
==== Front
BMC Anesthesiol
BMC Anesthesiol
BMC Anesthesiology
1471-2253
BioMed Central London

2691
10.1186/s12871-024-02691-7
Research
Effects of anterior quadratus lumborum block versus erector spinae plane block on postoperative acute pain in percutaneous nephrolithotomy: a prospective, observational study
Turkan Huseyin
Kaya Cengiz
Turunc Esra esra.kiymaz.ek@gmail.com

Dost Burhan
Ustun Yasemin Burcu
https://ror.org/028k5qw24 grid.411049.9 0000 0004 0574 2310 Department of Anesthesiology and Reanimation, Ondokuz Mayis University Faculty of Medicine, Samsun, Turkey
10 9 2024
10 9 2024
2024
24 32220 6 2024
22 8 2024
© The Author(s) 2024
2024
https://creativecommons.org/licenses/by-nc-nd/4.0/ Open Access This article is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License, which permits any non-commercial use, sharing, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if you modified the licensed material. You do not have permission under this licence to share adapted material derived from this article or parts of it. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by-nc-nd/4.0/.
Background

The study aimed to compare the pain-relieving effectiveness of anterior quadratus lumborum block (QLB3) and erector spinae plane block (ESPB), both of which have been documented to provide relief during abdominal surgery.

Methods

This prospective observational study, conducted between February and July 2023, included 96 patients who had undergone percutaneous nephrolithotomy (PCNL). Patients were divided into three groups: QLB3, ESPB, and control (no block) and received the corresponding nerve block in the preanesthetic room for regional block. Cumulative morphine consumption during the initial 24 h after PCNL, numerical rating scale resting/movement scores, intraoperative remifentanil usage, rescue analgesic requirements, time when the first analgesic was requested, and postoperative nausea and vomiting scores were documented and compared between the groups.

Results

Total median morphine consumption in the first 24 h postoperatively was similar in the QLB3 and ESPB groups but higher in the control group (QLB3, 7 mg [(Q1-Q3) 7–8.5]; ESPB, 8 mg [6.5–9]; control, 12.5 [10–17]; P < 0.001). Similarly, median intraoperative remifentanil consumption did not differ between the block groups but was higher in the control group (QLB3, 1082 µg [IQR 805.5–1292.7]; ESPB, 1278 µg [940.2–1297.5]; control, 1561 µg [1315–2068]; P < 0.001). The number of patients receiving rescue analgesic medication was similar in the block groups but higher in the control group (QLB3, n = 9 [30%]; ESPB, n = 14 [46.7%]; control, n = 21 [70%]; P = 0.008).

Conclusions

QLB3 and ESPB were adequate and comparable in providing postoperative analgesia as part of multimodal analgesia after PCNL.

Trial registration

The study was registered on ClinicalTrials.gov (Identifier: NCT05822492).

Supplementary Information

The online version contains supplementary material available at 10.1186/s12871-024-02691-7.

Keywords

Acute postoperative pain
Erector Spinae plane block
Nerve block
Percutaneous nephrolithotomy
Quadratus lumborum block
Ultrasonography
Commission Presidency of Scientific Research Projects of Ondokuz Mayis University, Samsun, TurkeyPYO.TIP.1904.23.005 issue-copyright-statement© BioMed Central Ltd., part of Springer Nature 2024
==== Body
pmcIntroduction

Kidney stones are a prevalent medical issue, and percutaneous nephrolithotomy (PCNL) is the preferred treatment for large (> 20 mm) or staghorn kidney stone [1]. Despite its use as a minimally invasive endourological procedure, severe visceral and somatic pain may occur during PCNL, attributable to various factors, including surgical incision, renal parenchymal injury, renal capsule stretch, and nephrostomy tube insertion [2]. While appropriate analgesia management can involve various techniques, such as intercostal block, peritubular local anesthetic infiltration, thoracic paravertebral block, and intravenous (IV) systemic analgesics (particularly opioids) are frequently used [3–5].

The anterior quadratus lumborum block (QLB3) was first described by Børglum et al. in 2013—involves applying local anesthetic (LA) to the interfascial plane between the quadratus lumborum and the psoas major muscles [6, 7]. Following its introduction, QLB3 has attracted increasing attention and has been widely used in various abdominal procedures, with its efficacy being widely acknowledged [8, 9]. Since its introduction in 2016 for treating thoracic neuropathic pain, the erector spinae plane block (ESPB) has gained considerable popularity among anesthesiologists as a relatively new truncal block for postoperative analgesia [10]. In ESPB, a LA is administered into the region bounded by the erector spinae muscle and the transverse vertebral processes. Despite ongoing uncertainty regarding the mechanism of action for QLB3 and ESPB blocks and significant inconsistency in injectate spread in cadaveric/imaging studies, numerous randomized controlled trials (RCTs) and meta-analysis have reported these two blocks as effective and reliable techniques in reducing postoperative pain scores and analgesic consumption in PCNL patients. Although prior RCTs and meta-analysis have demonstrated the effectiveness of both QLB3 and ESPB blocks in managing postoperative pain for PCNL patients, these studies evaluated each block independently. Our current study uniquely contrasts the analgesic effects of QLB3 and ESPB blocks when applied to PCNL surgery, providing a comparative analysis that has not been previously addressed in the literature [11–15].

Consequently, the primary objective of this observational study was to differentiate the analgesic effectiveness of ESPB and QLB3 through comparisons with both control groups and one another. Given the lack of precise elucidation regarding the mechanism of action for both blocks and the potential for significant variations in LA spread, we hypothesized differences in morphine consumption among the blocks. Specifically, we aimed to investigate whether cumulative morphine consumption during the initial postoperative 24 h differs significantly between the control, QLB3, and ESPB groups in patients undergoing PCNL. Thus, the primary endpoint compares the cumulative morphine consumption among the control, QLB3, and ESPB groups. Additionally, we investigate secondary outcomes that include pain scores at rest and during movement, intraoperative remifentanil consumption, the requirement for rescue analgesics, timing to first analgesic request, hemodynamic variables, the incidence of postoperative nausea and vomiting, the need for antiemetic medication, and the rates of complications.

