==== Front Nat Commun Nat Commun Nature Communications 2041-1723 Nature Publishing Group UK London 39633 10.1038/s41467-023-39633-9 Article Photoredox-catalyzed diastereoselective dearomative prenylation and reverse-prenylation of electron-deficient indole derivatives Chang Xuexue 1 Zhang Fangqing 1 Zhu Shibo 1 Yang Zhuang 2 http://orcid.org/0000-0003-4507-0478 Feng Xiaoming xmfeng@scu.edu.cn 13 http://orcid.org/0000-0002-1274-6104 Liu Yangbin liuyb@szbl.ac.cn 1 1 grid.510951.9 0000 0004 7775 6738 Institute of Chemical Biology, Shenzhen Bay Laboratory, Shenzhen, 518132 China 2 grid.412901.f 0000 0004 1770 1022 State Key Laboratory of Biotherapy and Cancer Center, National Clinical Research Center for Geriatrics, West China Hospital of Sichuan University, Chengdu, 610041 China 3 grid.13291.38 0000 0001 0807 1581 Key Laboratory of Green Chemistry & Technology, Ministry of Education, College of Chemistry, Sichuan University, Chengdu, 610064 China 30 6 2023 30 6 2023 2023 14 387610 1 2023 20 6 2023 © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/ Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, 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 license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license 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 license, visit http://creativecommons.org/licenses/by/4.0/. Prenylated and reverse-prenylated indolines are privileged scaffolds in numerous naturally occurring indole alkaloids with a broad spectrum of important biological properties. Development of straightforward and stereoselective methods to enable the synthesis of structurally diverse prenylated and reverse-prenylated indoline derivatives is highly desirable and challenging. In this context, the most direct approaches to achieve this goal generally rely on transition-metal-catalyzed dearomative allylic alkylation of electron-rich indoles. However, the electron-deficient indoles are much less explored, probably due to their diminished nucleophilicity. Herein, a photoredox-catalyzed tandem Giese radical addition/Ireland–Claisen rearrangement is disclosed. Diastereoselective dearomative prenylation and reverse-prenylation of electron-deficient indoles proceed smoothly under mild conditions. An array of tertiary α-silylamines as radical precursors is readily incorporated in 2,3-disubstituted indolines with high functional compatibility and excellent diastereoselectivity (>20:1 d.r.). The corresponding transformations of the secondary α-silylamines provide the biologically important lactam-fused indolines in one-pot synthesis. Subsequently, a plausible photoredox pathway is proposed based on control experiments. The preliminary bioactivity study reveals a potential anticancer property of these structurally appealing indolines. Prenylated and reverse-prenylated indoline alkaloids are widely present in nature. Here, the authors demonstrate a tandem photoredox radical dearomatization/Claisen rearrangement of electron-deficient indoles for the rapid assembly of these privileged scaffolds. Subject terms Photocatalysis Synthetic chemistry methodology Shenzhen Bay Laboratory (S201100003 and S211101001-1)https://doi.org/10.13039/501100001809 National Natural Science Foundation of China (National Science Foundation of China) 22001177 Liu Yangbin Shenzhen Bay Qihang Fellow (QH23001), Guangdong Pearl River Talent Program (2021QN020268)issue-copyright-statement© Springer Nature Limited 2023 ==== Body pmcIntroduction In living organisms, dimethylallyl pyrophosphate (DMAPP) and isopentenyl pyrophosphate (IPP) as the precursors are usually utilized via enzyme catalysis to selectively introduce prenyl and reverse-prenyl motifs into various biological primary and secondary metabolites (Fig. 1a)1–4. As such, the post-translational proteins modified by a prenyl moiety are targeted to the correct membrane position and play a significant role in the biological signal transduction processes5–7. For small molecule metabolites, C3-prenylated and reverse-prenylated indoline scaffolds are frequently found in a variety of natural bioactive products8–14, such as aszonalenin and flustramine, exhibiting a series of anticancer, antibacterial, and antifungal properties (Fig. 1b). Intrigued by their wide-ranging spectrum of biological activities, the construction of these dimethylallyl-related indoline derivatives has attracted intensive attention from synthetic chemists15–29.Fig. 1 Synthesis of prenylated and reverse-prenylated indoline scaffolds. a Enzyme-catalyzed (reverse-)prenylation of complex molecules with isopentenyl pyrophosphate (IPP) or dimethylallyl pyrophosphate (DMAPP). b Representative naturally occurring prenylated and reverse-prenylated indoline products. c Previous work, transition metals-catalyzed allylic substituent reactions of electron-rich indoles. d This work, our designed strategy for the diastereoselective dearomative prenylation and reverse-prenylation of electron-deficient indoles via photocatalytic tandem Giese radical addition/Ireland–Claisen