest a beneficial therapeutic effect of n-3 PUFA in alleviating CI/RI, possibly by improving or protecting the functional status of glial cells.

3 METABOLIC REPROGRAMMING OF ASTROCYTES IN CI/RI

Astrocytes are critical for maintaining neuronal activity. They regulate it by stimulating synapse formation, buffering extracellular potassium ions, resisting oxidative stress, and supporting neuronal energy metabolism. Activation of astrocytes, also called reactive astrocytes, is characterized by cellular hypertrophy, proliferation, and increased glial pro-fibrillary acidic protein production within minutes of ischemic stroke onset due to inflammatory damage and ischemic causes [175]. Similar to microglia, astrocytes can exist in two very different phenotypes: A1, induced by inflammatory injury, and A2, induced by ischemia [9]. The A2 phenotype of astrocytes supports neuronal survival and tissue healing [176], whereas the A1 phenotype has neurotoxic effects [177]. Although subtypes A1 and A2 have been increasingly recognized in recent years, few of the studies we reviewed reported the use of subtypes A1 and A2 to distinguish between reactive astrocytes. Transcriptome analyses have revealed that reactive astrocytes release cytokines, chemokines, and trophic factors and exhibit proinflammatory and neuroprotective functions during acute cerebral ischemia [178, 179], demonstrating that both phenotypes of astrocytes synergize in the pathological process. Reactive astrocytes play a crucial role in neuroprotection by inducing glial scarring alongside microglia to prevent the spread of inflammation in the peri-infarct cortex and preserve brain function in the subacute phase after ischemic stroke. However, this appears to be detrimental to prolonging and repairing neurons near the lesion during the late phase [180, 181]. During the recovery phase, reactive astrocytes also promote angiogenesis, neurogenesis, synaptogenesis, and axonal remodeling [182].

Compared to microglia, given the complexity of astrocytes and the limitations of existing studies, we cannot confirm whether astrocytes are homogeneous in different brain microenvironments. Consequently, we only summarized the evidence for metabolic reprogramming in CI/RI and in vitro cellular experiments. Current research indicates that reactive astrocytes increase glycolytic activity while limiting mitochondrial oxidative phosphorylation in response to CI/RI. Furthermore, PPP, a glycolysis shunt channel, was also increased. This metabolic change improves the resistance to oxidative stress and ensures astrocyte survival under ischemic conditions. It also generates lactate to maintain the neuronal metabolism. However, increased glycolysis has also been associated with neurotoxic effects in reactive astrocytes after reperfusion [19]. Glycogen metabolism in astrocytes is a puzzling phenomenon. While previous research has shown that glycogen utilization should be compensatorily increased after ischemia, it has recently been demonstrated that this process is impaired after reperfusion, which may exacerbate the reperfusion injury. Additionally, glutamate metabolism significantly changes after ischemia, decreasing astrocyte-dependent glutamate-buffering capacity. Therefore, in the following sections, we will focus on the glucose, glycogen, and glutamate metabolism changes in astrocytes resulting from CI/RI and summarize some current therapeutic approaches.

3.1 Neuron-astrocyte Metabolic Coupling

Astrocytes are primary glycolytic cells in the CNS [183]. In astrocytes, abundant PFKFB3 activates PFK to enhance glycolysis via F-2,6-P transformation, while abundant PKM2 constantly upregulates glycolytic flux. PDK4, which is highly expressed in astrocytes, can inactivate PDH, preventing pyruvate from entering the TCA and ultimately allowing glucose metabolism to generate lactate mainly through glycolysis [184]. Moreover, astrocytes are the primary cells that store and use glycogen [185]. The CNS has a high energy demand because neurons constantly consume energy to maintain their action potentials and synaptic functions. Astrocytes can transport lactate produced by glycolysis or glycogenolysis out of the cell via the monocarboxylate transporter (MCT) 1 or 4 at the cell membrane, which is then used by neurons via MCT2. Therefore, this metabolic interaction considered the astrocyte-neuron lactate shuttle theory [186]. Although this theory is controversial [187], it is generally considered to explain the metabolic link between astrocytes and neurons. Following cerebral ischemia, astrocytes undergo metabolic reprogramming. First, glycogen mobilization is activated to produce sufficient glucose [188], then glycolytic metabolism is increased to ensure cell survival. Simultaneously, mitochondrial metabolism of oxidative phosphorylation is decreased [189]. A substantial amount of the generated lactate is then transported to neurons to fuel and facilitate the maintenance of synaptic connections. During prolonged cerebral ischemia, excessive accumulation of lactate leads to lactic acidosis, which alters the intracerebral milieu and damages neurons via various pathophysiological pathways [190-192]. Additionally, acidosis inhibits glycolysis in astrocytes, which may be one of the possible causes of energy deficiency after the onset of cerebral ischemia.

3.1.1 STAT3, a Key Factor in Astrocyte Glucose Metabolic Transition

Although astrocytes upregulate glycolytic activity after cerebral ischemia has been observed, the exact metabolic changes in astrocytes are still largely unknown. Previous studies have demonstrated that STAT3 overexpression in reactive astrocytes after ischemia is closely linked to neurotoxic effects [179]. A recent study by Borbor et al. demonstrated that activated STAT3 triggers metabolic reprogramming of lactate-directed glycolysis in reactive astrocytes after the onset of CI/RI by initiating signaling cascades and synergistic effects with PKM2 and HIF [19]. They discovered that the OGD/R activation of STAT3 altered the transcriptional profile of astrocytes and increased the expression of Slc16a3 genes encoding LDH and MCT4 while decreasing the expression of Hk2 and Glul genes encoding HK2 and GS. Consequently, STAT3 activation in astrocytes increased glycolysis and ROS production, impaired astrocyte mitochondrial function, induced mitochondrial respiratory failure in neurons, and triggered glutamatergic synaptic loss, leading to secondary neurodegeneration [19]. Furthermore, under low blood glucose levels, astrocytes can obtain energy from stored glycogen to maintain mitochondrial respiration and oxidoreductase activity [189]. However, STAT3 activation reduces compensatory glycogen use in astrocytes. The rescue effect of STAT3 inhibition is reversed if it suppresses the glycogen consumption by astrocytes [19]. Therefore, STAT3 signaling and glycogen consumption may represent novel targets to support post-stroke recovery and play a critical role in reactive astrocytic lesions.

Interestingly, another study indicated [193] that after reperfusion, astrocytes can increase PPP metabolism by enhancing glycogen mobilization, which promotes NADPH and glutathione synthesis and ultimately decreases ROS formation. The decreased ROS levels lead to the inhibition of NF-кB and activation of STAT3, both of which cause A2-like polarization of astrocytes, leading to neuroprotection after CI/RI [193].

This evidence highlights the importance of astrocytic glycogen mobilization during CI/RI, and we speculate that whether astrocyte STAT3 activation is beneficial or detrimental to neurons may depend on the injury stage. Currently, STAT3 stimulates PPP and glycolytic activity during the acute phase of CI/RI, which reduces neuroinflammation and contributes to a neuroprotective effect. In contrast, glycolytic activity promoted by STAT3 during the subsequent pathological process leads to excessive proliferation of reactive astrocytes and neurotoxic effects that hinder brain healing. This is also consistent with previous studies [194], but the STAT3 mechanism of action requires further clarification (Fig. 3).

3.1.2 Impaired Glycogen Utilization in Reperfusion Injury

Glycogen is the primary endogenous energy source for the brain during cerebrovascular blockade [195]. Astrocytes can reduce brain damage from hypoglycemia during ischemia by converting reserve glycogen to glucose. Astrocytes balance gluconeogenesis and glycogenolysis to maintain the dynamic balance of glycogen [196]. Protein kinase A (PKA) and glycogen synthase kinase 3 (GSK3) control the activity of glycogen synthase, the rate-limiting enzyme for glycogen synthesis [197]. Conversely, glycogen phosphorylase (GP), the key enzyme in glycogen degradation, is controlled by the PKA glycogen phosphorylase kinase (PhK) cascade [197]. GSK3 increases in the brain with the onset of CI/RI [198], suggesting that glycogen synthase activity is impaired and accessible glycogen is limited [199].

To avoid energy shortages and minimize ischemic damage, previous studies on ischemic disease predominantly emphasized the augmentation of cellular glycogen reserves prior to the onset of ischemia [200]. A recent study offers a different perspective, showing that inhibiting PKA and PhK activity during reperfusion decreases GP activity in astrocytes, disrupting the balance between GP and glycogen synthase, which impairs glycogenolysis and ultimately leads to glycogen accumulation and worsening of reperfusion injury [20].

Promoting glycogenolysis in astrocytes may be a more promising therapeutic strategy than simply increasing intracellular glycogen reserves pre-ischemia, as shown by the restoration of the astrocytic PKA-PhK-GP cascade by insulin to maintain glycogen metabolism balance after reperfusion [20] or the use of salvianolic acid B to increase GP activity to improve astrocytic glycogen utilization after reperfusion [201]. Notably, astrocytic glycogenolytic metabolism requires careful consideration of the precise timing of ischemia and the specific pathological process; however, further research is necessary to augment this strategy effectively.

3.1.3 Reperfusion-induced Activity of PPP in Astrocytes

When reperfusion begins, one of the greatest challenges is the effective removal of large amounts of ROS [202, 203]. Because astrocytes can absorb more oxygen from arterial blood than glucose, cerebrovascular occlusion-induced cerebral ischemia can be considered an ischemic pattern with a relatively adequate glucose supply [204], allowing them to increase glycolysis during hypoxic cerebral ischemia. Increased glycolytic activity and metabolic coordination [204] activate the rate-limiting enzyme G6PD in PPP [205], causing a substantial increase in PPP as a shunt mechanism for glycolysis in astrocytes after hypoxia [206]. Since NADPH produced by PPP can be used to convert oxidized to reduced glutathione (GSH), an important antioxidant that cooperates with glutathione peroxidase enzymes to destroy ROS, PPP flux is considered a key indicator of cellular antioxidant capacity [207]. Significantly, the PPP flux of astrocytes in the brain is much higher than that of neurons, suggesting that they primarily maintain the antioxidant capacity of the CNS [208]. This finding also suggests that controlling astrocyte PPP flux after reperfusion has great therapeutic potential. Few studies have indicated that astrocytes express high levels of TIGAR protein after CI/RI, and TIGAR has been shown to upregulate PPP flux in astrocytes during CI/RI and reduce NF-кB activity, thereby attenuating neuroinflammation [209], making TIGAR a potentially effective target for treating reperfusion injury.

Notably, not only does the level of glycolytic metabolism affect PPP flux, but ROS may also act as transcriptional activators of PPP. G6PD, a key enzyme in PPP, is regulated both metabolically and transcriptionally, with the Keap1/Nrf2 system emerging as a pivotal transcriptional pathway [205, 208]. Under healthy conditions, Nrf2 serves as a transcription factor that binds to the bridging protein, Keap1, to form a heterodimer. However, the ubiquitin-proteasome system continuously disrupts the Keap1/Nrf2 complex, rendering it incapable of transcription. When reperfusion occurs, massive ROS attack on Keap1 leads to Nrf2 release and translocation into the nucleus, where it binds to the appropriate transcriptional precursor and initiates target gene transcription. Thus, enhancers of the Keap1/Nrf2 system may have neuroprotective effects by increasing PPP levels in astrocytes [210-212]. Dimethyl fumarate, an Nrf2 activator, has been evaluated to reduce the proinflammatory effects of astrocytes following cerebral ischemia [213] and has shown neuroprotective effects [214].

In addition to the oxidative stress induced by high ROS concentrations, another important pathogenic mechanism of CI/RI is amino acid toxicity mediated by excitatory amino acids. Astrocytes may uptake additional glutamate that neurons release into the synaptic cleft to reduce glutamate-induced excitotoxicity. Surprisingly, a substantial PPP flux increase was observed when PPP flux was examined after glutamate delivery to astrocytes. This suggests that glutamate activates the antioxidant defense system of astrocytes [215]. Moreover, astrocyte glutamate uptake can be chemically degraded to lactate, delivered to neurons [208], or directly converted to α-ketoglutarate and used as a TCA cycle substrate [215]. This evidence suggests that glutamate uptake by astrocytes and the metabolic mechanisms involved are of potential therapeutic value in CI/RI. Therefore, in the following sections, we focus on the mechanisms of glutamate metabolism in astrocytes.

3.2 Astrocytes and Glutamate Toxicity

Regulating neurotransmitter homeostasis is one of the most important functions of astrocytes in the CNS, as they take up neurotransmitters released from synapses, including glutamate, GABA, and glycine, metabolize them, and release their precursors back to the neuron [216]. Glutamate is the most abundant excitatory neurotransmitter in the CNS [217]; however, excessive glutamate in the synaptic and extra-synaptic gaps leads to neuronal hyperexcitability and eventual death, a process known as glutamate excitotoxicity, which is one of the critical pathological aspects of CI/RI [218]. Therefore, swift removal of unused synaptic glutamate from the extracellular space is essential. This glutamate clearance task is primarily performed by astrocytes and is mediated by glutamate uptake transporter proteins [219]. Shortly after ischemia, the astrocyte-dependent glutamate buffering system was altered in several ways, including epigenetic regulation of GLT-1 and GLAST promoters, leading to decreased gene expression [220] and S-nitrosylation of GLT-1 with a subsequent decrease in its activity [221]. Previous studies have focused on enhancing astrocyte glutamate uptake and consumption to protect patients from glutamate toxicity in ischemic stroke.