Materials and methods

Study design

This prospective, single-center, observational study was designed and conducted in adherence with the guidelines outlined in the Strengthening the Reporting of Observational Studies in Epidemiology (i.e., “STROBE”) guidelines [16]. Ethics committee approval was obtained from the local ethics committee (OMU KAEK, reference number 2022/İ.908). Written informed consent was obtained from all participants on the day before surgery. The study was conducted according to the ethical principles of the Declaration of Helsinki [17]. The study was registered on ClinicalTrials.gov (Identifier: NCT05822492). Physicians not involved in this study performed data collection, anesthesia management, and blocks. Thus, the investigators and outcome assessors were able to remain blinded.

Participants

The present study included patients 18–65 years of age with the American Society of Anesthesiologists (ASA) Physical Status of I-III who underwent unilateral PCNL surgery. However, patients with allergies to the drugs used in the study, individuals for whom regional anesthesia was contraindicated due to conditions such as coagulopathy, those for whom a numerical rating scale (NRS) score could not be assessed, those with cognitive dysfunction, and those with a body mass index > 35 kg/m2 were excluded. Furthermore, patients with neuropsychiatric disorders, musculoskeletal abnormalities, or alcohol or drug addiction(s) were also excluded.

In this prospective observational study, we meticulously monitored the post-treatment progression of ninety-six patients undergoing PCNL to assess natural clinical outcomes. Patients meeting the inclusion criteria were consecutively enrolled until the target sample size was achieved. Allocation to one of three groups—QLB3, ESPB, or a control group—was determined by the clinical discretion of the anesthesiologist overseeing the anesthesia management for the procedure. To preserve the integrity of the study’s results, the group assignments were kept confidential from the research team. Prior to participation, patients were comprehensively informed about the nature of the study and the specifics of this allocation approach, ensuring that they provided informed consent with full understanding of the methodology.

Block procedures

Before surgery, in the regional anesthesia room, patients undergoing QLB3 or ESPB were monitored with electrocardiography, non-invasive arterial pressure monitoring, and peripheral oxygen saturation monitoring. Additionally, nasal oxygen was administered at a flow rate of 3 L/min, and intravenous midazolam was given at a dose of 0.02 mg/kg to get the patient’s Ramsey Sedation Score to reach 2 (alert, calm, observing surroundings).

Ultrasound-guided QLB3

Patients were placed in the lateral decubitus position with the surgical side facing upward and the hip flexed. Following aseptic measures, a curvilinear ultrasound (US) probe operating at 3–5 MHz (LOGIQ V1 Ultrasound System, GE) was positioned between the iliac crest and the subcostal margin. Sonographic imaging of the abdominal muscles, latissimus dorsi, erector spinae, psoas, transverse process of the fourth lumbar vertebra, and the vertebral body was performed. On identifying the “shamrock” sign formed by the erector spinae, quadratus lumborum, and psoas major muscles, the block needle (100 mm long, 21-gauge short bevel; Stimuplex Ultra 360, B. Braun) was advanced inplane between the quadratus lumborum and psoas muscles [7]. Following hydro dissection, a mixture of 30 ml containing 0.25% bupivacaine (Marcaine™, AstraZeneca) and 1:400,000 adrenaline was injected, while negative aspiration was performed every 5 ml. Concurrent observation of local anesthetic diffusion between the quadratus lumborum and the psoas major muscles was performed (Fig. 1A). A pinprick test (blunt-tipped, 27-gauge hypodermic needle) was used to assess post-procedure sensory block between the T9–L2 dermatomes every 5 min (0, no sensory block; 1, touch sensation, no pain; 2, no touch sensation, no pain) [18]. Patients with a sensory block score ≥ 1 were deemed to have a successful QLB3, with the remaining excluded from the study.

Fig. 1 A-B. The sonoanatomy for the QLB3 and ESPB. (A) US-guided QLB3. The relevant technique is depicted in an ultrasound image. The white line indicates needle trajectory, and the blue highlighted area is the desired spread of local anesthetic. (B) US-guided ESPB. The relevant technique is depicted in an ultrasound image. The white line indicates needle trajectory, the blue highlighted area is the desired spread of local anesthetic, and the dashed line denotes the pleura. QLB3, anterior quadratus lumborum block; QL, quadratus lumborum muscle; PMM, psoas major muscle; VC, vertebral corpus. ESPB, erector spinae plane block; ESM, erector spinae muscles; TP, transverse process; LA, local anesthetic

US-guided ESPB

Patients were initially positioned sitting, aseptic precautions were taken, and a linear or curvilinear US probe (3–5 MHz or 8–13 mHz, LOGIQ V1 Ultrasound System, GE) was placed at the T10 level. The correct level was determined by counting the upward movement from the 12th rib to T10. The trapezius muscle, erector spinae muscle group, and transverse process of the T10 vertebra were visualized. The plane between the transverse process and the erector spinae muscles was reached in-plane with the block needle (100 mm long, 21-gauge short bevel; Stimuplex Ultra 360, B. Braun). Following hydro dissection with 1–2 ml of normal saline, 30 ml 0.25% bupivacaine (Marcaine™, AstraZeneca), and 1:400,000 adrenaline was injected, with negative aspiration controlled at every 5 ml. Simultaneously, the craniocaudal spread of the local anesthetic mixture was visualized (Fig. 1B). After performing the ESPB , the patient’s posture was changed to a supine position. A pinprick test (27-gauge hypodermic needle) was used to intermittently assess sensory block in the T10–L2 dermatomes for 30 min following the procedure (0, no sensory block; 1, touch sensation, no pain; 2, no touch sensation, no pain). Patients with a sensory block score ≥ 1 were deemed to have a successful ESPB, with the remaining excluded from the study.

Anesthesia management

Following standard ASA monitoring in the operating room, anesthesia induction and intubation were performed after administration of propofol 1.5–2 mg/kg IV, rocuronium 0.6 mg/kg IV, and remifentanil infusion (0.1–0.25 mcg/kg/min). Anesthesia was achieved using O2/Air (fraction of inspired oxygen, 0.40), sevoflurane, and remifentanil infusion. Remifentanil infusion was adjusted according to intraoperative mean arterial pressure (MAP) and heart rate (within 20% of preoperative levels). At the conclusion of procedures, patients were extubated following neuromuscular reversal with 0.04 mg/kg neostigmine IV and 0.02 mg/kg atropine IV.

To prevent postoperative nausea and vomiting (PONV), patients were routinely administered dexamethasone 8 mg IV before induction and ondansetron 0.15 mg/kg IV 20 min before the conclusion of the procedure. In patients who scored ≥ 3 on a 5-point PONV verbal descriptive scale (0, no nausea; 1, mild nausea; 2, moderate nausea; 3, 1 vomiting episode; and 4, vomiting > 1), 4 mg ondansetron IV was administered. The number of patients requiring antiemetics and postoperative post-anesthesia care unit (PACU), 3 h, 6 h, 12 h, 18 h, and 24 h PONV scores were recorded. The assessments were conducted by an independent physician, specifically an anesthesia resident.