rearrangement. FG functional group, DG directing group, LG leaving group, PC photocatalyst, TMS trimethylsilyl. Obviously, it is a formidable task bearing several key challenges to the design of synthetic strategies to access the prenylated and reverse-prenylated indolines: 1) unsymmetrical reaction sites of the dimethyl allyl groups often lead to a prominent regioselectivity problem with competitive prenylation (3,3-dimethylallyl) or reverse-prenylation (1,1-dimethylallyl); 2) the synthesis of C3-reverse-prenylated indolines is a more difficult process with relatively low reactivity, since two vicinal all-carbon quaternary centers present substantial steric hindrance; 3) to control the diastereoselectivity at the C3 and C2 sites of indoline also faces significant obstacles. In principle, catalytic dearomative prenylation of readily available indoles via allylic substituent reactions has been recognized as one of the most straightforward methods to access the dimethylallyl-related indolines in a single step (Fig. 1c)30–35. However, these corresponding transformations usually depend on the use of electron-rich indoles via an intramolecular dearomative process, and the precious metals (Ir and Pd) are often necessary. By contrast, the electron-deficient indoles are rarely employed as nucleophiles in the realm of allylic alkylation reactions, owing to the mismatched electrical properties. In addition, comparing with numerous advancements in the dearomatization of electron-rich indoles36–40, the available dearomative reactions of electron-deficient indoles are much limited41. Therefore, it is distinctively challenging to achieve intermolecular dearomatization and prenylation of electron-deficient indoles simultaneously. Recently, photoredox-enabled Giese-type radical addition42–47 has been implemented to the dearomatization of electron-deficient indoles. In general, diverse radical precursors, such as tertiary amines, N-arylglycines, aliphatic carboxylic acids and aldehydes, are initialized by the excited photocatalysts, which undergo a radical nucleophilic addition to the electron poor C2 = C3 bond of indoles. The resulting dearomatized radicals are then reduced to give the corresponding anions, followed by a rapid protonation to deliver the hydrofunctionalized indoline derivatives (Fig. 1d, top)48–56. Inspired by our continuing interest in sigmatropic rearrangements57–60, we envisage whether the incorporation of photoredox-enabled nucleophilic radical dearomatization of indoles and [3,3]-rearrangement (Ireland–Claisen type)61–63 could be developed to prepare the prenylated and reverse-prenylated indolines (Fig. 1d, bottom). Forinstance, when employing 1-(3,3-dimethylallyl) indole-3-carboxylates as electrophilic substrates and α-silylamines as nucleophilic radical precursors, the generated in situ carbanions can be captured by TMS+, leading to the formation of highly reactive silylketene acetals. Subsequent [3,3]-rearrangement takes place under mild conditions and gives the C3-reverse-prenylated and C2-aminoalkylated indoline derivatives. Similarly, only by adjusting the 1-(1,1-dimethylallyl) substituents on electrophilic indoles, the complementary C3-prenylated indoline derivatives are obtained with ease and efficiency. Herein, we demonstrate our efforts towards the visible-light-induced Giese radical dearomatization/Ireland–Claisen rearrangement with an organic photoredox catalyst, providing an alternative approach to accomplish the valuable prenylation and reverse-prenylation of electron-deficient indoles in good to excellent yields. An array of natural products and pharmaceuticals containing an aminoalkyl group are selectively incorporated in indoline scaffolds, displaying good tolerance of diverse functional groups. Distinct from a related work by Glorius using terminal acrylate esters as radical acceptors64, here the prochiral C2-position of indoles will generate a new stereocenter after the radical addition, thus resulting in a challenging diastereoselective control for the subsequent [3,3]-rearrangement. Notably, after careful selection of N-directing groups and organic photocatalysts, the tandem Giese addition/rearrangement process was realized in an excellent diastereoselective manner, producing trans−2,3-difunctionalized indolines exclusively. Results Reaction optimization To verify our strategy, the commercially available electron-deficient indole-3-carboxylic acid was converted to the corresponding 1-(3,3-dimethylallyl) ester, followed by a N-protection step to readily prepare the radical acceptor 1. Considering the property of N-DG moiety can greatly affect the reactivity of indoles, we introduce diverse electron-withdrawing groups (such as Boc, Ac, Cbz, and Ts) on the nitrogen to decrease the electron density of indoles, thus making the indoles more reactive for the nucleophilic radical attack. Moreover, organic amines are prevalent motifs in a great variety of natural products and pharmaceuticals, which are used as the precursors for highly valuable