3.2.1 EAAT, an Essential Mechanism for Glutamate Uptake

Glutamate uptake is one of the most energy-intensive activities in the CNS [222]. Interestingly, astrocytes can produce more ATPs through the oxidative metabolism of glutamate than ATP consumed by glutamate uptake [223]. Most extracellular glutamate uptake occurs via excitatory amino acid transport proteins (EAAT) [224], which are classified as either Na+-dependent or Na+-independent transport proteins for glutamate uptake [225]. There are currently five known isoforms of EAAT [226] in mice; the first two, EAAT-1 and EAAT-2, are glutamate aspartate transporter protein (GLAST) [227] and GLT-1 [228], respectively. Except for the fraction bound by postsynaptic neuronal receptors, most synaptically produced glutamate diffuses out of the synaptic cleft and is subsequently removed from the extracellular space by EAAT-1 and EAAT-2 of astrocytes in the synaptic system [229]. Astrocytes can convert consumed glutamate to glutamine through GS, releasing it via SNAT1 into the extracellular milieu [230, 231] or neuronal uptake, enabling glutamate or GABA resynthesis. Alternatively, some glutamate is converted into α-ketoglutarate, a TCA cycle substrate [232]. Extracellular glutamate concentration critically influences the propensity of astrocytes to convert glutamate to glutamine or engage in oxidative metabolism [219]. Extracellular glutamate concentrations above 0.2 mM promote astrocyte oxidative metabolism, generating the energy required for glutamate uptake. Glutamate concentrations below 0.2 mM are converted into glutamine and become available to neurons [233].

Cerebral ischemia causes abnormal changes in astrocyte-dependent glutamate buffering systems. These abnormal changes include decreased epigenetic regulation of GLT-1 and GLAST promoters, leading to decreased gene expression [219], and S-nitrosylation of GLT-1, leading to a significant decrease in GLT-1 activity [221]. In the late stages of ischemia, the glutamate transporter is reversed in astrocytes due to a severe lack of energy, which results in the development of glutamate excitability and significantly affects neuron survival. Therefore, a potential treatment strategy for ischemia-reperfusion injury is to selectively increase the activity of amino acid transporter proteins in astrocytes during ischemia to promote glutamate uptake and metabolism and ultimately reduce excitotoxicity.

3.2.2 GLT-1 Expression as a Credible CI/RI Mitigation Strategy

Increased glutamate intake could promote astrocyte metabolism related to the glutamate pathway, reducing the toxicity of excitatory amino acids generated during CI/RI. Several clinical trials have demonstrated that this has therapeutic potential for treating CI/RI. Based on existing data, the two main treatment approaches are protecting GLT-1 in astrocytes and promoting GLT-1 overexpression. Carnosine, a naturally occurring dipeptide, is neuroprotective by protecting GLT-1 expression in astrocytes, which lowers brain glutamate levels and reduces excitotoxicity while improving neurological function [234]. Additionally, two neuroprotective proteins, heat shock protein 72 (HSP72) and mitochondrial superoxide dismutase 2 (SOD2), have been demonstrated to reduce neuronal damage during ischemia in the forebrain by protecting astrocytes from GLT-1 and reducing oxidative stress [234]. Ceftriaxone, a GLT-1 transporter activator, promotes GLT-1 overexpression [235] and is neuroprotective in ischemic models [236, 237]. Tamoxifen, a selective estrogen receptor modulator, also increases GLT-1 expression in rat astrocytes [238] and reduces the severity of injury after reversible [239] or irreversible MCAO in rodents [240].

3.3 Fatty Acid Metabolism in Astrocytes

Although most energy in the CNS is derived from glucose catabolism, fatty acid oxidation contributes to approximately 20% of the oxidative energy production in the brain. Recent research suggests that astrocytes may be the main contributors to fatty acid oxidation in the brain [241].

Generally, during ischemia, the main purpose of fatty acid utilization by astrocytes is to provide fuel for β-oxidation. Thyroid hormones have been reported to counteract damage induced by ischemic stroke, and this effect depends on increased oxidative fatty acid metabolism by reactive astrocytes [242]. These reactive astrocytes with upregulated lipid metabolism demonstrated a molecular phenotype that could be helpful or protective following ischemic stroke because they shared a common gene expression profile with neuroprotective A2 reactive astrocytes [9, 178]. This suggests that astrocyte fatty acid metabolism may be involved in developing ischemic stroke. However, a recent study in a mouse model of Huntington's disease found that switching from glycolysis to oxidative fatty acid metabolism resulted in a neurotoxic astrocyte phenotype that enhanced ROS-induced damage [243]. The variability in the role of fatty acid metabolism in astrocytes may be due to varying pathological conditions, or it may be bidirectional.

Interestingly, reactive astrocytes release different lipids in response to different stimuli, leading to different consequences. For example, LPS-activated astrocytes selectively release PUFAs such as DHA [244], which reduces their proinflammatory responses. This may be one of the mechanisms by which astrocytes interact with the microglia. Moreover, saturated long-chain fatty acids activate inflammatory signaling in astrocytes [245], akin to microglia [154].

Although it remains unclear how fatty acid metabolism influences the phenotypic switching of reactive astrocytes in ischemic stroke, these novel findings suggest that astrocytic fatty acid metabolism may offer potential therapeutic avenues and new research opportunities for CI/RI (Table 1).

CONCLUDING REMARKS AND FUTURE PERSPECTIVES

Gliocytes are progressively being studied in ischemic stroke as supporting cells and key contributors to developing later CI/RI-related neuropathologies. In CI/RI, microglia and astrocytes undergo metabolic reprogramming to support their phenotypic changes and subsequent functional conversion due to stimulation by factors such as hypoxia, oxidative stress, and impaired energy metabolism. Maintaining proinflammatory functions within microglia requires elevated glycolysis, PPP, and fatty acid synthesis. Conversely, anti-inflammatory function requires heightened mitochondrial OXPHOS and fatty acid oxidative metabolism alongside specific fatty acid metabolites that act as secondary messengers of the cell, regulating microglial cell status. Despite extensive attempts to better understand the morphological and functional diversity of astrocytes during development and in ischemic stroke, the mechanisms regulating metabolic changes and reactive heterogeneity in astrocytes remain largely unknown. We could only establish that astrocyte glycolysis and glycogen and glutamate metabolism were strongly related to the pathological process of CI/RI. For CI/RI, therapeutic approaches targeting glial cells are more promising than those targeting neurons. We anticipate that therapeutic approaches that induce gliocyte phenotypic polarization and functional implementation by modulating their metabolic reprogramming will be an exciting therapeutic hotspot in the field of CI/RI. However, the dual nature of glial cells in ischemia necessitates a better understanding of the unique signaling pathways that trigger positive responses in each cell type.

As a new research hotspot in the field of CI/RI, several important issues require attention. First, precise molecular regulatory mechanisms governing metabolic reprogramming remain largely unknown. Although modern methods have been used to validate the glial cell morphological and functional diversity in higher mammalian species and rodents, it remains a challenge to determine the precise relationship between their morphological diversity and functional and metabolic diversity. Additionally, we suspect that other metabolic pathways, particularly iron metabolism, remain unexplored [38]. Second, since the pathophysiology of CI/RI is complicated and involves multiple factors, and microglial status and function are complex, it is important to regulate glial cell function and phenotype alone without precise disease stage knowledge. Different phenotypes may be crucial at specific disease stages, necessitating a deeper understanding of the pathogenic mechanisms underlying CI/RI. Finally, accurately regulating metabolic processes in glial cells remains challenging under current technical conditions, and most of the existing research has been performed in rodents, which may not be entirely typical of human glial cells in vivo. This review did not discuss oligodendrocytes, another important glial cell component. Since oligodendrocytes are relatively new to the field of cerebral ischemia, little is known about their function in this disease, requiring further attention. Despite these limitations, inducing gliocyte metabolic reprogramming may cause microglia and astrocytes to switch neurotoxic or neuroprotective phenotypes, potentially unlocking novel therapeutic avenues for CI/RI.

ACKNOWLEDGEMENTS

We appreciate Zhigang Mei’s lab members for their scientific discussions, helpful suggestions and critical reading of the manuscript. We also thank Home for Researchers editorial team (www.home-for-researchers.com) for language editing service.

AUTHORS' CONTRIBUTIONS

WL. Z, ZG. M, and ZW. Z conceived and supervised the work and revised the manuscript. LP. G drafted the initial manuscript. JJ. L and LT. X provided some positive suggestions and amended the manuscript. All authors reviewed and approved the manuscript.

LIST OF ABBREVIATIONS

A-FABP Adipocyte Fatty Acid Binding Protein

Acetyl-CoA Acetyl-coenzyme A

Acsl6 Long-chain acyl-CoA synthetase 6

AMPK AMP-activated Protein Kinase

ApoE Apolipoprotein E

Arg Arginase

Aβ Amyloid β-protein

BBB Blood-brain Barrier

BCAA Branched-chain Amino Acids

CD36 Cluster of Differentiation 36

CI/RI Cerebral Ischemia/Reperfusion Injury

CKLF1 Chemokine-like Factor 1

CNS Central Nervous System

DCA Dichloroacetic Acid

DHA Docosahexaenoic Acid

DKK Dickkopf

EAAT Excitatory Amino Acid Transport Proteins

EPA Eicosapentaenoic Acid

ERK Extracellular Regulatory Protein Kinases

F-2,6P Fructose-2,6-bisphosphate

F6P Fructose 6-phosphate

G6PD Glucose-6-phosphate Dehydrogenase

GABA Gamma-aminobutyric Acid

GLAST Glutamate Aspartate Transporter Protein

GLT-1 Glutamate Transporter 1

GLUT1 Glucose Transporter Protein 1

GP Glycogen Phosphorylase

GPR G Protein-coupled Receptor

GS Glutamine Synthetase

GSH Reduced Glutathione

GSK3 PKA and Glycogen Synthase Kinase 3

HIF-1α Hypoxia Inducible Factor-1α

HK Hexokinase

HO-1 Heme Oxygenase-1

HSP72 Heat Shock Protein 72

IGF-1 Insulin-like Growth Factor-1

IL Interleukin

iNOS Inducible Nitric Oxide Synthase

IRG1 Immune Response Gene 1

JAK2 Janus Family Tyrosine Kinase 2

Keap1 Kelch-like ECH-associated Protein 1

LPL Lipoprotein Lipase

LPS Lipopolysaccharide

MAPK Mitogen-activated Protein Kinase

MCAO Middle Cerebral Artery Occlusion

MCT Monocarboxylate Transporter

MMP Matrix Metalloprotein

mTOR Mammalian Target of Rapamycin

MUFAs Monounsaturated Fatty Acids

NADPH Triphosphopyridine Nucleotide

NHE1 Na/H Exchanger

NLRP3 TLR4-NOD-like Receptor Thermal Protein Domain Associated Protein 3

NO Nitric Oxide

NOX NADPH Oxidase

Nrf2 Nuclear Factor Erythroid 2-related Factor 2

OGD/R Oxygen/Glucose Deprivation/Reoxygenation

OXPHOS Oxidative Phosphorylation

PD Pyruvate Dehydrogenase

PDK Pyruvate Dehydrogenase Kinase

PEP Phosphoenolpyruvate

PFK Phosphofructokinase

PFKFB 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase

PGC-1β PPARγ-coactivator-1

PhK PKA Glycogen Phosphorylase Kinase

PI3K Phosphatidylinositol 3-kinase

PKM2 Pyruvate Kinase M2

PPP Pentose Phosphate Pathway

PTEN Tensin Homolog Deleted on Chromosome 10

PUFAs Polyunsaturated Fatty Acids

RNS Reactive Nitrogen Species

ROS Reactive Oxygen Species

rtPA Recombinant Tissue Plasminogen Activator

SDH Succinate Dehydrogenase

SFAs Saturated Fatty Acids

SNAT Sodium-coupled Neutral Amino Acid Transporter

SOD2 Mitochondrial Superoxide Dismutase 2

SPMs Specialized Pro-resolving Mediators

STAT Signal Transducer and Activator Transcription

TCA Tricarboxylic Acid

TIGAR TP53-induced Glycolysis and Apoptosis Regulator

TLR4 Toll-like Receptor 4

TREM2 Triggering Receptor 2

CONSENT FOR PUBLICATION

Not applicable.

FUNDING

This work was supported by the National Natural Science Foundation of China (82174167), the Key Project of Hunan Province Education Department (20A366), the Project of Natural Science Foundation of Hunan Province (2021JJ30499), and the Fund for Youth Top Talent Project of Hubei Provincial Health and Family Planning Commission (EWT-2019-48).

CONFLICT OF INTEREST

The authors declare no conflict of interest, financial or otherwise.

Fig. (1) CI/RI activates microglia and astrocytes and induces metabolic reprogramming. M1 microglia increased glycolysis, PPP, fatty acid synthesis, released cytokines and, chemokines and MPPs, generated ROS and RNS, and exerted a pro-neuroinflammatory effect. M2 microglia increased OXPHOS and fatty acid oxidation, released trophic factors, repaired the damaged block, and exerted an anti-neuroinflammatory effect. Reactive astrocytes upregulate glycolysis and PPP and downregulate glycogenolysis and glutamate uptake, which may synergize with microglia to promote neuroinflammation. They also secrete trophic factors, inhibit the toxicity of excitatory amino acids and generate glial scarring to protect neurons. Abbreviations: CI/RI, cerebral ischemia/reperfusion injury; PPP, pentose phosphate pathway; ROS, reactive oxygen species; RNS, reactive nitrogen species; OXPHOS, oxidative phosphorylation; MMP, matrix metalloprotein. (Created with BioRender.com).

Fig. (2) Metabolic reprogramming of microglia in CI/RI. Abbreviations: GLUT1, glucose transporter protein type 1; G6PD, glucose-6-phosphate dehydrogenase; NADPH, triphosphopyridine nucleotide; HK, hexokinase; G6P, glucose 6-phosphate; F6P, fructose 6-phosphate; PEP, phosphoenolpyruvate; F-2,6P, fructose 2,6-bisphosphate; PFKFB3, fructose-2,6-bisphosphatase; PKM2, pyruvate kinase type M2; PDH, pyruvate dehydrogenase; PDK, pyruvate dehydrogenase kinase; LDHA, lactate dehydrogenase A; HIF-1, hypoxia-inducible factor 1; TIGAR, TP53-induced glycolysis and apoptosis regulator; PPP, pentose phosphate pathway; G6PD, glucose-6-phosphate dehydrogenase; NOX2, NADPH oxidase 2; OXPHOS, mitochondrial oxidative phosphorylation; TCA cycle, tricarboxylic acid cycle; iNOS, inducible nitric oxide synthase;Arg-1, arginase 1; GABA, gamma-aminobutyric acid; SNAT1, sodium-coupled neutral amino acid transporter 1;GPR120, G protein-coupled receptor 120; DHA, Docosahexaenoic acid. (Created with BioRender.com).