Analgesia management

Patients were provided with information regarding patient-controlled analgesia (PCA) and NRS scores during the preoperative visit. Patients were informed that the NRS would consist of a 10 cm chart featuring the words “no pain” at one end and “the most severe pain imaginable” at the other. They were further instructed to assess their pain intensity based on the information presented in the chart.

Patients received 20 mg of tenoxicam intraoperatively following induction, 1 g paracetamol IV before the conclusion of surgery, and 1 g paracetamol IV every 8 h during the postoperative period. The PCA device (BodyGuard 575 Pain Manager, BD) was set to deliver 20 µg/kg morphine with a lockout time of 10 min and a 4 h limit of 80% of the total calculated dose without baseline infusion.

All patients were given access to a PCA device in the recovery unit. When rescue analgesia was required (NRS score ≥ 4 despite the use of PCA device), a 30-minute infusion of 100 mg tramadol IV (maximum 300 mg/day) was administered. Postoperative PACU, 3 h, 6 h, 12 h, 18 h, and 24 h NRS scores at rest and during movement (coughing or deep inspiration) were noted. Additionally, the number of patients requiring rescue analgesia and the time from awakening to the first requirement for analgesia from the PCA were pointed out in the PACU.

Surgical procedure

During the procedure, after the stone was located using retrograde pyelography in the lithotomy position, the patients were positioned prone, and the stone was accessed using a nephroscope through a small incision (approximately 2 cm). Once the stone was extracted, a nephrostomy catheter was inserted, and the procedure was concluded.

Outcomes

The primary outcome of the study was cumulative morphine consumption within the first 24 h postoperatively. Secondary outcomes were postoperative pain at rest/movement, intraoperative remifentanil consumption, number of patients requiring rescue analgesics, time of first analgesic requirement, hemodynamic data, nausea-vomiting scores, number of patients requiring antiemetics, and complications (local anesthetic systemic toxicity, vascular puncture, pneumothorax, kidney damage, retroperitoneal hematoma, or lower extremity weakness).

Sample size calculation and statistical analysis

Sample size calculation was performed using Minitab version 16.0 (Minitab LLC). The following parameters were set: a type I error rate of 5% and a power of 80%. The study involved three groups; a pilot study was conducted with 13 patients in each group. Based on the pilot study, the mean ± standard deviation (SD) for each group were as follows: Group QLB3: 9.15 ± 2.09, Group Control: 12.53 ± 5.71, and Group ESPB: 10.03 ± 3.48. The calculated effect size was 0.359. Using the above parameters and effect size, the total sample size required for the main study was determined using an ANOVA (F-test) for comparing means. The total sample size required was 78 patients. Considering potential data losses estimated at approximately 20%, the total sample size was adjusted to 96 patients (Table 1). A post hoc power analysis confirmed that these parameters robustly powered our study to detect significant intergroup differences.

Table 1 Parameters of the power analysis

Power analysis	
We performed the POWER analysis:	a priori	
on the primary outcome:	Morphine consumption within the first 24 h postoperative	
based on the two-tailed statistical test:	F tests- ANOVA	
and accepting the cutoff for significance (α):	0.05, two tailed	
and a power (1-β) of:	0.80	
The variability of the primary outcome was:	Group QLB3: 9.15 ± 2.09, Group Control: 12.53 ± 5.71, and Group ESPB: 10.03 ± 3.48.	
based on data taken from:	Preliminary pilot study	
We considered as clinically relevant a difference:	20%	
Consequently, the effect size was:	0.359	

Statistical analysis was performed using SPSS version 28.0 (IBM Corporation). The Kolmogorov–Smirnov test was used to assess the conformity of the variables to a normal distribution. Continuous variables are expressed as mean ± standard deviation (95% confidence interval [CI]), mean difference, and median (interquartile range [IQR, i.e., Q1–Q3]), while categorical variables are expressed as frequency (n) and percentage (%). When applicable, categorical variables were compared using the chi-squared test or Fisher’s exact test. Data with a normal distribution were compared using one-way analysis of variance (ANOVA), and where variables deviated from the normal distribution, the Kruskal-Wallis ANOVA was used for post hoc comparisons; the Mann–Whitney U test with Bonferroni correction was used when required. The threshold for statistical significance was set at p < 0.05. In the Mann–Whitney U test, a statistical significance value of P < 0.017 was accepted, with the Bonferroni correction applied.

Results

Eligibility was assessed for a total of 103 patients in this study, 7 of whom were excluded due to morbid obesity (n = 4), history of local anesthetic allergy (n = 1), and refusing inclusion (n = 2). Additionally, two patients from each group were excluded due to a modification in the surgical plan that occurred during the procedure, and the remaining 90 patients’ data were analyzed (Fig. 2). No block failure was observed in any patient. The groups were comparable in demographic, clinical, and surgical characteristics (Table 2).

Table 2 Patient demographic and surgical characteristics and clinical outcomes

	Group Control
(n = 30)	Group QLB3
(n = 30)	Group ESPB
(n = 30)	p	
Mean ± SD (95% CI)/
Median [Q1-Q3]	Mean ± SD (95% CI)/
Median [Q1-Q3]	Mean ± SD (95% CI) /
Median [Q1-Q3]	
Age (years)	56.0 (37.5–63.0)	55.0 (44.2–59.0)	47.0 (36.0–63.0)	0.728	
BMI (kg/m2)	27.6 ± 4.8 (25.7–29.3)	26.6 ± 3.4 (25.3–27.9)	27.7 ± 4.4 (25.3–28.6)	0.709	
Duration of anesthesia (min)	114.9 ± 32.5 (102.8-127.1)	116.1 ± 28.8 (105.4–126.0)	117.6 ± 30.8 (106.1-129.1)	0.945	
Duration of surgery (min)	94.4 ± 32.1 (82.5-106.4)	91.7 ± 25.9 (82.0-101.3)	95.6 ± 27.7 (85.2-105.9)	0.862	
Preoperative hemoglobin (g/dL)	12.7 ± 1.9 (12.0-13.4)	12.5 ± 2.1 (11.7–13.2)	13.2 ± 1.9(12.4–13.8)	0.424	
Preoperative creatinine (mg/dL)	1.0 (1.0-1.2)	1.0 (0.9–1.1)	1.1 (1.0-1.3)	0.383	
GFR (mL/dk)	77.9 ± 21.1(69.9–85.8)	81.0 ± 24.2 (71.9–90.0)	76.8 ± 37.1 (62.9–90.6)	0.834	
Size of stones (mm)	22.0 (18.0-28.5)	22.0 (17.0-24.7)	25.0 (21.5–35.0)	0.075	
Sex, female/male,

n (%)