α-aminoalkyl radicals under visible-light photoredox catalysis65–79. Consequently, we selected the N-Boc indole-ester 1a and N-methyl-N-((trimethylsilyl)methyl)aniline 2a as model substrates for the optimization of conditions. The mixture was irradiated by 1 W blue LEDs at room temperature and then heated at 60 °C to promote the thermal [3,3]-rearrangement process. After screening different photocatalysts, 4CzIPN was found to be the optimal catalyst, providing the dearomative reverse-prenylation product 3a bearing vicinal all-carbon quaternary centers in 70% yield with moderate diastereoselectivity (3:1 d.r., Table 1, entry 4 vs entries 1–3). As expected, the valuable amine-moiety can be incorporated smoothly into indolines via Giese radical addition, however, a complicated diastereoselective control problem was accompanied for the sequential rearrangement. Further extensive optimization of solvents was investigated, and only slightly improved diastereomeric ratio (4:1 d.r.) was obtained in DMF without deterioration of the reactivity (78% yield, Table 1, entry 6). Then, we turned our attention to other N-protected indoles 1b–1d. In general, the electrophilic indoles bearing N-electron withdrawing groups, such as Ac, Cbz, and Ts, were suitable substrates to afford the desired products in moderate to good yields. In contrast, no reaction occurred for N-H and N-Me indoles, indicating that the initial dearomatization process of the C2 = C3 bond necessitated the activation of the N-EWGs. Encouragingly, when tosyl-substituted indole 1d was employed, the reverse-prenylated indoline 3d was furnished as a single diastereoisomer with >20:1 d.r. (Table 1, entry 12). Further optimization of the concentration of the reactants and the photocatalyst loading, we were delighted to isolate the indoline 3d in 71% yield with exclusive diastereoselectivity (Table 1, entry 13). Of note, small amounts of the Giese-type side products (hydro-aminoalkylation of indoles) were identified by 1H NMR analysis, probably due to the inevitable water in the reaction system. Additionally, confirmed by the control experiments, no reaction was observed in the absence of photocatalyst or light, indicating that a visible light mediated pathway was definitely involved (Table 1, entries 14 and 15).Table 1 Reaction optimization for dearomative reverse-prenylation of indoles entrya substrate PC solvent yield (%)b d.r.c 1 1a Ru(bpy)3(PF6)2 CH3CN 60 2.8:1 2 1a Ir(bpy)2(dtbbpy)PF6 CH3CN 76 2.5:1 3 1a Mes-Acr+PF6- CH3CN trace -- 4 1a 4CzIPN CH3CN 70 3:1 5d 1a 4CzIPN THF 75 3:1 6 1a 4CzIPN DMF 78 4:1 7 1a 4CzIPN DMSO 80 3:1 8 1a 4CzIPN EtOAc 24 6:1 9 1a 4CzIPN toluene trace -- 10 1b 4CzIPN DMF 80 2.4:1 11 1c 4CzIPN DMF 30 2:1 12 1d 4CzIPN DMF 65 >20:1 13e 1d 4CzIPN DMF 71f >20:1 14g 1d -- DMF 0 N.D. 15h 1d 4CzIPN DMF 0 N.D. a Reaction conditions: indoles 1 (0.1 mmol), α-silylamine 2a (0.12 mmol), and photocatalyst (2.5 mol%) were performed in the indicated solvent (1.0 mL) at room temperature under the irradiation by 1 W blue LEDs for 2 h in argon. Then, the reaction vial was warmed at 60 °C for additional 3 h without blue LEDs. b Yield determined by 1H NMR with pyridine as the internal standard. c Diastereomeric ratio determined by 1H NMR analysis of the crude reaction mixture. d Irradiation time was extended to 48 h. e Indoles 1d (0.3 mmol), α-silylamine 2a (0.36 mmol), 4CzIPN (1.3 mol%), DMF (1.0 mL). f Isolated yield. g No photocatalyst. h Under dark. PC, photocatalyst; N.D., not determined. Access to reverse-prenylated indolines With the optimized conditions in hand, we began to explore the generality of this dearomative reverse-prenylation with respect to electrophilic 1-(3,3-dimethylallyl) indole-3-carbonate 1d and a range of functionalized tertiary α-silylamines 2 (Fig. 2). First, structurally diversified N,N-dimethyl(alkyl) anilines and N,N-diaryl amines were well tolerated to give the corresponding reverse-prenylated indolines (3d–3n) in good yields with excellent diastereoselectivities (55–90% yields, >20:1 d.r.). Electron-withdrawing and electron-donating substituents on varied positions of the aryl moiety were found to be compatible, including halogens, cyano, and methyl. The structure of reverse-prenylated indoline was determined by X-ray crystallographic analysis (3h, CCDC 2225579), demonstrating excellent trans-selectivity for the aminoalkyl and reverse-prenyl. Additionally, aniline derivatives bearing allyl, benzyl, and isopropyl groups exhibited exclusive terminal-methyl regioselectivity, as observed in 3j–3l. Carbazole as an important core structure found in numerous natural compounds was also introduced into this catalytic system and showed modest reactivity (3o, 50% yield). We also investigated the acyclic aliphatic amines: N-methylbenzyl amine and exchange of the benzyl moiety with phenethyl smoothly afforded the desired 2,3-disubstituted indolines 3p and 3q. Subsequently, the cyclic aliphatic amines as the most frequent N-heterocyclic functions employed in drugs were examined. As such, substituted