Fig. (3) Metabolic reprogramming of astrocytes in CI/RI. Abbreviations: STAT3, signal transducer and activator of transcription 3; PKM2, pyruvate kinase type M2; HK2, hexokinase 2; GP, glycogen phosphorylase; G6P, glucose 6-phosphate; PEP, phosphoenolpyruvate; PhK, phosphorylase kinase; PKA, protein kinase A; HIF, hypoxia-inducible factor; LDH, lactate dehydrogenase; PPP, pentose phosphate pathway; NADPH, triphosphopyridine nucleotide; GSH, reduced glutathione; Keap1, Kelch-like ECH-associated protein 1; Nrf2, nuclear factor erythroid 2-related factor 2; GS, glutamine synthetase; SNAT1, sodium-coupled neutral amino acid transporter 1; GLT-1, glutamate transporter 1; MCT, monocarboxylate transporter. (Created with BioRender.com).

Table 1 Metabolic therapeutic approaches via targeting microglia and astrocytes against CI/RI.

Metabolic
Pathways	Drugs/Therapy	Target Diseases	Cell Types	Function or Effect	References	
Glucose	TIGAR	Hypoxic-ischemic brain damage	HAPI microglia	Elevating PPP flux/Decreasing ROS levels	[34]	
Lonidamine	Ischemia stroke	BV2 microglia	Inhibiting M1 activation	[71]	
CKLF1 inhibition	Ischemia stroke	Primary microglia	Promoting phagocytic activity	[72]	
Dichloroacetic acid and pyruvate	Ischemia stroke	Microglia in vivo	Inhibiting M1 activation	[74]	
Recombinant human CX3CL1	Ischemia stroke	Microglia in vivo/vitro	Promoting anti-inflammatory genes expression	[78]	
Salvianolic acid C	Cerebral ischemia reperfusion	BV2 microglia	Inhibiting cytokine release/
Inhibiting M1 activation	[80]	
STAT3 inhibition	Ischemia stroke	Primary astrocyte	Inhibiting glycolysis/
Inhibiting neurotoxicity	[19]	
Glucose	TIGAR	Cerebral ischemia reperfusion	Primary astrocyte	Elevating PPP flux/
Inhibiting inflammation	[209]	
Dimethyl fumarate	Ischemia stroke	Primary astrocyte	Upregulate Nrf2 levels	[211]	
Amino acids	Arginine	Ischemia stroke	Primary microglia/BV2 microglia	Inhibiting cytokine release	[116]	
Glycine	Ischemia stroke	Primary microglia	Inhibiting cytokine release/
Promoting M2 phenotype	[119]	
Glutaminase 1 inhibition	Ischemia stroke	Microglia in vivo	Inhibiting M1 activation/
Inhibiting exosome release	[124]	
Carnosine	Ischemia stroke	Primary astrocyte	Upregulate GLT-1 expression	[234]	
Ceftriaxone	Ischemia stroke	Primary astrocyte	Upregulate GLT-1 expression	[235]	
Tamoxifen	Ischemia stroke	Primary astrocyte	Upregulate GLT-1 expression	[238]	
Fatty acids	DHA	Ischemia stroke	BV2 microglia	Inhibiting cytokine release	[171]	
PUFA n3	Ischemia stroke	BV2 microglia	Inhibiting pro-inflammatory genes expression	[172]	
PUFA n3	Ischemia stroke	Primary astrocyte	Inhibiting pro-inflammatory genes expression	[172]	
3,3,5 triiodo-L-thyronine	Ischemia stroke	Primary astrocyte	Elevating fatty acid oxidation/ Promoting neuroprotection	[242]	
Glycogen	Insulin	Cerebral ischemia reperfusion	Primary astrocyte	Upregulate glycogen phosphorylase expression	[20]	
Salvianolic acid B	Cerebral ischemia reperfusion	Primary astrocyte	Enhancing glycogen phosphorylase activity	[201]
==== Refs
REFERENCES