	12 (40) / 16 (60)	13 (43.3) / 17 (56.7)	12 (40) / 16 (60)	0.955	
ASA, n (%)		
 I

 II

 III

	9 (30)

16 (53.3)

5 (16.7)

	9 (30)

19 (63.3)

2 (6.7)

	6 (20)

24 (80)

0 (0)

	0.098	
Nephrostomy,

n (%)

		
 (-) / (+)	13 (43.3) / 17 (56.7)	7 (19.2) / 23 (80.8)	10 (33.3) / 20 (66.7)	0.157	
Side of surgery, n (%)		
 Right/Left	21 (70) / 9 (30)	15 (50) / 15 (50)	14 (46.7) / 16 (53.3)	0.144	
NOTE. Continuous variables are presented as median [Q1-Q3] or mean ± standard deviation (95% CI), and categorical variables are presented as counts (%)

Abbreviations: QLB3, anterior quadratus lumborum block; ESPB, erector spinae plane block; BMI, body mass index; GFR, glomerular filtration rate; ASA, American Society of Anesthesiologists

Fig. 2 Consort flow diagram of the study. QLB3, anterior quadratus lumborum block; ESPB, erector spinae plane block

In the first 24 postoperative hours, median morphine consumption was notably higher in the control group compared to the block groups (control, 12.5 mg [Q1-Q3, 10–17]; QLB3, 7 mg [Q1-Q3, 7–8.5]; ESPB, 8 mg [6.5–9]; P < 0.001, effect size = 0.513), addressing our primary outcome measure. Secondary outcomes revealed that the median intraoperative remifentanil consumption did not differ significantly between the block groups but was greater in the control group (QLB3, 1082 µg [IQR 805.5 − 1292.7]; ESPB, 1278 µg [940.2–1297.5]; control, 1561 µg [1315–2068.2]; P < 0.001, effect size = 0.316). The time to the first opioid request from the PCA device was comparable among all groups (P = 0.258, effect size = 0.008). However, the control group required more rescue analgesia (n = 21 [70%]) compared to the QLB3 (n = 9 [30%]) and ESPB groups (n = 14 [46.7%]; P = 0.008, effect size = 0.329) (Table 3). The NRS scores for postoperative rest were lower in the QLB3 group for up to 18 h and in the ESPB group for the first 12 h post-surgery, compared to the control group (P < 0.001). Similarly, during the initial 12 h, activity NRS scores were lower in both block groups than in the control group (P < 0.001). Consistent across all time points measured, rest and movement NRS scores within the block groups remained similar (Fig. 3).

Table 3 Comparison of intraoperative and postoperative opioid consumption by study groups

	Group Control
(n = 30)
Median [Q1-Q3]	Group QLB3
(n = 30)
Median [Q1-Q3]	Group ESPB
(n = 30)
Median [Q1-Q3]	p	Effect size	
Cumulative morphine consumption in first 24 h (mg)	12.5 (10.0–17.0)	7.0 (7.0-8.5)	8.0 (6.5-9.0)	< 0.001a	0.513c	
Time to first opioid request (min)	45.0 (28.7–86.2)	53.5 (37.7–78.5)	55.0 (39.7–90.0)	0.258a	0.008c	
Intraoperative remifentanil consumption (µg)	1561 (1315.0-2068.2)	1082 (805.5-1292.7)	1278 (940.2-1297.5)	< 0.001a	0.316c	
Patients given rescue analgesic in first 24 h, n (%)	21 (70.0)	9 (30.0)	14 (46.7)	0.008b	0.329d	
NOTE. Continuous variables are presented as median [Q1-Q3], and categorical variables are presented as counts (percentages) (%)

aKruskal Wallis test, bChi-Square test, cEta squared (η2) effect size, dEffect size w,

The results were statistically significant for the Kruskal-Wallis test (p < 0.05) and the Bonferroni-adjusted Mann-Whitney U Test (p < 0.017)

Abbreviations: QLB3: anterior quadratus lumborum block; ESPB: erector spinae plane block

Fig. 3 Postoperative NRS pain scores at rest and activity in the groups at different time points. Data are presented as median (Q1-Q3). QLB3, anterior quadratus lumborum block; ESPB, erector spinae plane block; PACU, post-anesthesia care unit; NRS, numerical rating scale

Furthermore, the pairwise mean difference in total morphine consumption over the first 24 h was 6.93 mg less in the QLB3 group and 6.06 mg less in the ESPB group compared to the control group (P < 0.001), with no significant difference between the block groups. Intraoperatively, the QLB3 and ESPB groups consumed less remifentanil by a mean of 697.26 µg and 615.16 µg, respectively, compared to control (P < 0.00.1), while again, the difference between the block groups was not significant. The time to first opioid request showed no meaningful variation among the groups (Supplement 1).

Regarding hemodynamic data, heart rate was similar across the three groups. However, mean arterial pressure was lower in the QLB3 group at 30, 45, and 60 min compared to the control and ESPB groups (p < 0.05) (Supplement 2). Respective PONV scores and the percentage of patients requiring antiemetics at all measurement time points of the groups (control, 9 [30%]; ESPB, 7 [23%], QLB3, 3 [10%]; P = 0.344] were similar (Supplement 3). Furthermore, no block-, drug- or surgery-related complications were observed.

Discussion

Patients undergoing PCNL, who underwent QLB3 and ESPB as part of a multimodal analgesic protocol, exhibited a reduction in intraoperative and postoperative opioid use, as well as a decrease in pain scores when compared with the control group; however, block efficacy was similar.