piperidines with varying functionalities (3r and 3s) demonstrated good yields in 76% and 69%, respectively. Other relevant cyclic amines bearing additional heteroatoms and functionalities, including morpholine, piperazine, 1,4-diazepane, and L-proline, also underwent dearomatization smoothly and furnished the rearranged products 3t–3w with analogous efficiencies. Substituted indoles possessing various functional groups on varied positions were also suitable substrates to deliver the reverse-prenylated indolines in good yields with excellent diastereoselectivities (46–73% yields, >20:1 d.r., 3x–3ae). Given the tertiary amines as a common motif in pharmaceuticals, we were triggered to explore the capacity of this dearomative reverse-prenylation manifold on a range of pharmaceutically relevant compounds. As such, structurally complex drugs, including antibacterial infection norfloxacin (3da), acetylcholine receptor agonist cytisine (3db), calcium-channel blocker nortriptyline (3dc), and serotonin reuptake inhibitor duloxetine (3dd), were readily and selectively cross-coupled with indolines by the standard protocol. Alternatively, the significant amino-fragments found in other complex drugs such as ramipril (3de), flunarizine (3df), clopidogrel (3dg), and bepotastine (3dh), also afforded the corresponding indoline-adducts in good yields. Collectively, our catalytic platform provides a streamlined synthesis of structurally diverse reverse-prenylated indoline derivatives bearing a series of high-value-added amino-functionalities.Fig. 2 Substrate scope of reverse-prenylated indolines. Reaction conditions: solution of 1d (0.3 mmol), 2 (0.36 mmol), and 4CzIPN (1.3 mol%) in DMF (1.0 mL) was irradiated by 1 W blue LEDs for 2 h in argon. Then the reaction vial was warmed at 60 °C for additional 3 h without blue LEDs. Isolated yields are shown. d.r. values were based on 1H NMR analysis. Access to lactam-fused indolines We next investigated secondary α-silylamines bearing a free NH group as radical donors under optimal conditions (Fig. 3). Surprisingly, the unexpected lactam-fused indolines became the major products with excellent diastereoselectivities. We speculate that the acidic TMS+ in the reaction mixture may activate the indoline-3-carboxylic acid and facilitate the intramolecular amidation. Given the distinct advantage of lactam scaffolds in pharmaceuticals80, 81, we examined the generality of this one-pot synthesis of lactam-fused indolines. Good reactivity for a variety of secondary α-silylamines with diverse functional groups was displayed, including halogens, tert-butyl, ester, trifluoromethyl, and methoxyl (5a–5h). Also, the three-dimensional structure of compound 5f was confirmed by X-ray diffraction analysis (CCDC 2225587). Furthermore, amino acids derivatives, glycine and L-methionine, were also applied to deliver the corresponding lactam-fused indolines 5i and 5j in good yields. Product 5j was provided as two diastereoisomers due to the presence of an extra stereocenter.Fig. 3 Substrate scope of the lactam-fused indolines from various secondary α-silylamines. Reaction conditions: solution of 1d (0.3 mmol), 4 (0.36 mmol), and 4CzIPN (1.3 mol%) in DMF (1.0 mL) was irradiated by 1 W blue LEDs for 2 h in argon. Then the reaction vial was warmed at 60 °C for additional 3 h without blue LEDs. Isolated yields are shown. d.r. values were based on 1H NMR analysis. Access to prenylated indolines Next, we wondered if the complementary regioisomers, prenylated indolines, could be prepared via this uniform dearomatization-rearrangement sequence (Fig. 4). Delightfully, by simply changing the ester group at the C3 position of indoles into 1-(1,1-dimethylallyl) substituent (6), the expected transformations proceeded smoothly and afforded the prenylated indolines with good yields and excellent diastereoselectivities (7a–7j). A wide of tertiary α-silylamines bearing various functionalities and diverse structures, such as N,N-dialkyl anilines, carbazole, morpholine, piperidine and piperazines, were well tolerated and their corresponding prenylated indolines 7a–7h were obtained in good to excellent yields (66–83%) with exclusive selectivity (> 20:1 d.r.). Similarly, when using secondary α-silylamines as the radical precursors, the lactam-fused indoline analogues 7i and 7j containing a C3-prenyl substituent were achieved with comparable results.Fig. 4 Substrate scope of prenylated indolines. Reaction conditions: solution of 6 (0.3 mmol), 2 (0.36 mmol), and 4CzIPN (1.3 mol%) in DMF (1.0 mL) was irradiated by 1 W blue LEDs for 2 h in argon. Then the reaction vial was warmed at 60  °C for additional 3 h without blue LEDs. Isolated yields are shown. Access to trans−2,3-disubstituted indolines In addition, other complex terpene-derived indole-3-carboxylates were found to be suitable substrates for this reaction (Fig. 5). As such, the photoredox-enabled dearomative reverse-geranylation/farnesylation proceeded smoothly under the standard conditions, giving the corresponding products 9a and 