1 Katan M. Luft A. Global burden of stroke. Semin. Neurol. 2018 38 2 208 211 10.1055/s-0038-1649503 29791947
2 Lin L. Wang X. Yu Z. Ischemia-reperfusion injury in the brain: Mechanisms and potential therapeutic strategies. Biochem. Pharmacol. 2016 5 4 213 10.4172/2167-0501.1000213 29888120
3 Rabinstein A.A. Update on treatment of acute ischemic stroke. Continuum (Minneap. Minn.) 2020 26 2 268 286 10.1212/CON.0000000000000840 32224752
4 Powers W.J. Rabinstein A.A. Ackerson T. Adeoye O.M. Bambakidis N.C. Becker K. Biller J. Brown M. Demaerschalk B.M. Hoh B. Jauch E.C. Kidwell C.S. Leslie-Mazwi T.M. Ovbiagele B. Scott P.A. Sheth K.N. Southerland A.M. Summers D.V. Tirschwell D.L. Guidelines for the early management of patients with acute ischemic stroke: 2019 update to the 2018 guidelines for the early management of acute ischemic stroke: A guideline for healthcare professionals from the american heart association/american stroke association. Stroke 2019 50 12 e344 e418 10.1161/STR.0000000000000211 31662037
5 Jurcau A. Ardelean I.A. Molecular pathophysiological mechanisms of ischemia/reperfusion injuries after recanalization therapy for acute ischemic stroke. J. Integr. Neurosci. 2021 20 3 727 744 10.31083/j.jin2003078 34645107
6 Luo X.L. Liu S.Y. Wang L.J. Zhang Q.Y. Xu P. Pan L.L. Hu J.F. A tetramethoxychalcone from Chloranthus henryi suppresses lipopolysaccharide-induced inflammatory responses in BV2 microglia. Eur. J. Pharmacol. 2016 774 135 143 10.1016/j.ejphar.2016.02.013 26852953
7 Skirving D.J. Dan N.G. A 20-year review of percutaneous balloon compression of the trigeminal ganglion. J. Neurosurg. 2001 94 6 913 917 10.3171/jns.2001.94.6.0913 11409519
8 Sieweke M.H. Allen J.E. Beyond stem cells: Self-renewal of differentiated macrophages. Science 2013 342 6161 1242974 10.1126/science.1242974 24264994
9 Liddelow S.A. Guttenplan K.A. Clarke L.E. Bennett F.C. Bohlen C.J. Schirmer L. Bennett M.L. Münch A.E. Chung W.S. Peterson T.C. Wilton D.K. Frouin A. Napier B.A. Panicker N. Kumar M. Buckwalter M.S. Rowitch D.H. Dawson V.L. Dawson T.M. Stevens B. Barres B.A. Neurotoxic reactive astrocytes are induced by activated microglia. Nature 2017 541 7638 481 487 10.1038/nature21029 28099414
10 Xu S. Lu J. Shao A. Zhang J.H. Zhang J. Glial cells: Role of the immune response in ischemic stroke. Front. Immunol. 2020 11 294 10.3389/fimmu.2020.00294 32174916
11 Cheng X. Yang Y.L. Li W.H. Liu M. Zhang S.S. Wang Y.H. Du G.H. Dynamic alterations of brain injury, functional recovery, and metabolites profile after cerebral ischemia/reperfusion in rats contributes to potential biomarkers. J. Mol. Neurosci. 2020 70 5 667 676 10.1007/s12031-019-01474-x 31907865
12 Shen L. Gan Q. Yang Y. Reis C. Zhang Z. Xu S. Zhang T. Sun C. Mitophagy in cerebral ischemia and ischemia/reperfusion injury. Front. Aging Neurosci. 2021 13 687246 10.3389/fnagi.2021.687246 34168551
13 Lauro C. Limatola C. Metabolic reprograming of microglia in the regulation of the innate inflammatory response. Front. Immunol. 2020 11 493 10.3389/fimmu.2020.00493 32265936
14 Sofroniew M.V. Astrocyte reactivity: Subtypes, states, and functions in cns innate immunity. Trends Immunol. 2020 41 9 758 770 10.1016/j.it.2020.07.004 32819810
15 Ghosh S. Castillo E. Frias E.S. Swanson R.A. Bioenergetic regulation of microglia. Glia 2018 66 6 1200 1212 10.1002/glia.23271 29219210
16 Hu X. Li P. Guo Y. Wang H. Leak R.K. Chen S. Gao Y. Chen J. Microglia/macrophage polarization dynamics reveal novel mechanism of injury expansion after focal cerebral ischemia. Stroke 2012 43 11 3063 3070 10.1161/STROKEAHA.112.659656 22933588
17 Mogensen T.H. Pathogen recognition and inflammatory signaling in innate immune defenses. Clin. Microbiol. Rev. 2009 22 2 240 273 10.1128/CMR.00046-08 19366914
18 Falkowska A. Gutowska I. Goschorska M. Nowacki P. Chlubek D. Baranowska-Bosiacka I. Energy metabolism of the brain, including the cooperation between astrocytes and neurons, especially in the context of glycogen metabolism. Int. J. Mol. Sci. 2015 16 11 25959 25981 10.3390/ijms161125939 26528968
19 Borbor M. Yin D. Brockmeier U. Wang C. Doeckel M. Pillath-Eilers M. Kaltwasser B. Hermann D.M. Dzyubenko E. Neurotoxicity of ischemic astrocytes involves STAT3 ‐mediated metabolic switching and depends on glycogen usage. Glia 2023 71 6 1553 1569 10.1002/glia.24357 36810803
20 Cai Y. Guo H. Fan Z. Zhang X. Wu D. Tang W. Gu T. Wang S. Yin A. Tao L. Ji X. Dong H. Li Y. Xiong L. Glycogenolysis is crucial for astrocytic glycogen accumulation and brain damage after reperfusion in ischemic stroke. iScience 2020 23 5 101136 10.1016/j.isci.2020.101136 32446205
21 Yang S. Qin C. Hu Z.W. Zhou L.Q. Yu H.H. Chen M. Bosco D.B. Wang W. Wu L.J. Tian D.S. Microglia reprogram metabolic profiles for phenotype and function changes in central nervous system. Neurobiol. Dis. 2021 152 105290 10.1016/j.nbd.2021.105290 33556540
22 Pearce E.L. Pearce E.J. Metabolic pathways in immune cell activation and quiescence. Immunity 2013 38 4 633 643 10.1016/j.immuni.2013.04.005 23601682
23 Lynch M.A. Can the emerging field of immunometabolism provide insights into neuroinflammation? Prog. Neurobiol. 2020 184 101719 10.1016/j.pneurobio.2019.101719 31704314
24 Bruce K.D. Gorkhali S. Given K. Coates A.M. Boyle K.E. Macklin W.B. Eckel R.H. Lipoprotein lipase is a feature of alternatively-activated microglia and may facilitate lipid uptake in the cns during demyelination. Front. Mol. Neurosci. 2018 11 57 10.3389/fnmol.2018.00057 29599706
25 Peruzzotti-Jametti L. Pluchino S. Targeting mitochondrial metabolism in neuroinflammation: Towards a therapy for progressive multiple sclerosis. Trends Mol. Med. 2018 24 10 838 855 10.1016/j.molmed.2018.07.007 30100517
26 Wang L. Pavlou S. Du X. Bhuckory M. Xu H. Chen M. Glucose transporter 1 critically controls microglial activation through facilitating glycolysis. Mol. Neurodegener. 2019 14 1 2 10.1186/s13024-019-0305-9 30634998
27 Zhang Y. Chen K. Sloan S.A. Bennett M.L. Scholze A.R. O’Keeffe S. Phatnani H.P. Guarnieri P. Caneda C. Ruderisch N. Deng S. Liddelow S.A. Zhang C. Daneman R. Maniatis T. Barres B.A. Wu J.Q. An RNA-sequencing transcriptome and splicing database of glia, neurons, and vascular cells of the cerebral cortex. J. Neurosci. 2014 34 36 11929 11947 10.1523/JNEUROSCI.1860-14.2014 25186741
28 Kelly B. O’Neill L.A.J. Metabolic reprogramming in macrophages and dendritic cells in innate immunity. Cell Res. 2015 25 7 771 784 10.1038/cr.2015.68 26045163
29 Van den Bossche J. Baardman J. Otto N.A. van der Velden S. Neele A.E. van den Berg S.M. Luque-Martin R. Chen H.J. Boshuizen M.C.S. Ahmed M. Hoeksema M.A. de Vos A.F. de Winther M.P.J. Mitochondrial dysfunction prevents repolarization of inflammatory macrophages. Cell Rep. 2016 17 3 684 696 10.1016/j.celrep.2016.09.008 27732846
30 Mills E.L. Kelly B. Logan A. Costa A.S.H. Varma M. Bryant C.E. Tourlomousis P. Däbritz J.H.M. Gottlieb E. Latorre I. Corr S.C. McManus G. Ryan D. Jacobs H.T. Szibor M. Xavier R.J. Braun T. Frezza C. Murphy M.P. O’Neill L.A. Succinate dehydrogenase supports metabolic repurposing of mitochondria to drive inflammatory macrophages. Cell 2016 167 2 457 470.e13 10.1016/j.cell.2016.08.064 27667687
31 Klimaszewska-Łata J. Gul-Hinc S. Bielarczyk H. Ronowska A. Zyśk M. Grużewska K. Pawełczyk T. Szutowicz A. Differential effects of lipopolysaccharide on energy metabolism in murine microglial N9 and cholinergic SN 56 neuronal cells. J. Neurochem. 2015 133 2 284 297 10.1111/jnc.12979 25345568
32 Bolanos J. García-Nogales P. Almeida A. Provoking neuroprotection by peroxynitrite. Curr. Pharm. Des. 2004 10 8 867 877 10.2174/1381612043452910 15032690
33 West A.P. Brodsky I.E. Rahner C. Woo D.K. Erdjument-Bromage H. Tempst P. Walsh M.C. Choi Y. Shadel G.S. Ghosh S. TLR signalling augments macrophage bactericidal activity through mitochondrial ROS. Nature 2011 472 7344 476 480 10.1038/nature09973 21525932
34 Zhang Z-B. Feng X. Li M. Tan L-L. Jiang X-L. Xu L-X. Li G. Feng C-X. Ding X. Sun B. Qin Z-H. TP53-induced glycolysis and apoptosis regulator alleviates hypoxia/ischemia-induced microglial pyroptosis and ischemic brain damage. Neural Regen. Res. 2021 16 6 1037 1043 10.4103/1673-5374.300453 33269748
35 Hu Y. Mai W. Chen L. Cao K. Zhang B. Zhang Z. Liu Y. Lou H. Duan S. Gao Z. mTOR‐mediated metabolic reprogramming shapes distinct microglia functions in response to lipopolysaccharide and ATP. Glia 2020 68 5 1031 1045 10.1002/glia.23760 31793691
36 He C. Zhou C. Kennedy B.K. The yeast replicative aging model. Biochim. Biophys. Acta Mol. Basis Dis. 2018 1864 9 2690 2696 10.1016/j.bbadis.2018.02.023 29524633
37 Hardie D.G. AMP-activated/SNF1 protein kinases: Conserved guardians of cellular energy. Nat. Rev. Mol. Cell Biol. 2007 8 10 774 785 10.1038/nrm2249 17712357
38 Baik S.H. Kang S. Lee W. Choi H. Chung S. Kim J.I. Mook-Jung I. A breakdown in metabolic reprogramming causes microglia dysfunction in alzheimer’s disease. Cell Metab. 2019 30 3 493 507.e6 10.1016/j.cmet.2019.06.005 31257151
39 Cheng S.C. Quintin J. Cramer R.A. Shepardson K.M. Saeed S. Kumar V. Giamarellos-Bourboulis E.J. Martens J.H.A. Rao N.A. Aghajanirefah A. Manjeri G.R. Li Y. Ifrim D.C. Arts R.J.W. van der Veer B.M.J.W. Deen P.M.T. Logie C. O’Neill L.A. Willems P. van de Veerdonk F.L. van der Meer J.W.M. Ng A. Joosten L.A.B. Wijmenga C. Stunnenberg H.G. Xavier R.J. Netea M.G. mTOR- and HIF-1α–mediated aerobic glycolysis as metabolic basis for trained immunity. Science 2014 345 6204 1250684 10.1126/science.1250684 25258083
40 Denko N.C. Hypoxia, HIF1 and glucose metabolism in the solid tumour. Nat. Rev. Cancer 2008 8 9 705 713 10.1038/nrc2468 19143055
41 Gimeno-Bayón J. López-López A. Rodríguez M.J. Mahy N. Glucose pathways adaptation supports acquisition of activated microglia phenotype. J. Neurosci. Res. 2014 92 6 723 731 10.1002/jnr.23356 24510633
42 Yalcin A. Clem B.F. Imbert-Fernandez Y. Ozcan S.C. Peker S. O’Neal J. Klarer A.C. Clem A.L. Telang S. Chesney J. 6-Phosphofructo-2-kinase (PFKFB3) promotes cell cycle progression and suppresses apoptosis via Cdk1-mediated phosphorylation of p27. Cell Death Dis. 2014 5 7 e1337 10.1038/cddis.2014.292 25032860
43 Ros S. Schulze A. Balancing glycolytic flux: the role of 6-phosphofructo-2-kinase/fructose 2,6-bisphosphatases in cancer metabolism. Cancer Metab. 2013 1 1 8 10.1186/2049-3002-1-8 24280138
44 Holland R. McIntosh A.L. Finucane O.M. Mela V. Rubio-Araiz A. Timmons G. McCarthy S.A. Gun’ko Y.K. Lynch M.A. Inflammatory microglia are glycolytic and iron retentive and typify the microglia in APP/PS1 mice. Brain Behav. Immun. 2018 68 183 196 10.1016/j.bbi.2017.10.017 29061364
45 Rubio-Araiz A. Finucane O.M. Keogh S. Lynch M.A. Anti-TLR2 antibody triggers oxidative phosphorylation in microglia and increases phagocytosis of β-amyloid. J. Neuroinflammation 2018 15 1 247 10.1186/s12974-018-1281-7 30170611
46 McIntosh A. Mela V. Harty C. Minogue A.M. Costello D.A. Kerskens C. Lynch M.A. Iron accumulation in microglia triggers a cascade of events that leads to altered metabolism and compromised function in APP/PS1 mice. Brain Pathol. 2019 29 5 606 621 10.1111/bpa.12704 30661261
47 Finucane O.M. Sugrue J. Rubio-Araiz A. Guillot-Sestier M.V. Lynch M.A. The NLRP3 inflammasome modulates glycolysis by increasing PFKFB3 in an IL-1β-dependent manner in macrophages. Sci. Rep. 2019 9 1 4034 10.1038/s41598-019-40619-1 30858427
48 Nair S. Sobotka K.S. Joshi P. Gressens P. Fleiss B. Thornton C. Mallard C. Hagberg H. Lipopolysaccharide‐induced alteration of mitochondrial morphology induces a metabolic shift in microglia modulating the inflammatory response in vitro and in vivo. Glia 2019 67 6 1047 1061 10.1002/glia.23587 30637805
49 Qiao H. He X. Zhang Q. Yuan H. Wang D. Li L. Hui Y. Wu Z. Li W. Zhang N. Alpha-synuclein induces microglial migration via PKM2-dependent glycolysis. Int. J. Biol. Macromol. 2019 129 601 607 10.1016/j.ijbiomac.2019.02.029 30738168
50 Jha A.K. Huang S.C.C. Sergushichev A. Lampropoulou V. Ivanova Y. Loginicheva E. Chmielewski K. Stewart K.M. Ashall J. Everts B. Pearce E.J. Driggers E.M. Artyomov M.N. Network integration of parallel metabolic and transcriptional data reveals metabolic modules that regulate macrophage polarization. Immunity 2015 42 3 419 430 10.1016/j.immuni.2015.02.005 25786174