Considering the anatomical innervation of the kidneys (T10-L1) and ureters (T10-L2), along with the incisions and access points (mostly T10-11), T10-L2 spinal nerve blockade is necessary for the management of somatic and visceral pain in PCNL surgery [2]. Recent meta-analysis have provided evidence that ESPB, which is among the fascial plane blocks applicable in this context, improves the postoperative pain response during PCNL surgeries, diminishes the need for analgesics, extends the duration to the initial analgesic requirement, and does not give rise to significant postoperative complications [11, 12]. Our results are comparable to those of meta-analysis in this regard. Additionally, numerous fascial plane blocks have been proposed as potential substitutes for neuraxial blocks in abdominal interventions, among which QLB3 is believed to offer analgesic effects through blockage of T7-L1 segmental innervation [8]. In cadaveric investigations with a more restricted spread, even segmental involvement (T9-L2) appears to offer sufficient analgesia for PCNL procedures [19, 20]. Research has demonstrated that QLB3 blockade decreases the need for analgesics during and after surgery while extending the period until the first analgesic is required [21, 22]. Consistent with previous research, QLB3 demonstrated superior analgesic efficacy and safety when compared with the control group in our study. Despite the lack of evidence linking QLB3 to opioid-related adverse effects, Chen et al. reported paralysis in the lower extremities [23]. No patients experienced difficulties with ambulation during our study. This could be attributed to the relatively smaller volume/concentration of local anesthetic administered in our study compared to previous research, preventing the involvement of the lumbar plexus.

In the context of postoperative analgesia in abdominal surgeries (laparotomy [C/S and nephrectomy] and laparoscopic [cholecystectomy and hysterectomy]), recent studies have compared QLB3 and ESPB [24–27]. However, to the best of our knowledge, no previous research has investigated the postoperative analgesic efficacy of QLB3 and ESPB in PCNL. Examining the literature, it is notable that, despite the use of different types/doses of local anesthetics (0.25% bupivacaine or 0.375% ropivacaine) and volumes (20–30 ml) for these two blocks in abdominal surgeries and despite the differences in ESPB application (such as being performed at different levels [T7-T10], different patient positions [lateral decubitus or prone], and different ultrasound probe orientations [parasagittal or transverse ]), they could similarly reduce analgesic consumption and pain scores. In contrast, the efficacy of these two blocks may vary in abdominal surgeries where significant visceral analgesia is required. For instance, a study focusing on colorectal surgeries found that ESPB provided more effective postoperative analgesia than QLB3 [28]. Further examination of the study revealed that patients reported more colic pain (visceral component) than incisional pain (somatic component). This difference could be attributed to the need for a broader blockade involving thoracolumbar (TL; T10–L2) and lumbosacral (LS; L5–S1) dorsal root ganglia in procedures involving extensive organ manipulation, such as colorectal surgery [29]. Achieving the desirable level of visceral analgesia, on the other hand, is possible during open major abdominal surgeries when a dermatomal blockade level of T4-L1 can be maintained with continuous QLB3 block [30]. For abdominal surgeries, selecting the appropriate QLB3 technique (continuous vs. single injection) may enhance the likelihood of successful visceral analgesia. Based on the results observed in our study, a single injection was sufficient to provide adequate visceral analgesia during PCNL.

Another noteworthy finding of our study was that patients who underwent ESPB experienced a marginally shortened duration of analgesia (12 h) compared to the QLB3 group (18 h). Although the clinical significance of this difference remains uncertain, one plausible explanation for this phenomenon is the utilization of ESPB before PCNL surgery. ESPB has been demonstrated to produce a more prolonged analgesic effect (24 h) when administered postoperatively as opposed to preoperatively [12]. Similarly, the duration of analgesia for patients undergoing laparoscopic cholecystectomy was observed to be longer in ESPB patients when administered during the postoperative period, compared to the QLB3 group (16 h vs. 12 h) [26]. Additionally, Ma et al. demonstrated in their meta-analysis that the timing of ESPB administration impacts the duration of analgesia. Accordingly, they found that prolonged analgesia was observed only when the block was administered in the postoperative period instead of the preoperative period [12]. Therefore, ESPB should be planned during the postoperative phase to prolong its efficacy. Moreover, prone positioning during PCLN surgery may facilitate ESPB during the postoperative phase.

Our findings, which demonstrated comparable efficacy between the two blocks, suggest a preference for a block technique that affords ease of application and safety. Its more superficial nature, unique sonoanatomical landmark for the block needle, and use of a bone structure as the reference for the injection endpoint make ESPB a simpler and safer block to use [31]. In contrast, QLB3 is relatively difficult to perform and more time-consuming due to its deeper nature, difficulty in completely visualizing the needle with the convex probe, and the need for more experience to avoid complications (such as kidney damage, retroperitoneal hematoma, or weakness in the lower extremity due to lumbar plexus involvement) [8, 32, 33]. In patients undergoing PCNL, all of these factors may contribute to the preference for ESPB, a more straightforward technique compared with QLB3.

However, the current study had several limitations, the first of which was its single-center, observational design. Implementing an RCT could mitigate potential biases and provide a more reliable elucidation of the cause-effect relationship. Second, the sample size needed to be increased to identify subtle variations in complications and secondary outcomes between the two groups. Third, another concern is the potential for selection bias due to the subjective nature of patient allocation by the anesthesiologist, which could impact the generalizability of the findings. To mitigate this, the research team was blinded to the group assignments of patients, aiming to reduce the influence of subjective biases. Fourth, the lack of knowledge regarding the ideal concentration and volume of bupivacaine for the ESPB and QLB3 prevented us from concluding the adequacy or minimal effectiveness of the dose or volume used in our study. Fifth, although the extent of systemic absorption of LA used in these two fascial plane blocks contributes to the overall analgesic efficacy is unknown, it cannot be ruled out. Therefore, studies comparing the efficacy of these blocks with that of lidocaine infusion would be useful. Sixth, an assessment of lower extremity muscle strength could have been conducted in our study to investigate the potential involvement of the lumbar plexus in QLB3. Seventh, extending the follow-up period to > 24 h may have been useful. Lastly, the duration of the block application was not monitored, and future studies could address this to correlate with clinical outcomes.

Conclusion

In summary, our observational study demonstrated that both QLB3 and ESPB are effective components of a multimodal analgesia approach, providing significant postoperative pain relief for patients undergoing PCNL. With similar efficacy observed, selecting between these blocks may be guided by technical ease and safety profile considerations.

Electronic supplementary material

Below is the link to the electronic supplementary material.

Supplementary Material 1

Supplementary Material 2

Supplementary Material 3

Acknowledgements

None.