9b in moderate yields (59–66%), but with low diastereomeric ratios (2:1 and 1.3:1 d.r.). It is probably attributed to the difficulty in discriminating between the chairlike and boatlike transition states in the Ireland–Claisen rearrangement process. Also, the readily available (Z)-pent-2-en-1-ol derivative was investigated to afford the 2,3-disubstituted indoline 9c with a similar level of diastereoselectivity (89% yield, 1.7:1 d.r.). Furthermore, different substituents in the allyl alcohols were also tested, such as hydrogen, methyl and chloro-groups. Gratifyingly, the corresponding products 9d–9f can be obtained in good yields with exclusive diastereoselectivities. It was worthy of noting that the propargylic alcohol-derived indole was well tolerated, delivering the desired indoline 9g with an allenyl-substituted quaternary center in good outcomes (58% yield, >20:1 d.r.).Fig. 5 Preparation of other relevant trans-2,3-disubstituted indolines. Reaction conditions: solution of 8 (0.3 mmol), 2a (0.36 mmol), and 4CzIPN (1.3 mol%) in DMF (1.0 mL) was irradiated by 1 W blue LEDs for 2 h in argon. Then the reaction vial was warmed at 60 °C for additional 3 h without blue LEDs. Isolated yields are shown. d.r. values were based on 1H NMR analysis. Synthetical application To further demonstrate the synthetic potential of this mild dearomatization-rearrangement reaction of electrophilic indoles, we next explored divergent transformations of taking the reverse-prenylated products as an example (Fig. 6). Benefiting from the presence of diverse functional groups, such as terminal olefin, carboxylic acid, and amino, a variety of valuable synthetic building blocks were readily and selectively accessed after simple operations. Hydrogenation of the terminal olefin in reverse-prenyl moiety with palladium under a hydrogen atmosphere furnished 10 in 90% yield. Spiro-lactone 11 containing a primary alkyl iodide was directly prepared in 63% yield with excellent diastereoselectivity by an iodine-mediated halolactonization. Additionally, after an almost quantitative methyl-esterification, the olefin functionality was smoothly converted into primary alcohol 12 and organoboron 13 by a sequential hydroboration-oxidation (9-BBN and then H2O2), and an iridium-catalyzed hydroboration with pinacolborane, respectively. The synthetic utility of these indoline derivatives has also been shown to perform late-stage modifications of natural products to give their indoline-based analogous (for instance, estrone, 14). The carboxylic acid group was also amenable to deliver the corresponding alcohol 15 under common conditions (reduction by LAH). Interestingly, when trying to prepare the acyl chloride from classical oxalyl chloride and DMF, an unexpected intramolecular demethylation-amidation reaction of the tertiary amine happened, resulting in the formation of lactam-fused indoline 5a in 80% yield. Finally, deprotection of the N-tosyl indoline was accomplished by the single electron transfer reagent (sodium napthalenide), delivering the N-H free indoline derivative 16 in 64% yield.Fig. 6 Synthetic transformations of the reverse-prenylated indolines. Conversion of the enantioenriched product 3d to diverse chiral building blocks (for details, see Supplementary information). Mechanistic studies To gain more insight into the reaction, preliminary mechanistic studies were performed. The Stern–Volmer fluorescence quenching experiments were conducted for each component 1d and 2a (Fig. 7a). It was found that the excited photocatalyst 4CzIPN* was quenched significantly by the α-silylaniline 2a rather than the indole derivative 1d, which suggested the oxidative single-electron transfer of α-silylanilines probably triggered the photoreaction. Interestingly, the fluorescence intensity was obviously enhanced in the presence of 1d, implying a possible interaction between the photocatalyst and the indole substrate82. When 2,2,6,6-tetramethylpiperidinyloxy (TEMPO) and allylic sulfoxide were used as radical-trapping reagents, the desired dearomatizaiton/rearrangement product 3 was dramatically suppressed (Fig. 7b). Moreover, the α-allylated N,N-dimethyl aniline (2a-allyl) was confirmed by ESI-HRMS (m/z calcd for C11H15N [M + H]+: 162.1277; found: 162.1278), indicating that the aminoalkyl radical might be involved in this transformation (Fig. 7b). Next, N,N-dimethyl aniline 2’ was employed as the nucleophilic radical source and exclusively gave the hydro-aminoalkylated product 3’ (Giese-type) in 36% yield, which might be attributed to the rapid protonation of the C3-benzylic anion (Fig. 7c, first). Similarly, once external H2O as a proton source was introduced into the standard reaction, the Giese-type side product 3’ became dominated and the [3,3]-rearrangement process was completely interrupted, further evidencing the generation of a carbanion in this reaction (Fig. 7c, second). To probe the reactive silylketene acetal intermediate, we modified the reaction conditions by switching DMF to CH3CN and reducing room temperature