51 Mehla K. Singh P.K. Metabolic regulation of macrophage polarization in cancer. Trends Cancer 2019 5 12 822 834 10.1016/j.trecan.2019.10.007 31813459
52 Bernier L.P. York E.M. Kamyabi A. Choi H.B. Weilinger N.L. MacVicar B.A. Microglial metabolic flexibility supports immune surveillance of the brain parenchyma. Nat. Commun. 2020 11 1 1559 10.1038/s41467-020-15267-z 32214088
53 Kaushik D.K. Yong V.W. Metabolic needs of brain‐infiltrating leukocytes and microglia in multiple sclerosis. J. Neurochem. 2021 158 1 14 24 10.1111/jnc.15206 33025576
54 Sun H.N. Kim S.U. Lee M.S. Kim S.K. Kim J.M. Yim M. Yu D.Y. Lee D.S. Nicotinamide adenine dinucleotide phosphate (NADPH) oxidase-dependent activation of phosphoinositide 3-kinase and p38 mitogen-activated protein kinase signal pathways is required for lipopolysaccharide-induced microglial phagocytosis. Biol. Pharm. Bull. 2008 31 9 1711 1715 10.1248/bpb.31.1711 18758064
55 Zhai L. Ruan S. Wang J. Guan Q. Zha L. NADPH oxidase 4 regulate the glycolytic metabolic reprogramming of microglial cells to promote M1 polarization. J. Biochem. Mol. Toxicol. 2023 37 5 e23318 10.1002/jbt.23318 36762617
56 Tu D. Gao Y. Yang R. Guan T. Hong J.S. Gao H.M. The pentose phosphate pathway regulates chronic neuroinflammation and dopaminergic neurodegeneration. J. Neuroinflammation 2019 16 1 255 10.1186/s12974-019-1659-1 31805953
57 Mela V. Mota B.C. Milner M. McGinley A. Mills K.H.G. Kelly Á.M. Lynch M.A. Exercise-induced re-programming of age-related metabolic changes in microglia is accompanied by a reduction in senescent cells. Brain Behav. Immun. 2020 87 413 428 10.1016/j.bbi.2020.01.012 31978523
58 Orihuela R. McPherson C.A. Harry G.J. Microglial M1/M2 polarization and metabolic states. Br. J. Pharmacol. 2016 173 4 649 665 10.1111/bph.13139 25800044
59 Haschemi A. Kosma P. Gille L. Evans C.R. Burant C.F. Starkl P. Knapp B. Haas R. Schmid J.A. Jandl C. Amir S. Lubec G. Park J. Esterbauer H. Bilban M. Brizuela L. Pospisilik J.A. Otterbein L.E. Wagner O. The sedoheptulose kinase CARKL directs macrophage polarization through control of glucose metabolism. Cell Metab. 2012 15 6 813 826 10.1016/j.cmet.2012.04.023 22682222
60 Chausse B. Lewen A. Poschet G. Kann O. Selective inhibition of mitochondrial respiratory complexes controls the transition of microglia into a neurotoxic phenotype in situ. Brain Behav. Immun. 2020 88 802 814 10.1016/j.bbi.2020.05.052 32446944
61 Mills E.L. Ryan D.G. Prag H.A. Dikovskaya D. Menon D. Zaslona Z. Jedrychowski M.P. Costa A.S.H. Higgins M. Hams E. Szpyt J. Runtsch M.C. King M.S. McGouran J.F. Fischer R. Kessler B.M. McGettrick A.F. Hughes M.M. Carroll R.G. Booty L.M. Knatko E.V. Meakin P.J. Ashford M.L.J. Modis L.K. Brunori G. Sévin D.C. Fallon P.G. Caldwell S.T. Kunji E.R.S. Chouchani E.T. Frezza C. Dinkova-Kostova A.T. Hartley R.C. Murphy M.P. O’Neill L.A. Itaconate is an anti-inflammatory metabolite that activates Nrf2 via alkylation of KEAP1. Nature 2018 556 7699 113 117 10.1038/nature25986 29590092
62 Cordes T. Wallace M. Michelucci A. Divakaruni A.S. Sapcariu S.C. Sousa C. Koseki H. Cabrales P. Murphy A.N. Hiller K. Metallo C.M. Immunoresponsive gene 1 and itaconate inhibit succinate dehydrogenase to modulate intracellular succinate levels. J. Biol. Chem. 2016 291 27 14274 14284 10.1074/jbc.M115.685792 27189937
63 Kuo P.C. Weng W.T. Scofield B.A. Paraiso H.C. Brown D.A. Wang P.Y. Yu I.C. Yen J.H. Dimethyl itaconate, an itaconate derivative, exhibits immunomodulatory effects on neuroinflammation in experimental autoimmune encephalomyelitis. J. Neuroinflammation 2020 17 1 138 10.1186/s12974-020-01768-7 32349768
64 Kuo P.C. Weng W.T. Scofield B.A. Furnas D. Paraiso H.C. Yu I.C. Yen J.H. Immunoresponsive gene 1 modulates the severity of brain injury in cerebral ischaemia. Brain Commun. 2021 3 3 fcab187 10.1093/braincomms/fcab187 34557667
65 Bao M.W. Cai Z. Zhang X.J. Li L. Liu X. Wan N. Hu G. Wan F. Zhang R. Zhu X. Xia H. Li H. Dickkopf-3 protects against cardiac dysfunction and ventricular remodelling following myocardial infarction. Basic Res. Cardiol. 2015 110 3 25 10.1007/s00395-015-0481-x 25840773
66 Caffo M. Fusco R. Siracusa R. Caruso G. Barresi V. Di Paola R. Cuzzocrea S. Germanò A.F. Cardali S.M. Molecular investigation of DKK3 in cerebral ischemic/reperfusion injury. Biomedicines 2023 11 3 815 10.3390/biomedicines11030815 36979794
67 Xu Y. Nowrangi D. Liang H. Wang T. Yu L. Lu T. Lu Z. Zhang J.H. Luo B. Tang J. DKK3 attenuates JNK and AP-1 induced inflammation via Kremen-1 and DVL-1 in mice following intracerebral hemorrhage. J. Neuroinflammation 2020 17 1 130 10.1186/s12974-020-01794-5 32331523
68 Zhang L.Q. Gao S.J. Sun J. Li D.Y. Wu J.Y. Song F.H. Liu D.Q. Zhou Y.Q. Mei W. DKK3 ameliorates neuropathic pain via inhibiting ASK-1/JNK/p-38-mediated microglia polarization and neuroinflammation. J. Neuroinflammation 2022 19 1 129 10.1186/s12974-022-02495-x 35658977
69 Geng J. Zhang Y. Li S. Li S. Wang J. Wang H. Aa J. Wang G. Metabolomic profiling reveals that reprogramming of cerebral glucose metabolism is involved in ischemic preconditioning-induced neuroprotection in a rodent model of ischemic stroke. J. Proteome Res. 2019 18 1 57 68 30362349
70 Ito M. Aswendt M. Lee A.G. Ishizaka S. Cao Z. Wang E.H. Levy S.L. Smerin D.L. McNab J.A. Zeineh M. Leuze C. Goubran M. Cheng M.Y. Steinberg G.K. RNA-sequencing analysis revealed a distinct motor cortex transcriptome in spontaneously recovered mice after stroke. Stroke 2018 49 9 2191 2199 10.1161/STROKEAHA.118.021508 30354987
71 Li Y. Lu B. Sheng L. Zhu Z. Sun H. Zhou Y. Yang Y. Xue D. Chen W. Tian X. Du Y. Yan M. Zhu W. Xing F. Li K. Lin S. Qiu P. Su X. Huang Y. Yan G. Yin W. Hexokinase 2‐dependent hyperglycolysis driving microglial activation contributes to ischemic brain injury. J. Neurochem. 2018 144 2 186 200 10.1111/jnc.14267 29205357
72 Ma W. Wu Q. Wang S. Wang H. Ye J. Sun H. Feng Z. He W. Chu S. Zhang Z. Chen N. A breakdown of metabolic reprogramming in microglia induced by CKLF1 exacerbates immune tolerance in ischemic stroke. J. Neuroinflammation 2023 20 1 97 10.1186/s12974-023-02779-w 37098609
73 Michelakis E.D. Webster L. Mackey J.R. Dichloroacetate (DCA) as a potential metabolic-targeting therapy for cancer. Br. J. Cancer 2008 99 7 989 994 10.1038/sj.bjc.6604554 18766181
74 Hong D.K. Kho A.R. Choi B.Y. Lee S.H. Jeong J.H. Lee S.H. Park K.H. Park J.B. Suh S.W. Combined treatment with dichloroacetic acid and pyruvate reduces hippocampal neuronal death after transient cerebral ischemia. Front. Neurol. 2018 9 137 10.3389/fneur.2018.00137 29593636
75 Cheng J. Zhang R. Xu Z. Ke Y. Sun R. Yang H. Zhang X. Zhen X. Zheng L.T. Early glycolytic reprogramming controls microglial inflammatory activation. J. Neuroinflammation 2021 18 1 129 10.1186/s12974-021-02187-y 34107997
76 Guo C. Ludvik A.E. Arlotto M.E. Hayes M.G. Armstrong L.L. Scholtens D.M. Brown C.D. Newgard C.B. Becker T.C. Layden B.T. Lowe W.L. Reddy T.E. Coordinated regulatory variation associated with gestational hyperglycaemia regulates expression of the novel hexokinase HKDC1. Nat. Commun. 2015 6 1 6069 10.1038/ncomms7069 25648650
77 Lauro C. Catalano M. Trettel F. Limatola C. Fractalkine in the nervous system: neuroprotective or neurotoxic molecule? Ann. N. Y. Acad. Sci. 2015 1351 1 141 148 10.1111/nyas.12805 26084002
78 Lauro C. Chece G. Monaco L. Antonangeli F. Peruzzi G. Rinaldo S. Paone A. Cutruzzolà F. Limatola C. Fractalkine modulates microglia metabolism in brain ischemia. Front. Cell. Neurosci. 2019 13 414 10.3389/fncel.2019.00414 31607865
79 Cipriani R. Villa P. Chece G. Lauro C. Paladini A. Micotti E. Perego C. De Simoni M.G. Fredholm B.B. Eusebi F. Limatola C. CX3CL1 is neuroprotective in permanent focal cerebral ischemia in rodents. J. Neurosci. 2011 31 45 16327 16335 10.1523/JNEUROSCI.3611-11.2011 22072684
80 Shen H. Pei H. Zhai L. Guan Q. Wang G. Salvianolic acid C improves cerebral ischemia reperfusion injury through suppressing microglial cell M1 polarization and promoting cerebral angiogenesis. Int. Immunopharmacol. 2022 110 109021 10.1016/j.intimp.2022.109021 35810493
81 Song S. Yu L. Hasan M.N. Paruchuri S.S. Mullett S.J. Sullivan M.L.G. Fiesler V.M. Young C.B. Stolz D.B. Wendell S.G. Sun D. Elevated microglial oxidative phosphorylation and phagocytosis stimulate post-stroke brain remodeling and cognitive function recovery in mice. Commun. Biol. 2022 5 1 35 10.1038/s42003-021-02984-4 35017668
82 Jin W.N. Shi S.X.Y. Li Z. Li M. Wood K. Gonzales R.J. Liu Q. Depletion of microglia exacerbates postischemic inflammation and brain injury. J. Cereb. Blood Flow Metab. 2017 37 6 2224 2236 10.1177/0271678X17694185 28273719
83 Gomes A.S. Ramos H. Soares J. Saraiva L. p53 and glucose metabolism: An orchestra to be directed in cancer therapy. Pharmacol. Res. 2018 131 75 86 10.1016/j.phrs.2018.03.015 29580896
84 Bensaad K. Tsuruta A. Selak M.A. Vidal M.N.C. Nakano K. Bartrons R. Gottlieb E. Vousden K.H. TIGAR, a p53-inducible regulator of glycolysis and apoptosis. Cell 2006 126 1 107 120 10.1016/j.cell.2006.05.036 16839880
85 Li Q.Q. Li J.Y. Zhou M. Qin Z.H. Sheng R. Targeting neuroinflammation to treat cerebral ischemia - The role of TIGAR/NADPH axis. Neurochem. Int. 2021 148 105081 10.1016/j.neuint.2021.105081 34082063
86 Herrero-Mendez A. Almeida A. Fernández E. Maestre C. Moncada S. Bolaños J.P. The bioenergetic and antioxidant status of neurons is controlled by continuous degradation of a key glycolytic enzyme by APC/C–Cdh1. Nat. Cell Biol. 2009 11 6 747 752 10.1038/ncb1881 19448625
87 Green D.R. Chipuk J.E. p53 and Metabolism: Inside the TIGAR. Cell 2006 126 1 30 32 10.1016/j.cell.2006.06.032 16839873
88 Patra K.C. Hay N. The pentose phosphate pathway and cancer. Trends Biochem. Sci. 2014 39 8 347 354 10.1016/j.tibs.2014.06.005 25037503
89 Li M. Zhou Z.P. Sun M. Cao L. Chen J. Qin Y.Y. Gu J.H. Han F. Sheng R. Wu J.C. Ding Y. Qin Z.H. Reduced nicotinamide adenine dinucleotide phosphate, a pentose phosphate pathway product, might be a novel drug candidate for ischemic stroke. Stroke 2016 47 1 187 195 10.1161/STROKEAHA.115.009687 26564104
90 Li M. Sun M. Cao L. Gu J. Ge J. Chen J. Han R. Qin Y.Y. Zhou Z.P. Ding Y. Qin Z.H. A TIGAR-regulated metabolic pathway is critical for protection of brain ischemia. J. Neurosci. 2014 34 22 7458 7471 10.1523/JNEUROSCI.4655-13.2014 24872551
91 Cao L. Zhang D. Chen J. Qin Y.Y. Sheng R. Feng X. Chen Z. Ding Y. Li M. Qin Z.H. G6PD plays a neuroprotective role in brain ischemia through promoting pentose phosphate pathway. Free Radic. Biol. Med. 2017 112 433 444 10.1016/j.freeradbiomed.2017.08.011 28823591
92 Hu J. Baydyuk M. Huang J.K. Impact of amino acids on microglial activation and CNS remyelination. Curr. Opin. Pharmacol. 2022 66 102287 10.1016/j.coph.2022.102287 36067684
93 Tannahill G.M. Curtis A.M. Adamik J. Palsson-McDermott E.M. McGettrick A.F. Goel G. Frezza C. Bernard N.J. Kelly B. Foley N.H. Zheng L. Gardet A. Tong Z. Jany S.S. Corr S.C. Haneklaus M. Caffrey B.E. Pierce K. Walmsley S. Beasley F.C. Cummins E. Nizet V. Whyte M. Taylor C.T. Lin H. Masters S.L. Gottlieb E. Kelly V.P. Clish C. Auron P.E. Xavier R.J. O’Neill L.A.J. Succinate is an inflammatory signal that induces IL-1β through HIF-1α. Nature 2013 496 7444 238 242 10.1038/nature11986 23535595
94 Tretter L. Patocs A. Chinopoulos C. Succinate, an intermediate in metabolism, signal transduction, ROS, hypoxia, and tumorigenesis. Biochim. Biophys. Acta Bioenerg. 2016 1857 8 1086 1101 10.1016/j.bbabio.2016.03.012 26971832
95 Palsson-McDermott E.M. O’Neill L.A.J. The Warburg effect then and now: From cancer to inflammatory diseases. BioEssays 2013 35 11 965 973 10.1002/bies.201300084 24115022
96 McKenna M.C. The glutamate‐glutamine cycle is not stoichiometric: Fates of glutamate in brain. J. Neurosci. Res. 2007 85 15 3347 3358 10.1002/jnr.21444 17847118
97 Tani H. Dulla C.G. Farzampour Z. Taylor-Weiner A. Huguenard J.R. Reimer R.J. A local glutamate-glutamine cycle sustains synaptic excitatory transmitter release. Neuron 2014 81 4 888 900 10.1016/j.neuron.2013.12.026 24559677