Author contributions

CK and HT: Conceptualization, Methodology, Investigation, Software, Writing- Original draft preparation, Funding acquisition; ET: Methodology, Validation, Software, Reviewing and Editing; BD and YBU: Visualization, Investigation, Reviewing and Editing. All authors read and approved the final manuscript.

Funding

This study was supported by the Commission Presidency of Scientific Research Projects of Ondokuz Mayis University, Samsun, Turkey, under project number PYO.TIP.1904.23.005.

Data availability

The datasets used and/or analysed during the current study available from thr corresponding author on reasonable request.

Declarations

Ethics approval and consent to participate

This study was approved by the Ondokuz Mayis University Clinical Research Ethics Committee (approval no: 2022/İ.908). The study was conducted in accordance with the Declaration of Helsinki. The trial was registered prior to patient enrollment in the clinical trial database using the ClinicalTrials.gov (Identifier: NCT05822492, date of registration: 10/04/2023). Written informed consent was obtained from all participants and/or their legal guardians on the day before surgery. The study was performed in accordance with the Strengthening the Reporting of Observational Studies in Epidemiology (i.e., “STROBE”) guidelines.

Consent for publication

Not applicable.

Competing interests

The authors declare no competing interests.

Conflict of interest

None.

Congresses

Preliminary data for this study were submitted as an oral presentation at the Turkish Society of Anesthesiology and Reanimation Congress, 2–5 November 2023, Antalya, Turkey.

Abbreviations

QLB3 anterior quadratus lumborum block

ESPB erector spinae plane block

PCNL percutaneous nephrolithotomy

LA local anesthetic

RCT randomized controlled trials

NRS numerical rating scale

US ultrasound

ASA American Society of Anesthesiologists

PONV postoperative nausea and vomiting

PCA intravenous patient-controlled analgesia

NRS numeric rating scale

PACU post-anesthesia care unit

Publisher’s note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Huseyin Turkan and Cengiz Kaya contributed equally to this work.
==== Refs
References