to 0 °C. In that case, the spontaneously thermal [3,3]-rearrangement became negligible, and the ESI-HRMS signal of 3’ + TMS (m/z calcd for C32H40N2O4SSi [M + H]+: 577.2551; found: 577.2553) was clearly observed (Fig. 7c, third). Accordingly, on the basis of the above control experiments along with previous works48–52, a plausible reaction mechanism was proposed (Fig. 7d): firstly, the excited 4CzIPN* (E1/2(PC*/PC•-) = +1.35 V vs. SCE in MeCN)83 underwent a SET oxidation of the α-silylaniline 2 (E1/2(2a•+/2a) = approx. +0.7 V vs. SCE in MeCN)84, followed by fragmentation to afford α-aminoalkyl radical I and TMS+. Next, the nucleophilic radical I attacked N-Ts indole derivative 1 in a similar Giese reaction pathway to generate C3-benzylic radical II, which was then reduced by the 4CzIPN− to give a C3-benzylic anion III. Subsequent enolization of the anion III provided in situ the silylketene acetal intermediate IV. Finally, a spontaneous Ireland–Claisen rearrangement of IV furnished the dearomative reverse-prenylation of indoles, to deliver the product 3 in good yield with exclusive trans-selectivity of the newly formed C-C bonds (red color highlighted in 3). We speculated that the cis-C3-allyl migration might be blocked by the C2-aminoalkyl substituent in transition state IV-2.Fig. 7 Mechanistic investigation. a Stern–Volmer fluorescence quenching experiments. b Radical trapping experiments. c Intermediate confirmation experiments. d Proposed reaction mechanism. Preliminary study on the anticancer activity Considering prenylated/reverse-prenylated indolines as an important motif in bioactive natural products, we initially investigated the anticancer activity of several selected indolines by detecting the in vitro cytotoxicity against the human leukemia cell line MV4-11 (Fig. 8). It was found that most candidates had a preliminary inhibition effect at 10 μM. Notably, compounds 3k and 3df displayed a potential anticancer activity with IC50 values of 16.8 μM and 6.3 μM, respectively. We believe that further study of other indoline derivatives and biological properties is promising to discover more potential applications in medicinal chemistry.Fig. 8 Biological activity study. Inhibition of the human leukemia cell line viability (MV4-11) induced by some selected indoline compounds. IC50 values for 3k and 3df in inhibiting MV4-11. Experiments were performed in duplicate (n = 3). Standard deviation (SD) values are shown as the error bars. Discussion In conclusion, we have developed an intermolecular dearomative prenylation and reverse-prenylation of indoles via a tandem Giese radical addition/Ireland–Claisen rearrangement. Distinct from conventional allylic substitution approaches mostly relying on electron-rich indoles, this photoredox-enabled protocol bearing transition-metal-free provides an efficient method to achieve (reverse-)prenylation of electron-deficient indoles. Moreover, after careful selection of organic photocatalysts and N-protection moieties, the 2,3-difunctionalized indoline derivatives were produced with exclusive diastereoselectivities (>20:1 d.r.). An array of structurally diverse amines including complex modified natural products and pharmaceuticals were employed as radical precursors, and were readily incorporated in indolines with high functional compatibility and isolated yields. Notably, by simple adjustment of 1-(1,1-dimethylallyl) or 1-(3,3-dimethylallyl) substituent in indole-3-carboxylates, both prenylated and reverse-prenylated indolines were selectively produced, respectively, without the disturbing regioselectivity issue. In addition, the current systems were found to work well with the secondary amines, efficiently affording the biologically important lactam-fused indolines in one-pot synthesis. The synthetic potential was further highlighted via diversification of reverse-prenylated products. Mechanistic studies revealed a possible photoredox-SET process, followed by the formation of silylketene acetals and subsequent [3,3]-rearrangement. Finally, the anticancer activity of these privileged indoline products was preliminarily explored, indicating potential application prospects in biological activity. Methods Materials Unless otherwise specified, all chemicals were purchased from Leyan.com and Bide Pharmatech. All solvents were purified and dried according to standard methods before use. General procedure for the photoredox-catalyzed dearomative prenylation and reverse-prenylation of electron-deficient indoles In the glovebox, to a flame-dried 8 mL reaction vial equipped with a stir bar were added dimethylallyl indole-3-carboxylate (0.3 mmol, 1.0 equiv.) and 4-CzIPN (3.0 mg, 0.0039 mmol, 0.013 equiv.) in dry DMF (0.5 mL). Then the solution of α-silylamine (0.36 mmol, 1.2 equiv.) in dry DMF (0.5 mL) was added. The vial was sealed and transferred out of the glove box. It was irradiated with a 1 W blue LED lamp (SYNLED) for 2 h at room temperature. Afterwards, the reaction mixture was allowed to heat at 60 °C for 3 h without light. When