98 Bak L.K. Schousboe A. Waagepetersen H.S. The glutamate/GABA‐glutamine cycle: Aspects of transport, neurotransmitter homeostasis and ammonia transfer. J. Neurochem. 2006 98 3 641 653 10.1111/j.1471-4159.2006.03913.x 16787421
99 Durán R.V. Oppliger W. Robitaille A.M. Heiserich L. Skendaj R. Gottlieb E. Hall M.N. Glutaminolysis activates Rag-mTORC1 signaling. Mol. Cell 2012 47 3 349 358 10.1016/j.molcel.2012.05.043 22749528
100 Jewell J.L. Kim Y.C. Russell R.C. Yu F.X. Park H.W. Plouffe S.W. Tagliabracci V.S. Guan K.L. Differential regulation of mTORC1 by leucine and glutamine. Science 2015 347 6218 194 198 10.1126/science.1259472 25567907
101 Madry C. Arancibia-Cárcamo I.L. Kyrargyri V. Chan V.T.T. Hamilton N.B. Attwell D. Effects of the ecto-ATPase apyrase on microglial ramification and surveillance reflect cell depolarization, not ATP depletion. Proc. Natl. Acad. Sci. 2018 115 7 E1608 E1617 10.1073/pnas.1715354115 29382767
102 Vergen J. Hecht C. Zholudeva L.V. Marquardt M.M. Hallworth R. Nichols M.G. Metabolic imaging using two-photon excited NADH intensity and fluorescence lifetime imaging. Microsc. Microanal. 2012 18 4 761 770 10.1017/S1431927612000529 22832200
103 Palmieri E.M. Menga A. Lebrun A. Hooper D.C. Butterfield D.A. Mazzone M. Castegna A. Blockade of glutamine synthetase enhances inflammatory response in microglial cells. Antioxid. Redox Signal. 2017 26 8 351 363 10.1089/ars.2016.6715 27758118
104 Jayasooriya R.G.P.T. Molagoda I.M.N. Dilshara M.G. Choi Y.H. Kim G.Y. Glutamine cooperatively upregulates lipopolysaccharide-induced nitric oxide production in BV2 microglial cells through the ERK and Nrf-2/HO-1 signaling pathway. Antioxidants 2020 9 6 536 10.3390/antiox9060536 32575515
105 Calabrese V. Mancuso C. Calvani M. Rizzarelli E. Butterfield D.A. Giuffrida Stella A.M. Nitric oxide in the central nervous system: neuroprotection versus neurotoxicity. Nat. Rev. Neurosci. 2007 8 10 766 775 10.1038/nrn2214 17882254
106 Džoljić E. Grbatinić I. Kostić V. Why is nitric oxide important for our brain? Funct. Neurol. 2015 30 3 159 163 26910176
107 Rao J.S. Kellom M. Kim H.W. Rapoport S.I. Reese E.A. Neuroinflammation and synaptic loss. Neurochem. Res. 2012 37 5 903 910 10.1007/s11064-012-0708-2 22311128
108 Yuste J.E. Tarragon E. Campuzano C.M. Ros-Bernal F. Implications of glial nitric oxide in neurodegenerative diseases. Front. Cell. Neurosci. 2015 9 322 10.3389/fncel.2015.00322 26347610
109 Iadecola C. Alexander M. Cerebral ischemia and inflammation. Curr. Opin. Neurol. 2001 14 1 89 94 10.1097/00019052-200102000-00014 11176223
110 Paolocci N. Biondi R. Bettini M. Lee C.I. Berlowitz C.O. Rossi R. Xia Y. Ambrosio G. L’Abbate A. Kass D.A. Zweier J.L. Oxygen radical-mediated reduction in basal and agonist-evoked NO release in isolated rat heart. J. Mol. Cell. Cardiol. 2001 33 4 671 679 10.1006/jmcc.2000.1334 11341236
111 Albrecht J. Sidoryk-Węgrzynowicz M. Zielińska M. Aschner M. Roles of glutamine in neurotransmission. Neuron Glia Biol. 2010 6 4 263 276 10.1017/S1740925X11000093 22018046
112 Jurga A.M. Paleczna M. Kuter K.Z. Overview of general and discriminating markers of differential microglia phenotypes. Front. Cell. Neurosci. 2020 14 198 10.3389/fncel.2020.00198 32848611
113 Jobgen W.S. Fried S.K. Fu W.J. Meininger C.J. Wu G. Regulatory role for the arginine–nitric oxide pathway in metabolism of energy substrates. J. Nutr. Biochem. 2006 17 9 571 588 10.1016/j.jnutbio.2005.12.001 16524713
114 Mantovani A. Biswas S.K. Galdiero M.R. Sica A. Locati M. Macrophage plasticity and polarization in tissue repair and remodelling. J. Pathol. 2013 229 2 176 185 10.1002/path.4133 23096265
115 Calabrese C. Poppleton H. Kocak M. Hogg T.L. Fuller C. Hamner B. Oh E.Y. Gaber M.W. Finklestein D. Allen M. Frank A. Bayazitov I.T. Zakharenko S.S. Gajjar A. Davidoff A. Gilbertson R.J. A perivascular niche for brain tumor stem cells. Cancer Cell 2007 11 1 69 82 10.1016/j.ccr.2006.11.020 17222791
116 Chen S.F. Pan M.X. Tang J.C. Cheng J. Zhao D. Zhang Y. Liao H.B. Liu R. Zhuang Y. Zhang Z.F. Chen J. Lei R.X. Li S.F. Li H.T. Wang Z.F. Wan Q. Arginine is neuroprotective through suppressing HIF-1α/LDHA-mediated inflammatory response after cerebral ischemia/reperfusion injury. Mol. Brain 2020 13 1 63 10.1186/s13041-020-00601-9 32321555
117 Hsieh K.F. Shih J.M. Shih Y.M. Pai M.H. Yeh S.L. Arginine administration increases circulating endothelial progenitor cells and attenuates tissue injury in a mouse model of hind limb ischemia/reperfusion. Nutrition 2018 55-56 29 35 10.1016/j.nut.2018.02.019 29960153
118 Zhao D. Chen J. Zhang Y. Liao H.B. Zhang Z.F. Zhuang Y. Pan M.X. Tang J.C. Liu R. Lei Y. Wang S. Qin X.P. Feng Y.G. Chen Y. Wan Q. Glycine confers neuroprotection through PTEN/AKT signal pathway in experimental intracerebral hemorrhage. Biochem. Biophys. Res. Commun. 2018 501 1 85 91 10.1016/j.bbrc.2018.04.171 29698679
119 Liu R. Liao X.Y. Pan M.X. Tang J.C. Chen S.F. Zhang Y. Lu P.X. Lu L.J. Zou Y.Y. Qin X.P. Bu L.H. Wan Q. Glycine exhibits neuroprotective effects in ischemic stroke in rats through the inhibition of M1 microglial polarization via the NF-κB p65/Hif-1α signaling pathway. J. Immunol. 2019 202 6 1704 1714 10.4049/jimmunol.1801166 30710045
120 Chen S. Dong Z. Cheng M. Zhao Y. Wang M. Sai N. Wang X. Liu H. Huang G. Zhang X. Homocysteine exaggerates microglia activation and neuroinflammation through microglia localized STAT3 overactivation following ischemic stroke. J. Neuroinflammation 2017 14 1 187 10.1186/s12974-017-0963-x 28923114
121 De Simone R. Vissicchio F. Mingarelli C. De Nuccio C. Visentin S. Ajmone-Cat M.A. Minghetti L. Branched-chain amino acids influence the immune properties of microglial cells and their responsiveness to pro-inflammatory signals. Biochim. Biophys. Acta Mol. Basis Dis. 2013 1832 5 650 659 10.1016/j.bbadis.2013.02.001 23402925
122 Chi O.Z. Hunter C. Liu X. Weiss H.R. Effects of exogenous excitatory amino acid neurotransmitters on blood-brain barrier disruption in focal cerebral ischemia. Neurochem. Res. 2009 34 7 1249 1254 10.1007/s11064-008-9902-7 19127429
123 Lucas D.R. Newhouse J.P. The toxic effect of sodium L-glutamate on the inner layers of the retina. Arch. Ophthalmol. 1957 58 2 193 201 10.1001/archopht.1957.00940010205006 13443577
124 Gao G. Li C. Zhu J. Wang Y. Huang Y. Zhao S. Sheng S. Song Y. Ji C. Li C. Yang X. Ye L. Qi X. Zhang Y. Xia X. Zheng J.C. Glutaminase 1 regulates neuroinflammation after cerebral ischemia through enhancing microglial activation and pro-inflammatory exosome release. Front. Immunol. 2020 11 161 10.3389/fimmu.2020.00161 32117296
125 White C.J. Lee J. Choi J. Chu T. Scafidi S. Wolfgang M.J. Determining the bioenergetic capacity for fatty acid oxidation in the mammalian nervous system. Mol. Cell. Biol. 2020 40 10 e00037 e20 10.1128/MCB.00037-20 32123009
126 Brown G.C. Neher J.J. Microglial phagocytosis of live neurons. Nat. Rev. Neurosci. 2014 15 4 209 216 10.1038/nrn3710 24646669
127 Gao Y. Vidal-Itriago A. Kalsbeek M.J. Layritz C. García-Cáceres C. Tom R.Z. Eichmann T.O. Vaz F.M. Houtkooper R.H. van der Wel N. Verhoeven A.J. Yan J. Kalsbeek A. Eckel R.H. Hofmann S.M. Yi C.X. Lipoprotein lipase maintains microglial innate immunity in obesity. Cell Rep. 2017 20 13 3034 3042 10.1016/j.celrep.2017.09.008 28954222
128 Mauerer R. Walczak Y. Langmann T. Comprehensive mRNA profiling of lipid-related genes in microglia and macrophages using taqman arrays. Methods Mol. Biol. 2009 580 187 201 10.1007/978-1-60761-325-1_10 19784600
129 Mecha M. Feliú A. Carrillo-Salinas F.J. Rueda-Zubiaurre A. Ortega-Gutiérrez S. de Sola R.G. Guaza C. Endocannabinoids drive the acquisition of an alternative phenotype in microglia. Brain Behav. Immun. 2015 49 233 245 10.1016/j.bbi.2015.06.002 26086345
130 Nadjar A. Role of metabolic programming in the modulation of microglia phagocytosis by lipids. Prostaglandins Leukot. Essent. Fatty Acids 2018 135 63 73 10.1016/j.plefa.2018.07.006 30103935
131 Zhou Y. Song W.M. Andhey P.S. Swain A. Levy T. Miller K.R. Poliani P.L. Cominelli M. Grover S. Gilfillan S. Cella M. Ulland T.K. Zaitsev K. Miyashita A. Ikeuchi T. Sainouchi M. Kakita A. Bennett D.A. Schneider J.A. Nichols M.R. Beausoleil S.A. Ulrich J.D. Holtzman D.M. Artyomov M.N. Colonna M. Human and mouse single-nucleus transcriptomics reveal TREM2-dependent and TREM2-independent cellular responses in Alzheimer’s disease. Nat. Med. 2020 26 1 131 142 10.1038/s41591-019-0695-9 31932797
132 Keren-Shaul H. Spinrad A. Weiner A. Matcovitch-Natan O. Dvir-Szternfeld R. Ulland T.K. David E. Baruch K. Lara-Astaiso D. Toth B. Itzkovitz S. Colonna M. Schwartz M. Amit I. A unique microglia type associated with restricting development of alzheimer’s disease. Cell 2017 169 7 1276 1290.e17 10.1016/j.cell.2017.05.018 28602351
133 Mudò G. Frinchi M. Nuzzo D. Scaduto P. Plescia F. Massenti M.F. Di Carlo M. Cannizzaro C. Cassata G. Cicero L. Ruscica M. Belluardo N. Grimaldi L.M. Anti-inflammatory and cognitive effects of interferon-β1a (IFNβ1a) in a rat model of Alzheimer’s disease. J. Neuroinflammation 2019 16 1 44 10.1186/s12974-019-1417-4 30777084
134 Gill E.L. Raman S. Yost R.A. Garrett T.J. Vedam-Mai V. L -carnitine inhibits lipopolysaccharide-induced nitric oxide production of SIM-A9 microglia cells. ACS Chem. Neurosci. 2018 9 5 901 905 10.1021/acschemneuro.7b00468 29370524
135 Odegaard J.I. Ricardo-Gonzalez R.R. Goforth M.H. Morel C.R. Subramanian V. Mukundan L. Eagle A.R. Vats D. Brombacher F. Ferrante A.W. Chawla A. Macrophage-specific PPARγ controls alternative activation and improves insulin resistance. Nature 2007 447 7148 1116 1120 10.1038/nature05894 17515919
136 Vats D. Mukundan L. Odegaard J.I. Zhang L. Smith K.L. Morel C.R. Greaves D.R. Murray P.J. Chawla A. Chawla A. Oxidative metabolism and PGC-1β attenuate macrophage-mediated inflammation. Cell Metab. 2006 4 1 13 24 10.1016/j.cmet.2006.05.011 16814729
137 Infantino V. Convertini P. Cucci L. Panaro M.A. Di Noia M.A. Calvello R. Palmieri F. Iacobazzi V. The mitochondrial citrate carrier: A new player in inflammation. Biochem. J. 2011 438 3 433 436 10.1042/BJ20111275 21787310
138 Laplante M. Sabatini D.M. An emerging role of mTOR in lipid biosynthesis. Curr. Biol. 2009 19 22 R1046 R1052 10.1016/j.cub.2009.09.058 19948145
139 Gaber T. Strehl C. Buttgereit F. Metabolic regulation of inflammation. Nat. Rev. Rheumatol. 2017 13 5 267 279 10.1038/nrrheum.2017.37 28331208
140 Samokhvalov V. Ussher J.R. Fillmore N. Armstrong I.K.G. Keung W. Moroz D. Lopaschuk D.G. Seubert J. Lopaschuk G.D. Inhibition of malonyl-CoA decarboxylase reduces the inflammatory response associated with insulin resistance. Am. J. Physiol. Endocrinol. Metab. 2012 303 12 E1459 E1468 10.1152/ajpendo.00018.2012 23074239
141 Foster D.W. Malonyl-CoA: The regulator of fatty acid synthesis and oxidation. J. Clin. Invest. 2012 122 6 1958 1959 10.1172/JCI63967 22833869
142 Wang Z. Liu D. Wang F. Liu S. Zhao S. Ling E.A. Hao A. Saturated fatty acids activate microglia via Toll-like receptor 4/NF-κB signalling. Br. J. Nutr. 2012 107 2 229 241 10.1017/S0007114511002868 21733316
143 Rapoport S.I. Chang M.C.J. Spector A.A. Delivery and turnover of plasma-derived essential PUFAs in mammalian brain. J. Lipid Res. 2001 42 5 678 685 10.1016/S0022-2275(20)31629-1 11352974
144 Chausse B. Kakimoto P.A. Caldeira-da-Silva C.C. Chaves-Filho A.B. Yoshinaga M.Y. da Silva R.P. Miyamoto S. Kowaltowski A.J. Distinct metabolic patterns during microglial remodeling by oleate and palmitate. Biosci. Rep. 2019 39 4 BSR20190072 10.1042/BSR20190072 30867255
145 Feng J. Han J. Pearce S.F.A. Silverstein R.L. Gotto A.M. Jr Hajjar D.P. Nicholson A.C. Induction of CD36 expression by oxidized LDL and IL-4 by a common signaling pathway dependent on protein kinase C and PPAR-γ. J. Lipid Res. 2000 41 5 688 696 10.1016/S0022-2275(20)32377-4 10787429
146 Hernando S. Requejo C. Herran E. Ruiz-Ortega J.A. Morera-Herreras T. Lafuente J.V. Ugedo L. Gainza E. Pedraz J.L. Igartua M. Hernandez R.M. Beneficial effects of n-3 polyunsaturated fatty acids administration in a partial lesion model of Parkinson’s disease: The role of glia and NRf2 regulation. Neurobiol. Dis. 2019 121 252 262 10.1016/j.nbd.2018.10.001 30296616