1. Assimos D Krambeck A Miller NL Monga M Murad MH Nelson CP Surgical Management of stones: American Urological Association/Endourological Society Guideline, PART I J Urol 2016 196 4 1153 60 10.1016/j.juro.2016.05.090 27238616
Assimos D, Krambeck A, Miller NL, Monga M, Murad MH, Nelson CP, et al. Surgical Management of stones: American Urological Association/Endourological Society Guideline, PART I. J Urol. 2016;196(4):1153–60.27238616 10.1016/j.juro.2016.05.090
2. Paneque T Richey J Abdelrazek A Morgan K Fitz-Gerald J Swinney S Current advances in pain regimens for percutaneous nephrolithotomy a comprehensive review Can Urol Assoc J 2023 17 11 E388 94 37549344
Paneque T, Richey J, Abdelrazek A, Morgan K, Fitz-Gerald J, Swinney S, et al. Current advances in pain regimens for percutaneous nephrolithotomy a comprehensive review. Can Urol Assoc J. 2023;17(11):E388–94.37549344
3. Borle AP Chhabra A Subramaniam R Rewari V Sinha R Ramachandran R Analgesic efficacy of paravertebral bupivacaine during percutaneous nephrolithotomy: an observer blinded, randomized controlled trial J Endourol 2014 28 9 1085 90 10.1089/end.2014.0179 24828850
Borle AP, Chhabra A, Subramaniam R, Rewari V, Sinha R, Ramachandran R, et al. Analgesic efficacy of paravertebral bupivacaine during percutaneous nephrolithotomy: an observer blinded, randomized controlled trial. J Endourol. 2014;28(9):1085–90.24828850 10.1089/end.2014.0179
4. Honey RJ Ghiculete D Ray AA Pace KT A randomized, double-blinded, placebo-controlled trial of intercostal nerve block after percutaneous nephrolithotomy J Endourol 2013 27 4 415 9 10.1089/end.2012.0418 23445266
Honey RJ, Ghiculete D, Ray AA, Pace KT. A randomized, double-blinded, placebo-controlled trial of intercostal nerve block after percutaneous nephrolithotomy. J Endourol. 2013;27(4):415–9.23445266 10.1089/end.2012.0418
5. Gokten OE Kilicarslan H Dogan HS Turker G Kordan Y Efficacy of levobupivacaine infiltration to nephrosthomy tract in combination with intravenous Paracetamol on postoperative analgesia in percutaneous nephrolithotomy patients J Endourol 2011 25 1 35 9 10.1089/end.2010.0346 21067273
Gokten OE, Kilicarslan H, Dogan HS, Turker G, Kordan Y. Efficacy of levobupivacaine infiltration to nephrosthomy tract in combination with intravenous Paracetamol on postoperative analgesia in percutaneous nephrolithotomy patients. J Endourol. 2011;25(1):35–9.21067273 10.1089/end.2010.0346
6. Blanco R. Tap block under ultrasound guidance: the description of a no pops technique. In.: BMJ Publishing Group Ltd; 2007.
7. Børglum J, Moriggl B, Jensen K, Lønnqvist PA, Christensen AF, Sauter A et al. Ultrasound-guided Transmuscular Quadratus Lumborum Blockade. Br J Anaesth 2013;111(eLetters).
8. Elsharkawy H El-Boghdadly K Barrington M Quadratus Lumborum Block: anatomical concepts, mechanisms, and techniques Anesthesiology 2019 130 2 322 35 10.1097/ALN.0000000000002524 30688787
Elsharkawy H, El-Boghdadly K, Barrington M. Quadratus Lumborum Block: anatomical concepts, mechanisms, and techniques. Anesthesiology. 2019;130(2):322–35.30688787 10.1097/ALN.0000000000002524
9. Akerman M Pejčić N Veličković I A review of the Quadratus Lumborum Block and ERAS Front Med (Lausanne) 2018 5 44 10.3389/fmed.2018.00044 29536008
Akerman M, Pejčić N, Veličković I. A review of the Quadratus Lumborum Block and ERAS. Front Med (Lausanne). 2018;5:44.29536008 10.3389/fmed.2018.00044
10. Forero M Adhikary SD Lopez H Tsui C Chin KJ The Erector Spinae Plane Block: a novel analgesic technique in thoracic neuropathic Pain Reg Anesth Pain Med 2016 41 5 621 7 10.1097/AAP.0000000000000451 27501016
Forero M, Adhikary SD, Lopez H, Tsui C, Chin KJ. The Erector Spinae Plane Block: a novel analgesic technique in thoracic neuropathic Pain. Reg Anesth Pain Med. 2016;41(5):621–7.27501016 10.1097/AAP.0000000000000451
11. Liu J Fang S Wang Y Wang L Gao L Xin T The safety and efficacy of ultrasound-guided erector spinae plane block in postoperative analgesic of PCNL: a systematic review and meta-analysis PLoS ONE 2023 18 7 e0288781 10.1371/journal.pone.0288781 37450461
Liu J, Fang S, Wang Y, Wang L, Gao L, Xin T, et al. The safety and efficacy of ultrasound-guided erector spinae plane block in postoperative analgesic of PCNL: a systematic review and meta-analysis. PLoS ONE. 2023;18(7):e0288781.37450461 10.1371/journal.pone.0288781
12. Ma Y Lin L Xiao K Luo Z Jin T Efficiency and Safety of Erector Spinae Plane Block in Percutaneous Nephrolithotomy: a Meta-analysis based on randomized controlled trials Urology 2022 168 64 71 10.1016/j.urology.2022.07.017 35902000
Ma Y, Lin L, Xiao K, Luo Z, Jin T. Efficiency and Safety of Erector Spinae Plane Block in Percutaneous Nephrolithotomy: a Meta-analysis based on randomized controlled trials. Urology. 2022;168:64–71.35902000 10.1016/j.urology.2022.07.017
13. Zheng C Yang H Yang L Lv Y Li Y Luo J Efficiency and safety of quadratus lumborum block in percutaneous nephrolithotomy: a meta-analysis of randomized controlled studies Urolithiasis 2022 51 1 12 10.1007/s00240-022-01381-8 36480122
Zheng C, Yang H, Yang L, Lv Y, Li Y, Luo J, et al. Efficiency and safety of quadratus lumborum block in percutaneous nephrolithotomy: a meta-analysis of randomized controlled studies. Urolithiasis. 2022;51(1):12.36480122 10.1007/s00240-022-01381-8
14. Lim H Mathew C Wong SN Liu C Anatomical insights into injectate spread after thoracic erector spinae plane block: a systematic review J Clin Anesth 2024 92 111304 10.1016/j.jclinane.2023.111304
Lim H, Mathew C, Wong SN, Liu C. Anatomical insights into injectate spread after thoracic erector spinae plane block: a systematic review. J Clin Anesth. 2024;92:111304.10.1016/j.jclinane.2023.111304
15. Wu J Qin Y She H Ma R Review of the injectate dispersion pattern during anterior quadratus lumborum block Medicine 2022 101 48 e32038 10.1097/MD.0000000000032038 36482577
Wu J, Qin Y, She H, Ma R. Review of the injectate dispersion pattern during anterior quadratus lumborum block. Medicine. 2022;101(48):e32038.36482577 10.1097/MD.0000000000032038
16. Vandenbroucke JP von Elm E Altman DG Gøtzsche PC Mulrow CD Pocock SJ STROBE Initiative. Strengthening the reporting of Observational studies in Epidemiology (STROBE): explanation and elaboration Epidemiology 2007 18 6 805 35 10.1097/EDE.0b013e3181577511 18049195
Vandenbroucke JP, von Elm E, Altman DG, Gøtzsche PC, Mulrow CD, Pocock SJ, et al. STROBE Initiative. Strengthening the reporting of Observational studies in Epidemiology (STROBE): explanation and elaboration. Epidemiology. 2007;18(6):805–35.18049195 10.1097/EDE.0b013e3181577511
17. Association WM World Medical Association Declaration of Helsinki: ethical principles for Medical Research Involving Hum Subj JAMA 2013 310 20 2191 4
Association WM. World Medical Association Declaration of Helsinki: ethical principles for Medical Research Involving. Hum Subj JAMA. 2013;310(20):2191–4.
18. Barrios A Camelo J Gomez J Forero M Peng PWH Visbal K Evaluation of sensory mapping of erector spinae plane block Pain Physician 2020 23 3 E289 32517405
Barrios A, Camelo J, Gomez J, Forero M, Peng PWH, Visbal K, et al. Evaluation of sensory mapping of erector spinae plane block. Pain Physician. 2020;23(3):E289.32517405
19. Dam M Moriggl B Hansen CK Hoermann R Bendtsen TF Børglum J The pathway of injectate spread with the transmuscular quadratus lumborum block: a cadaver study Anesth Analg 2017 125 1 303 12 10.1213/ANE.0000000000001922 28277325