the reaction was completed (monitored by TLC), the crude mixture was quenched by water and extracted with ethyl acetate (10 mL × 2). The combined organic layers were washed with water (10 mL × 2) and brine (10 mL), dried over anhydrous Na2SO4, filtered, and concentrated by rotary evaporation. Then the residue was purified by silica gel flash chromatography to give the corresponding product. Supplementary information Supplementary information Peer Review File Supplementary information The online version contains supplementary material available at 10.1038/s41467-023-39633-9. Acknowledgements We appreciate the National Natural Science Foundation of China (22001177), Shenzhen Bay Laboratory (S201100003 and S211101001-1), Shenzhen Bay Qihang Fellow (QH23001), Guangdong Pearl River Talent Program (2021QN020268) for generous financial support. We also thank Dr. Zhenda Tan and Dr. Hongkai Wang for helpful discussions. Author contributions X.X.C. performed the experiments and prepared the Supplementary information. F.Q.Z. investigated several substrates and repeated some data. S.B.Z. developed the initial reaction conditions. Z.Y. performed the biological experiments. X.M.F. supported the project. Y.B.L. designed and supervised the project, and wrote the manuscript and Supplementary information. All the authors contributed to the manuscript revisions. Peer review Peer review information Nature Communications thanks the anonymous reviewers for their contribution to the peer review of this work. A peer review file is available. Data availability Crystallographic data for the structures reported in this Article have been deposited at the Cambridge Crystallographic Data Centre, under deposition numbers 2225579 (3h) and 2225587 (5f). Copies of the data can be obtained free of charge via https://www.ccdc.cam.ac.uk/structures/. All other data supporting the findings of this study are available from its Supplementary information or the corresponding author upon request. Competing interests The authors declare no competing interests. Publisher’s note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations. ==== Refs References 1. Williams RM Stocking EM Sanz-Cervera JF Biosynthesis of prenylated alkaloids derived from tryptophan Top. Curr. Chem. 2000 209 97 173 10.1007/3-540-48146-X_3 2. Oldfield E Lin FY Terpene biosynthesis: modularity rules Angew. Chem. Int. Ed. 2012 51 1124 1137 10.1002/anie.201103110 3. Chang W-C Song H Liu H-W Liu P Current development in isoprenoid precursor biosynthesis and regulation Curr. Opin. Chem. Biol. 2013 17 571 579 10.1016/j.cbpa.2013.06.020 23891475 4. Tanner ME Mechanistic studies on the indole prenyltransferases Nat. Prod. Rep. 2015 32 88 101 10.1039/C4NP00099D 25270661 5. Walsh CT Garneau-Tsodikova S Gatto GJ Jr. Protein posttranslational modifcations: the chemistry of proteome diversifcations Angew. Chem. Int. Ed. 2005 44 7342 7372 10.1002/anie.200501023 6. Palsuledesai CC Distefano MD Protein prenylation: enzymes, therapeutics, and biotechnology applications ACS Chem. Biol. 2015 10 51 62 10.1021/cb500791f 25402849 7. Jeong A In vivo prenylomic profiling in the brain of a transgenic mouse model of Alzheimer’s disease reveals increased prenylation of a key set of proteins ACS Chem. Biol. 2022 17 2863 2876 10.1021/acschembio.2c00486 36109170 8. Wang HJ Gloer JB Dowd PF Mollenines A and B: new dioxomorpholines from the Ascostromata of Eupenicillium molle J. Nat. Prod. 1998 61 804 807 10.1021/np9704056 9644070 9. Yin WB Grundmann A Cheng J Li SM Acetylaszonalenin biosynthesis in Neosartorya fischeri. Identification of the biosynthetic gene cluster by genomic mining and functional proof of the genes by biochemical investigation J. Biol. Chem. 2009 284 100 109 10.1074/jbc.M807606200 19001367 10. Li SM Prenylated indole derivatives from fungi: structure diversity, biological activities, biosynthesis and chemoenzymatic synthesis Nat. Prod. Rep. 2010 27 57 78 10.1039/B909987P 20024094 11. Eamvijarn A Gomes NM Dethoup T Roussis V Kijjoa A Bioactive meroditerpenes and indole alkaloids from the soil fungus Neosartorya fischeri (KUFC 6344), and the marine-derived fungi Neosartorya laciniosa (KUFC 7896) and Neosartorya tsunodae (KUFC 9213) Tetrahedron 2013 69 8583 8591 10.1016/j.tet.2013.07.078 12. Melander RJ Basak AK Melander C Natural products as inspiration for the development of bacterial antibiofilm agents Nat. Prod. Rep. 2020 37 1454 1477 10.1039/D0NP00022A 32608431 13. Gu L Sun FJ Yang MH Kong LY Ardeemins and citrinin dimer derivatives from Aspergillus terreus harbored in Pinellia ternate Phytochem. Lett. 2021 42 77 81 10.1016/j.phytol.2021.02.007 14. Liu Y Chen M-Q Liu Y-Y Zhang Y Qian Z-J Mechanism of two alkaloids isolated from coral endophytic fungus for suppressing angiogenesis in atherosclerotic plaque in HUVEC Int. Immunopharmacol. 