147 Jump D.B. Clarke S.D. Regulation of gene expression by dietary fat. Annu. Rev. Nutr. 1999 19 1 63 90 10.1146/annurev.nutr.19.1.63 10448517
148 Jiang X. Pu H. Hu X. Wei Z. Hong D. Zhang W. Gao Y. Chen J. Shi Y. A post-stroke therapeutic regimen with omega-3 polyunsaturated fatty acids that promotes white matter integrity and beneficial microglial responses after cerebral ischemia. Transl. Stroke Res. 2016 7 6 548 561 10.1007/s12975-016-0502-6 27714669
149 Talamonti E. Sasso V. To H. Haslam R.P. Napier J.A. Ulfhake B. Pernold K. Asadi A. Hessa T. Jacobsson A. Chiurchiù V. Viscomi M.T. Impairment of DHA synthesis alters the expression of neuronal plasticity markers and the brain inflammatory status in mice. FASEB J. 2020 34 2 2024 2040 10.1096/fj.201901890RR 31909582
150 Chang P.K.Y. Khatchadourian A. McKinney R.A. Maysinger D. Docosahexaenoic acid (DHA): A modulator of microglia activity and dendritic spine morphology. J. Neuroinflammation 2015 12 1 34 10.1186/s12974-015-0244-5 25889069
151 Fernandez R.F. Kim S.Q. Zhao Y. Foguth R.M. Weera M.M. Counihan J.L. Nomura D.K. Chester J.A. Cannon J.R. Ellis J.M. Acyl-CoA synthetase 6 enriches the neuroprotective omega-3 fatty acid DHA in the brain. Proc. Natl. Acad. Sci. 2018 115 49 12525 12530 10.1073/pnas.1807958115 30401738
152 Duffy C.M. Xu H. Nixon J.P. Bernlohr D.A. Butterick T.A. Identification of a fatty acid binding protein4-UCP2 axis regulating microglial mediated neuroinflammation. Mol. Cell. Neurosci. 2017 80 52 57 10.1016/j.mcn.2017.02.004 28214555
153 Duffy C.M. Yuan C. Wisdorf L.E. Billington C.J. Kotz C.M. Nixon J.P. Butterick T.A. Role of orexin A signaling in dietary palmitic acid-activated microglial cells. Neurosci. Lett. 2015 606 140 144 10.1016/j.neulet.2015.08.033 26306651
154 Button E.B. Mitchell A.S. Domingos M.M. Chung J.H.J. Bradley R.M. Hashemi A. Marvyn P.M. Patterson A.C. Stark K.D. Quadrilatero J. Duncan R.E. Microglial cell activation increases saturated and decreases monounsaturated fatty acid content, but both lipid species are proinflammatory. Lipids 2014 49 4 305 316 10.1007/s11745-014-3882-y 24473753
155 Filipello F. Goldsbury C. You S.F. Locca A. Karch C.M. Piccio L. Soluble TREM2: Innocent bystander or active player in neurological diseases? Neurobiol. Dis. 2022 165 105630 10.1016/j.nbd.2022.105630 35041990
156 Ulland T.K. Song W.M. Huang S.C.C. Ulrich J.D. Sergushichev A. Beatty W.L. Loboda A.A. Zhou Y. Cairns N.J. Kambal A. Loginicheva E. Gilfillan S. Cella M. Virgin H.W. Unanue E.R. Wang Y. Artyomov M.N. Holtzman D.M. Colonna M. TREM2 maintains microglial metabolic fitness in alzheimer’s disease. Cell 2017 170 4 649 663.e13 10.1016/j.cell.2017.07.023 28802038
157 Piers T.M. Cosker K. Mallach A. Johnson G.T. Guerreiro R. Hardy J. Pocock J.M. A locked immunometabolic switch underlies TREM2 R47H loss of function in human iPSC‐derived microglia. FASEB J. 2020 34 2 2436 2450 10.1096/fj.201902447R 31907987
158 Krasemann S. Madore C. Cialic R. Baufeld C. Calcagno N. El Fatimy R. Beckers L. O’Loughlin E. Xu Y. Fanek Z. Greco D.J. Smith S.T. Tweet G. Humulock Z. Zrzavy T. Conde-Sanroman P. Gacias M. Weng Z. Chen H. Tjon E. Mazaheri F. Hartmann K. Madi A. Ulrich J.D. Glatzel M. Worthmann A. Heeren J. Budnik B. Lemere C. Ikezu T. Heppner F.L. Litvak V. Holtzman D.M. Lassmann H. Weiner H.L. Ochando J. Haass C. Butovsky O. The TREM2-APOE pathway drives the transcriptional phenotype of dysfunctional microglia in neurodegenerative diseases. Immunity 2017 47 3 566 581.e9 10.1016/j.immuni.2017.08.008 28930663
159 Dong Y. D’Mello C. Pinsky W. Lozinski B.M. Kaushik D.K. Ghorbani S. Moezzi D. Brown D. Melo F.C. Zandee S. Vo T. Prat A. Whitehead S.N. Yong V.W. Oxidized phosphatidylcholines found in multiple sclerosis lesions mediate neurodegeneration and are neutralized by microglia. Nat. Neurosci. 2021 24 4 489 503 10.1038/s41593-021-00801-z 33603230
160 Churchward M.A. Tchir D.R. Todd K.G. Microglial function during glucose deprivation: Inflammatory and neuropsychiatric implications. Mol. Neurobiol. 2018 55 2 1477 1487 10.1007/s12035-017-0422-9 28176274
161 Liao B. Geng L. Zhang F. Shu L. Wei L. Yeung P.K.K. Lam K.S.L. Chung S.K. Chang J. Vanhoutte P.M. Xu A. Wang K. Hoo R.L.C. Adipocyte fatty acid-binding protein exacerbates cerebral ischaemia injury by disrupting the blood-brain barrier. Eur. Heart J. 2020 41 33 3169 3180 10.1093/eurheartj/ehaa207 32350521
162 Loppi S.H. Tavera-Garcia M.A. Becktel D.A. Maiyo B.K. Johnson K.E. Nguyen T.V.V. Schnellmann R.G. Doyle K.P. Increased fatty acid metabolism and decreased glycolysis are hallmarks of metabolic reprogramming within microglia in degenerating white matter during recovery from experimental stroke. J. Cereb. Blood Flow Metab. 2023 43 7 1099 1114 10.1177/0271678X231157298 36772984
163 Wang J. Shi Y. Zhang L. Zhang F. Hu X. Zhang W. Leak R.K. Gao Y. Chen L. Chen J. Omega-3 polyunsaturated fatty acids enhance cerebral angiogenesis and provide long-term protection after stroke. Neurobiol. Dis. 2014 68 91 103 10.1016/j.nbd.2014.04.014 24794156
164 Zhang M. Wang S. Mao L. Leak R.K. Shi Y. Zhang W. Hu X. Sun B. Cao G. Gao Y. Xu Y. Chen J. Zhang F. Omega-3 fatty acids protect the brain against ischemic injury by activating Nrf2 and upregulating heme oxygenase 1. J. Neurosci. 2014 34 5 1903 1915 10.1523/JNEUROSCI.4043-13.2014 24478369
165 Orr S.K. Trépanier M.O. Bazinet R.P. n-3 Polyunsaturated fatty acids in animal models with neuroinflammation. Prostaglandins Leukot. Essent. Fatty Acids 2013 88 1 97 103 10.1016/j.plefa.2012.05.008 22770766
166 Pu H. Jiang X. Hu X. Xia J. Hong D. Zhang W. Gao Y. Chen J. Shi Y. Delayed docosahexaenoic acid treatment combined with dietary supplementation of omega-3 fatty acids promotes long-term neurovascular restoration after ischemic stroke. Transl. Stroke Res. 2016 7 6 521 534 10.1007/s12975-016-0498-y 27566736
167 Bacarin C.C. Godinho J. de Oliveira R.M.W. Matsushita M. Gohara A.K. Cardozo-Filho L. Lima J.C. Previdelli I.S. Melo S.R. Ribeiro M.H.D.M. Milani H. Postischemic fish oil treatment restores long-term retrograde memory and dendritic density: An analysis of the time window of efficacy. Behav. Brain Res. 2016 311 425 439 10.1016/j.bbr.2016.05.047 27235715
168 Correia B.C. Mori M.A. Dias F.F.E. Valério R.C. Weffort de Oliveira R.M. Milani H. Fish oil provides robust and sustained memory recovery after cerebral ischemia: Influence of treatment regimen. Physiol. Behav. 2013 119 61 71 10.1016/j.physbeh.2013.06.001 23770426
169 Blondeau N. Nguemeni C. Debruyne D.N. Piens M. Wu X. Pan H. Hu X. Gandin C. Lipsky R.H. Plumier J.C. Marini A.M. Heurteaux C. Subchronic alpha-linolenic acid treatment enhances brain plasticity and exerts an antidepressant effect: A versatile potential therapy for stroke. Neuropsychopharmacology 2009 34 12 2548 2559 10.1038/npp.2009.84 19641487
170 Miao Z. Schultzberg M. Wang X. Zhao Y. Role of polyunsaturated fatty acids in ischemic stroke - A perspective of specialized pro-resolving mediators. Clin. Nutr. 2021 40 5 2974 2987 10.1016/j.clnu.2020.12.037 33509668
171 Ren Z. Chen L. Wang Y. Wei X. Zeng S. Zheng Y. Gao C. Liu H. Activation of the omega-3 fatty acid receptor GPR120 protects against focal cerebral ischemic injury by preventing inflammation and apoptosis in mice. J. Immunol. 2019 202 3 747 759 10.4049/jimmunol.1800637 30598514
172 Zendedel A. Habib P. Dang J. Lammerding L. Hoffmann S. Beyer C. Slowik A. Omega-3 polyunsaturated fatty acids ameliorate neuroinflammation and mitigate ischemic stroke damage through interactions with astrocytes and microglia. J. Neuroimmunol. 2015 278 200 211 10.1016/j.jneuroim.2014.11.007 25468770
173 Fourrier C. Remus-Borel J. Greenhalgh A.D. Guichardant M. Bernoud-Hubac N. Lagarde M. Joffre C. Layé S. Docosahexaenoic acid-containing choline phospholipid modulates LPS-induced neuroinflammation in vivo and in microglia in vitro. J. Neuroinflammation 2017 14 1 170 10.1186/s12974-017-0939-x 28838312
174 Zhang W. Wang H. Zhang H. Leak R.K. Shi Y. Hu X. Gao Y. Chen J. Dietary supplementation with omega-3 polyunsaturated fatty acids robustly promotes neurovascular restorative dynamics and improves neurological functions after stroke. Exp. Neurol. 2015 272 170 180 10.1016/j.expneurol.2015.03.005 25771800
175 Giaume C. McCarthy K.D. Control of gap-junctional communication in astrocytic networks. Trends Neurosci. 1996 19 8 319 325 10.1016/0166-2236(96)10046-1 8843600
176 Liddelow S.A. Barres B.A. Reactive astrocytes: Production, function, and therapeutic potential. Immunity 2017 46 6 957 967 10.1016/j.immuni.2017.06.006 28636962
177 Basic Kes V. Simundic A.M. Nikolac N. Topic E. Demarin V. Pro-inflammatory and anti-inflammatory cytokines in acute ischemic stroke and their relation to early neurological deficit and stroke outcome. Clin. Biochem. 2008 41 16-17 1330 1334 10.1016/j.clinbiochem.2008.08.080 18801351
178 Zamanian J.L. Xu L. Foo L.C. Nouri N. Zhou L. Giffard R.G. Barres B.A. Genomic analysis of reactive astrogliosis. J. Neurosci. 2012 32 18 6391 6410 10.1523/JNEUROSCI.6221-11.2012 22553043
179 Rakers C. Schleif M. Blank N. Matušková H. Ulas T. Händler K. Torres S.V. Schumacher T. Tai K. Schultze J.L. Jackson W.S. Petzold G.C. Stroke target identification guided by astrocyte transcriptome analysis. Glia 2019 67 4 619 633 10.1002/glia.23544 30585358
180 Pekny M. Wilhelmsson U. Pekna M. The dual role of astrocyte activation and reactive gliosis. Neurosci. Lett. 2014 565 30 38 10.1016/j.neulet.2013.12.071 24406153
181 Filous A.R. Silver J. Targeting astrocytes in CNS injury and disease: A translational research approach. Prog. Neurobiol. 2016 144 173 187 10.1016/j.pneurobio.2016.03.009 27026202
182 Liu Z. Chopp M. Astrocytes, therapeutic targets for neuroprotection and neurorestoration in ischemic stroke. Prog. Neurobiol. 2016 144 103 120 10.1016/j.pneurobio.2015.09.008 26455456
183 Takahashi S. Neuroprotective function of high glycolytic activity in astrocytes: Common roles in stroke and neurodegenerative diseases. Int. J. Mol. Sci. 2021 22 12 6568 10.3390/ijms22126568 34207355
184 Magistretti P.J. Allaman I. Lactate in the brain: From metabolic end-product to signalling molecule. Nat. Rev. Neurosci. 2018 19 4 235 249 10.1038/nrn.2018.19 29515192
185 Wiesinger H. Hamprecht B. Dringen R. Metabolic pathways for glucose in astrocytes. Glia 1997 21 1 22 34 10.1002/(SICI)1098-1136(199709)21:1<22::AID-GLIA3>3.0.CO;2-3 9298844
186 Pellerin L. Magistretti P.J. Glutamate uptake into astrocytes stimulates aerobic glycolysis: A mechanism coupling neuronal activity to glucose utilization. Proc. Natl. Acad. Sci. 1994 91 22 10625 10629 10.1073/pnas.91.22.10625 7938003
187 Dienel G.A. Lack of appropriate stoichiometry: Strong evidence against an energetically important astrocyte-neuron lactate shuttle in brain. J. Neurosci. Res. 2017 95 11 2103 2125 10.1002/jnr.24015 28151548
188 Brown A.M. Sickmann H.M. Fosgerau K. Lund T.M. Schousboe A. Waagepetersen H.S. Ransom B.R. Astrocyte glycogen metabolism is required for neural activity during aglycemia or intense stimulation in mouse white matter. J. Neurosci. Res. 2005 79 1-2 74 80 10.1002/jnr.20335 15578727
189 Brown A.M. Ransom B.R. Astrocyte glycogen and brain energy metabolism. Glia 2007 55 12 1263 1271 10.1002/glia.20557 17659525
190 Schurr A. Payne R.S. Lactate, not pyruvate, is neuronal aerobic glycolysis end product: An in vitro electrophysiological study. Neuroscience 2007 147 3 613 619 10.1016/j.neuroscience.2007.05.002 17560727
191 Schurr A. Payne R.S. Miller J.J. Rigor B.M. Brain lactate, not glucose, fuels the recovery of synaptic function from hypoxia upon reoxygenation: An in vitro study. Brain Res. 1997 744 1 105 111 10.1016/S0006-8993(96)01106-7 9030418
192 Marcoux J. McArthur D.A. Miller C. Glenn T.C. Villablanca P. Martin N.A. Hovda D.A. Alger J.R. Vespa P.M. Persistent metabolic crisis as measured by elevated cerebral microdialysis] lactate-pyruvate ratio predicts chronic frontal lobe brain atrophy] after traumatic brain injury. Crit. Care Med. 2008 36 10 2871 2877 10.1097/CCM.0b013e318186a4a0 18766106