Dam M, Moriggl B, Hansen CK, Hoermann R, Bendtsen TF, Børglum J. The pathway of injectate spread with the transmuscular quadratus lumborum block: a cadaver study. Anesth Analg. 2017;125(1):303–12.28277325 10.1213/ANE.0000000000001922
20. Sondekoppam RV Ip V Johnston DF Uppal V Johnson M Ganapathy S Ultrasound-guided lateral-medial transmuscular quadratus lumborum block for analgesia following anterior iliac crest bone graft harvesting: a clinical and anatomical study Can J Anaesth 2018 65 2 178 87 10.1007/s12630-017-1021-y 29164530
Sondekoppam RV, Ip V, Johnston DF, Uppal V, Johnson M, Ganapathy S, et al. Ultrasound-guided lateral-medial transmuscular quadratus lumborum block for analgesia following anterior iliac crest bone graft harvesting: a clinical and anatomical study. Can J Anaesth. 2018;65(2):178–87.29164530 10.1007/s12630-017-1021-y
21. Dam M Hansen CK Poulsen TD Azawi NH Wolmarans M Chan V Transmuscular quadratus lumborum block for percutaneous nephrolithotomy reduces opioid consumption and speeds ambulation and discharge from hospital: a single centre randomised controlled trial Br J Anaesth 2019 123 2 e350 8 10.1016/j.bja.2019.04.054 31153628
Dam M, Hansen CK, Poulsen TD, Azawi NH, Wolmarans M, Chan V, et al. Transmuscular quadratus lumborum block for percutaneous nephrolithotomy reduces opioid consumption and speeds ambulation and discharge from hospital: a single centre randomised controlled trial. Br J Anaesth. 2019;123(2):e350–8.31153628 10.1016/j.bja.2019.04.054
22. Ökmen K Ökmen BM Ultrasound-guided anterior quadratus lumborum block for postoperative pain after percutaneous nephrolithotomy: a randomized controlled trial Korean J Anesthesiol 2020 73 1 44 50 10.4097/kja.19175 31475507
Ökmen K, Ökmen BM. Ultrasound-guided anterior quadratus lumborum block for postoperative pain after percutaneous nephrolithotomy: a randomized controlled trial. Korean J Anesthesiol. 2020;73(1):44–50.31475507 10.4097/kja.19175
23. Chen L Ji J Tian Y Sun Q Qiu X Li X Retrospective study of quadratus lumborum block for postoperative analgesia in patients undergoing percutaneous nephrolithotomy BMC Anesthesiol 2020 20 1 1 9 10.1186/s12871-020-01134-3 31898488
Chen L, Ji J, Tian Y, Sun Q, Qiu X, Li X, et al. Retrospective study of quadratus lumborum block for postoperative analgesia in patients undergoing percutaneous nephrolithotomy. BMC Anesthesiol. 2020;20(1):1–9.31898488 10.1186/s12871-020-01134-3
24. Bakshi A Srivastawa S Jadon A Mohsin K Sinha N Chakraborty S Comparison of the analgesic efficacy of ultrasound-guided transmuscular quadratus lumborum block versus thoracic erector spinae block for postoperative analgesia in caesarean section parturients under spinal anaesthesia—A randomised study Indian J Anaesth 2022 66 Suppl 4 S213 9 10.4103/ija.ija_88_22 35874481
Bakshi A, Srivastawa S, Jadon A, Mohsin K, Sinha N, Chakraborty S. Comparison of the analgesic efficacy of ultrasound-guided transmuscular quadratus lumborum block versus thoracic erector spinae block for postoperative analgesia in caesarean section parturients under spinal anaesthesia—A randomised study. Indian J Anaesth. 2022;66(Suppl 4):S213–9.35874481 10.4103/ija.ija_88_22
25. Abd Ellatif SE Abdelnaby SM Ultrasound guided erector spinae plane block versus quadratus lumborum block for postoperative analgesia in patient undergoing open nephrectomy: a randomized controlled study Egypt J Anaesth 2021 37 1 123 34 10.1080/11101849.2021.1894661
Abd Ellatif SE, Abdelnaby SM. Ultrasound guided erector spinae plane block versus quadratus lumborum block for postoperative analgesia in patient undergoing open nephrectomy: a randomized controlled study. Egypt J Anaesth. 2021;37(1):123–34.10.1080/11101849.2021.1894661
26. Hassanein A Abdel-Haleem M Mohamed SR Regional analgesia for laparoscopic cholecystectomy using ultrasound-guided quadratus lumborum block or erector spinae block: a randomized controlled trial Pain Physician 2023 26 3 E133 37192231
Hassanein A, Abdel-Haleem M, Mohamed SR. Regional analgesia for laparoscopic cholecystectomy using ultrasound-guided quadratus lumborum block or erector spinae block: a randomized controlled trial. Pain Physician. 2023;26(3):E133.37192231
27. Jiang W Wang M Wang X Jin S Zhang M Zhang L Effects of Erector Spinae Plane Block and Transmuscular Quadratus Lumborum Block on postoperative opioid consumption in total laparoscopic hysterectomy: a Randomized Controlled Clinical Trial Pain Ther 2023 12 3 811 24 10.1007/s40122-023-00505-1 37052813
Jiang W, Wang M, Wang X, Jin S, Zhang M, Zhang L, et al. Effects of Erector Spinae Plane Block and Transmuscular Quadratus Lumborum Block on postoperative opioid consumption in total laparoscopic hysterectomy: a Randomized Controlled Clinical Trial. Pain Ther. 2023;12(3):811–24.37052813 10.1007/s40122-023-00505-1
28. Ghanem MA Attieh AA Mohaseb AM Badr M A randomized comparative study of analgesic effect of erector spinae plane block versus quadratus lumborum block for open colorectal cancer surgeries Egypt J Anaesth 2021 37 1 483 90 10.1080/11101849.2021.1984735
Ghanem MA, Attieh AA, Mohaseb AM, Badr M. A randomized comparative study of analgesic effect of erector spinae plane block versus quadratus lumborum block for open colorectal cancer surgeries. Egypt J Anaesth. 2021;37(1):483–90.10.1080/11101849.2021.1984735
29. Grundy L Erickson A Brierley SM Visceral Pain Annu Rev Physiol 2019 81 261 84 10.1146/annurev-physiol-020518-114525 30379615
Grundy L, Erickson A, Brierley SM. Visceral Pain. Annu Rev Physiol. 2019;81:261–84.30379615 10.1146/annurev-physiol-020518-114525
30. Rao Kadam V Ludbrook G van Wijk RM Hewett PJ Moran JL Thiruvenkatarajan V Comparison of ultrasound-guided transmuscular quadratus lumborum block catheter technique with surgical pre‐peritoneal catheter for postoperative analgesia in abdominal surgery: a randomised controlled trial Anaesthesia 2019 74 11 1381 8 10.1111/anae.14794 31402449
Rao Kadam V, Ludbrook G, van Wijk RM, Hewett PJ, Moran JL, Thiruvenkatarajan V, et al. Comparison of ultrasound-guided transmuscular quadratus lumborum block catheter technique with surgical pre‐peritoneal catheter for postoperative analgesia in abdominal surgery: a randomised controlled trial. Anaesthesia. 2019;74(11):1381–8.31402449 10.1111/anae.14794
31. El-Boghdadly K Pawa A The erector spinae plane block: plane and simple Anaesthesia 2017 72 4 434 8 10.1111/anae.13830 28188611
El-Boghdadly K, Pawa A. The erector spinae plane block: plane and simple. Anaesthesia. 2017;72(4):434–8.28188611 10.1111/anae.13830
32. Jadon A Jain P Dhanwani L Bilateral transmuscular quadratus lumborum block performed in single lateral decubitus position without changing position to the contralateral side Indian J Anaesth 2018 62 4 314 5 10.4103/ija.IJA_750_17 29720759
Jadon A, Jain P, Dhanwani L. Bilateral transmuscular quadratus lumborum block performed in single lateral decubitus position without changing position to the contralateral side. Indian J Anaesth. 2018;62(4):314–5.29720759 10.4103/ija.IJA_750_17
33. Wikner M Unexpected motor weakness following quadratus lumborum block for gynaecological laparoscopy Anaesthesia 2017 72 2 230 2 10.1111/anae.13754 27891579
Wikner M. Unexpected motor weakness following quadratus lumborum block for gynaecological laparoscopy. Anaesthesia. 2017;72(2):230–2.27891579 10.1111/anae.13754