193 Guo H. Fan Z. Wang S. Ma L. Wang J. Yu D. Zhang Z. Wu L. Peng Z. Liu W. Hou W. Cai Y. Astrocytic A1/A2 paradigm participates in glycogen mobilization mediated neuroprotection on reperfusion injury after ischemic stroke. J. Neuroinflammation 2021 18 1 230 10.1186/s12974-021-02284-y 34645472
194 Lv Y. Zhang B. Zhai C. Qiu J. Zhang Y. Yao W. Zhang C. PFKFB3-mediated glycolysis is involved in reactive astrocyte proliferation after oxygen-glucose deprivation/reperfusion and is regulated by Cdh1. Neurochem. Int. 2015 91 26 33 10.1016/j.neuint.2015.10.006 26498254
195 Rossi D.J. Brady J.D. Mohr C. Astrocyte metabolism and signaling during brain ischemia. Nat. Neurosci. 2007 10 11 1377 1386 10.1038/nn2004 17965658
196 Bak L.K. Walls A.B. Schousboe A. Waagepetersen H.S. Astrocytic glycogen metabolism in the healthy and diseased brain. J. Biol. Chem. 2018 293 19 7108 7116 10.1074/jbc.R117.803239 29572349
197 Zois C.E. Harris A.L. Glycogen metabolism has a key role in the cancer microenvironment and provides new targets for cancer therapy. J. Mol. Med. 2016 94 2 137 154 10.1007/s00109-015-1377-9 26882899
198 Ramagiri S. Taliyan R. Remote limb ischemic post conditioning during early reperfusion alleviates cerebral ischemic reperfusion injury via GSK-3β/CREB/BDNF pathway. Eur. J. Pharmacol. 2017 803 84 93 10.1016/j.ejphar.2017.03.028 28341347
199 Pederson B.A. Structure and regulation of glycogen synthase in the brain. Adv. Neurobiol. 2019 23 83 123 10.1007/978-3-030-27480-1_3 31667806
200 Xu L. Sun H. Pharmacological manipulation of brain glycogenolysis as a therapeutic approach to cerebral ischemia. Mini Rev. Med. Chem. 2010 10 12 1188 1193 10.2174/1389557511009011188 20716050
201 Guo H. Zhang Z. Gu T. Yu D. Shi Y. Gao Z. Wang Z. Liu W. Fan Z. Hou W. Wang H. Cai Y. Astrocytic glycogen mobilization participates in salvianolic acid B-mediated neuroprotection against reperfusion injury after ischemic stroke. Exp. Neurol. 2022 349 113966 10.1016/j.expneurol.2021.113966 34973964
202 Lo E.H. Dalkara T. Moskowitz M.A. Mechanisms, challenges and opportunities in stroke. Nat. Rev. Neurosci. 2003 4 5 399 414 10.1038/nrn1106 12728267
203 Takahashi S. Treatment of acute ischemic stroke: Tissue clock and reperfusion. Masui 2012 61 S11 S22 23513514
204 Takahashi S. Astroglial protective mechanisms against ROS under brain ischemia. Rinsho Shinkeigaku 2011 51 11 1032 1035 10.5692/clinicalneurol.51.1032 22277470
205 Iizumi T. Takahashi S. Mashima K. Minami K. Izawa Y. Abe T. Hishiki T. Suematsu M. Kajimura M. Suzuki N. A possible role of microglia-derived nitric oxide by lipopolysaccharide in activation of astroglial pentose-phosphate pathway via the Keap1/Nrf2 system. J. Neuroinflammation 2016 13 1 99 10.1186/s12974-016-0564-0 27143001
206 Tang B.L. Neuroprotection by glucose‐6‐phosphate dehydrogenase and the pentose phosphate pathway. J. Cell. Biochem. 2019 120 9 14285 14295 10.1002/jcb.29004 31127649
207 Dwivedi D. Megha K. Mishra R. Mandal P.K. Glutathione in brain: Overview of its conformations, functions, biochemical characteristics, quantitation and potential therapeutic role in brain disorders. Neurochem. Res. 2020 45 7 1461 1480 10.1007/s11064-020-03030-1 32297027
208 Takahashi S. Izawa Y. Suzuki N. Astrogliopathy as a loss of astroglial protective function against glycoxidative stress under hyperglycemia. Rinsho Shinkeigaku 2012 52 1 41 51 10.5692/clinicalneurol.52.41 22260979
209 Chen J. Zhang D.M. Feng X. Wang J. Qin Y.Y. Zhang T. Huang Q. Sheng R. Chen Z. Li M. Qin Z.H. TIGAR inhibits ischemia/reperfusion-induced inflammatory response of astrocytes. Neuropharmacology 2018 131 377 388 10.1016/j.neuropharm.2018.01.012 29331305
210 Owjfard M. Karimi F. Mallahzadeh A. Nabavizadeh S.A. Namavar M.R. Saadi M.I. Hooshmandi E. Salehi M.S. Zafarmand S.S. Bayat M. Karimlou S. Borhani-Haghighi A. Mechanism of action and therapeutic potential of dimethyl fumarate in ischemic stroke. J. Neurosci. Res. 2023 101 9 1433 1446 10.1002/jnr.25202 37183360
211 Dodson M. de la Vega M.R. Cholanians A.B. Schmidlin C.J. Chapman E. Zhang D.D. Modulating NRF2 in disease: Timing is everything. Annu. Rev. Pharmacol. Toxicol. 2019 59 1 555 575 10.1146/annurev-pharmtox-010818-021856 30256716
212 Scuderi S.A. Ardizzone A. Paterniti I. Esposito E. Campolo M. Antioxidant and anti-inflammatory effect of Nrf2 inducer dimethyl fumarate in neurodegenerative diseases. Antioxidants 2020 9 7 630 10.3390/antiox9070630 32708926
213 Kunze R. Urrutia A. Hoffmann A. Liu H. Helluy X. Pham M. Reischl S. Korff T. Marti H.H. Dimethyl fumarate attenuates cerebral edema formation by protecting the blood–brain barrier integrity. Exp. Neurol. 2015 266 99 111 10.1016/j.expneurol.2015.02.022 25725349
214 Lin-Holderer J. Li L. Gruneberg D. Marti H.H. Kunze R. Fumaric acid esters promote neuronal survival upon ischemic stress through activation of the Nrf2 but not HIF-1 signaling pathway. Neuropharmacology 2016 105 228 240 10.1016/j.neuropharm.2016.01.023 26801077
215 Takahashi S. Metabolic compartmentalization between astroglia and neurons in physiological and pathophysiological conditions of the neurovascular unit. Neuropathology 2020 40 2 121 137 10.1111/neup.12639 32037635
216 Sofroniew M.V. Vinters H.V. Astrocytes: biology and pathology. Acta Neuropathol. 2010 119 1 7 35 10.1007/s00401-009-0619-8 20012068
217 Curtis D.R. Johnston G.A. Amino acid transmitters in the mammalian central nervous system. Ergeb. Physiol. 1974 69 0 97 188 4151806
218 Lai T.W. Zhang S. Wang Y.T. Excitotoxicity and stroke: Identifying novel targets for neuroprotection. Prog. Neurobiol. 2014 115 157 188 10.1016/j.pneurobio.2013.11.006 24361499
219 Anderson C.M. Swanson R.A. Astrocyte glutamate transport: Review of properties, regulation, and physiological functions. Glia 2000 32 1 1 14 10.1002/1098-1136(200010)32:1<1:AID-GLIA10>3.0.CO;2-W 10975906
220 Chisholm N.C. Henderson M.L. Selvamani A. Park M.J. Dindot S. Miranda R.C. Sohrabji F. Histone methylation patterns in astrocytes are influenced by age following ischemia. Epigenetics 2015 10 2 142 152 10.1080/15592294.2014.1001219 25565250
221 Yamada T. Kawahara K. Kosugi T. Tanaka M. Nitric oxide produced during sublethal ischemia is crucial for the preconditioning-induced down-regulation of glutamate transporter GLT-1 in neuron/astrocyte co-cultures. Neurochem. Res. 2006 31 1 49 56 10.1007/s11064-005-9077-4 16474996
222 Sibson N.R. Dhankhar A. Mason G.F. Rothman D.L. Behar K.L. Shulman R.G. Stoichiometric coupling of brain glucose metabolism and glutamatergic neuronal activity. Proc. Natl. Acad. Sci. 1998 95 1 316 321 10.1073/pnas.95.1.316 9419373
223 McKenna M.C. Glutamate pays its own way in astrocytes. Front. Endocrinol. 2013 4 191 10.3389/fendo.2013.00191 24379804
224 Rose C.R. Ziemens D. Untiet V. Fahlke C. Molecular and cellular physiology of sodium-dependent glutamate transporters. Brain Res. Bull. 2018 136 3 16 10.1016/j.brainresbull.2016.12.013 28040508
225 Koyama Y. Kimura Y. Hashimoto H. Matsuda T. Baba A. L-lactate inhibits L-cystine/L-glutamate exchange transport and decreases glutathione content in rat cultured astrocytes. J. Neurosci. Res. 2000 59 5 685 691 10.1002/(SICI)1097-4547(20000301)59:5<685:AID-JNR12>3.0.CO;2-Z 10686597
226 Shashidharan P. Wittenberg I. Plaitakis A. Molecular cloning of human brain glutamate/aspartate transporter II. Biochim. Biophys. Acta Biomembr. 1994 1191 2 393 396 10.1016/0005-2736(94)90192-9 8172925
227 Storck T. Schulte S. Hofmann K. Stoffel W. Structure, expression, and functional analysis of a Na(+)-dependent glutamate/aspartate transporter from rat brain. Proc. Natl. Acad. Sci. 1992 89 22 10955 10959 10.1073/pnas.89.22.10955 1279699
228 Pines G. Danbolt N.C. Bjørås M. Zhang Y. Bendahan A. Eide L. Koepsell H. Storm-Mathisen J. Seeberg E. Kanner B.I. Cloning and expression of a rat brain L-glutamate transporter. Nature 1992 360 6403 464 467 10.1038/360464a0 1448170
229 Bergles D.E. Jahr C.E. Glial contribution to glutamate uptake at Schaffer collateral-commissural synapses in the hippocampus. J. Neurosci. 1998 18 19 7709 7716 10.1523/JNEUROSCI.18-19-07709.1998 9742141
230 Bröer S. Brookes N. Transfer of glutamine between astrocytes and neurons. J. Neurochem. 2001 77 3 705 719 10.1046/j.1471-4159.2001.00322.x 11331400
231 Bröer A. Albers A. Setiawan I. Edwards R.H. Chaudhry F.A. Lang F. Wagner C.A. Bröer S. Regulation of the glutamine transporter SN1 by extracellular pH and intracellular sodium ions. J. Physiol. 2002 539 1 3 14 10.1113/jphysiol.2001.013303 11850497
232 McKenna M.C. Stridh M.H. McNair L.F. Sonnewald U. Waagepetersen H.S. Schousboe A. Glutamate oxidation in astrocytes: Roles of glutamate dehydrogenase and aminotransferases. J. Neurosci. Res. 2016 94 12 1561 1571 10.1002/jnr.23908 27629247
233 McKenna M.C. Sonnewald U. Huang X. Stevenson J. Zielke H.R. Exogenous glutamate concentration regulates the metabolic fate of glutamate in astrocytes. J. Neurochem. 1996 66 1 386 393 10.1046/j.1471-4159.1996.66010386.x 8522979
234 Shen Y. He P. Fan Y. Zhang J. Yan H. Hu W. Ohtsu H. Chen Z. Carnosine protects against permanent cerebral ischemia in histidine decarboxylase knockout mice by reducing glutamate excitotoxicity. Free Radic. Biol. Med. 2010 48 5 727 735 10.1016/j.freeradbiomed.2009.12.021 20043985
235 Ouyang Y.B. Voloboueva L.A. Xu L.J. Giffard R.G. Selective dysfunction of hippocampal CA1 astrocytes contributes to delayed neuronal damage after transient forebrain ischemia. J. Neurosci. 2007 27 16 4253 4260 10.1523/JNEUROSCI.0211-07.2007 17442809
236 Chu K. Lee S.T. Sinn D.I. Ko S.Y. Kim E.H. Kim J.M. Kim S.J. Park D.K. Jung K.H. Song E.C. Lee S.K. Kim M. Roh J.K. Pharmacological induction of ischemic tolerance by glutamate transporter-1 (EAAT2) upregulation. Stroke 2007 38 1 177 182 10.1161/01.STR.0000252091.36912.65 17122424
237 Rothstein J.D. Patel S. Regan M.R. Haenggeli C. Huang Y.H. Bergles D.E. Jin L. Dykes Hoberg M. Vidensky S. Chung D.S. Toan S.V. Bruijn L.I. Su Z. Gupta P. Fisher P.B. β-Lactam antibiotics offer neuroprotection by increasing glutamate transporter expression. Nature 2005 433 7021 73 77 10.1038/nature03180 15635412
238 Lee E.S.Y. Sidoryk M. Jiang H. Yin Z. Aschner M. Estrogen and tamoxifen reverse manganese‐induced glutamate transporter impairment in astrocytes. J. Neurochem. 2009 110 2 530 544 10.1111/j.1471-4159.2009.06105.x 19453300
239 Zhang Y. Jin Y. Behr M. Feustel P. Morrison J. Kimelberg H. Behavioral and histological neuroprotection by tamoxifen after reversible focal cerebral ischemia. Exp. Neurol. 2005 196 1 41 46 10.1016/j.expneurol.2005.07.002 16054626
240 Mehta S.H. Dhandapani K.M. De Sevilla L.M. Webb R.C. Mahesh V.B. Brann D.W. Tamoxifen, a selective estrogen receptor modulator, reduces ischemic damage caused by middle cerebral artery occlusion in the ovariectomized female rat. Neuroendocrinology 2003 77 1 44 50 10.1159/000068332 12624540
241 Ebert D. Haller R.G. Walton M.E. Energy contribution of octanoate to intact rat brain metabolism measured by 13C nuclear magnetic resonance spectroscopy. J. Neurosci. 2003 23 13 5928 5935 10.1523/JNEUROSCI.23-13-05928.2003 12843297
242 Sayre N.L. Sifuentes M. Holstein D. Cheng S. Zhu X. Lechleiter J.D. Stimulation of astrocyte fatty acid oxidation by thyroid hormone is protective against ischemic stroke-induced damage. J. Cereb. Blood Flow Metab. 2017 37 2 514 527 10.1177/0271678X16629153 26873887
243 Polyzos A.A. Lee D.Y. Datta R. Hauser M. Budworth H. Holt A. Mihalik S. Goldschmidt P. Frankel K. Trego K. Bennett M.J. Vockley J. Xu K. Gratton E. McMurray C.T. Metabolic reprogramming in astrocytes distinguishes region-specific neuronal susceptibility in huntington mice. Cell Metab. 2019 29 6 1258 1273.e11 10.1016/j.cmet.2019.03.004 30930170
244 Aizawa F. Nishinaka T. Yamashita T. Nakamoto K. Koyama Y. Kasuya F. Tokuyama S. Astrocytes release polyunsaturated fatty acids by lipopolysaccharide stimuli. Biol. Pharm. Bull. 2016 39 7 1100 1106 10.1248/bpb.b15-01037 27374285
245 Gupta S. Knight A.G. Gupta S. Keller J.N. Bruce-Keller A.J. Saturated long‐chain fatty acids activate inflammatory signaling in astrocytes. J. Neurochem. 2012 120 6 1060 1071 10.1111/j.1471-4159.2012.07660.x 22248073