2022 109 108931 108943 10.1016/j.intimp.2022.108931 35704971 15. Lindel T Marsch N Adla SK Indole prenylation in alkaloid synthesis Top. Curr. Chem. 2012 309 67 129 10.1007/128_2011_204 21915778 16. Hu Y-C Min X-T Ji D-W Chen Q-A Catalytic prenylation and reverse prenylation of aromatics Trends Chem. 2022 4 658 675 10.1016/j.trechm.2022.04.004 17. Austin JF Kim S-G Sinz CJ Xiao W-J MacMillan DWC Enantioselective organocatalytic construction of pyrroloindolines by a cascade addition–cyclization strategy: synthesis of (-)-fustramine B Proc. Natl Acad. Sci. USA 2004 101 5482 5487 10.1073/pnas.0308177101 15067109 18. Trost BM Stiles DT Total synthesis of spirotryprostatin B via diastereoselective prenylation Org. Lett. 2007 9 2763 2766 10.1021/ol070971k 17592853 19. Itoh J Han SB Krische MJ Enantioselective allylation, crotylation, and reverse prenylation of substituted isatins: iridium-catalyzed C-C bond-forming transfer hydrogenation Angew. Chem. Int. Ed. 2009 48 6313 6316 10.1002/anie.200902328 20. Trost BM Malhotra S Chan WH Exercising regiocontrol in palladium-catalyzed asymmetric prenylations and geranylation: unifying strategy toward flustramines A and B J. Am. Chem. Soc. 2011 133 7328 7331 10.1021/ja2020873 21520958 21. Zhang X Han L You S-L Ir-catalyzed intermolecular asymmetric allylic dearomatization reaction of indoles Chem. Sci. 2014 5 1059 1063 10.1039/c3sc53019a 22. Trost BM Chan WH Malhotra S Development of the regiodivergent asymmetric prenylation of 3-substituted oxindoles Chem. Eur. J. 2017 23 4405 4414 10.1002/chem.201605810 28141896 23. Hakamata H Sato S Ueda H Tokuyama H AgNTf2-mediated allylation with allylsilanes at C3a-position of hexahydropyrroloindoles: application to total syntheses of amauromine alkaloids Org. Lett. 2017 19 5308 5311 10.1021/acs.orglett.7b02602 28926277 24. Li DF Liu K Zhang JR Zhao LM Access to 3-prenylated oxindoles by α-regioselective prenylation: application to the synthesis of (+/-)-debromoflustramine E Org. Lett. 2018 20 1122 1125 10.1021/acs.orglett.8b00045 29400474 25. Trost BM Bai W-J Hohn C Bai Y Cregg JJ Palladium-catalyzed asymmetric allylic alkylation of 3-substituted 1H-indoles and tryptophan derivatives with vinylcyclopropanes J. Am. Chem. Soc. 2018 140 6710 6717 10.1021/jacs.8b03656 29750514 26. Hu Y-C Ji D-W Zhao C-Y Zheng H Chen Q-A Catalytic prenylation and reverse prenylation of indoles with isoprene: regioselectivity manipulation through choice of metal hydride Angew. Chem. Int. Ed. 2019 59 5438 5442 10.1002/anie.201901025 27. Yu H Zong Y Xu T Total synthesis of (−)-penicimutanin a and related congeners Chem. Sci. 2020 11 656 660 10.1039/C9SC05252F 28. Zhao C-Y Bioinspired and ligand-regulated unnatural prenylation and geranylation of oxindoles with isoprene under Pd catalysis Angew. Chem. Int. Ed. 2022 61 e202207202 29. García-Domínguez P de Lera AR Puzzling out the structure of novofumigatamide: total synthesis of constitutional isomers. Part II J. Org. Chem. 2022 87 12528 12546 10.1021/acs.joc.2c01228 36129245 30. Kimura M Futamata M Mukai R Tamaru Y Pd-catalyzed C3-selective allylation of indoles with allyl alcohols promoted by triethylborane J. Am. Chem. Soc. 2005 127 4592 4593 10.1021/ja0501161 15796522 31. Ruchti J Carreira EM Ir-catalyzed reverse prenylation of 3-substituted indoles: total synthesis of (+)-aszonalenin and (-)-brevicompanine B J. Am. Chem. Soc. 2014 136 16756 16759 10.1021/ja509893s 25365411 32. Muller JM Stark CB Diastereodivergent reverse prenylation of indole and tryptophan derivatives: total synthesis of amauromine, novoamauromine, and epi-amauromine Angew. Chem. Int. Ed. 2016 55 4798 4802 10.1002/anie.201509468 33. Tu H-F Zhang X Zheng C Zhu M You S-L Enantioselective dearomative prenylation of indole derivatives Nat. Catal. 2018 1 601 608 10.1038/s41929-018-0111-8 34. Khopade TM Ajayan K Joshi SS Lane AL Viswanathan R Bioinspired Brønsted acid-promoted regioselective tryptophan isoprenylations ACS Omega 2021 6 10840 10858 10.1021/acsomega.1c00515 34056238 35. Joshi BD Chisholm JD Formation of pyrroloindolines via the alkylation of tryptamines with trichloroacetimidates Tetrahedron Lett. 2021 77 153256 10.1016/j.tetlet.2021.153256 34334833 36. Repka LM Reisman SE Recent developments in the catalytic, asymmetric construction of pyrroloindolines bearing all-carbon quaternary stereocenters J. Org. Chem. 2013 78 12314 12320 10.1021/jo4017953 24295135 37. Zhuo C-X Zheng C You S-L Transition-metal-catalyzed asymmetric allylic dearomatization reactions Acc. Chem. Res. 2014 47 2558 2573 10.1021/ar500167f 24940612 38. Roche SP Youte Tendoung J-J Treguier B Advances in dearomatization strategies of indoles Tetrahedron 2015 71 3549 3591 10.1016/j.tet.2014.06.054 39. Zheng C You S-L Catalytic asymmetric dearomatization (CADA) reaction-enabled total synthesis of indole-based natural products Nat. Prod. Rep. 2019 36 1589 1605 10.1039/C8NP00098K 30839047 40. Sheng F-T Wang J-Y Tan W Zhang Y-C Shi F Progresses in organocatalytic asymmetric dearomatization reactions of indole derivatives Org. Chem. Front. 2020 7 3967 3998 10.1039/D0QO01124J 41. Cerveri A Bandini M Recent advances in the catalytic functionalization of “electrophilic” indoles Chin. J. Chem. 2020 38 287 294 10.1002/cjoc.201900446 42. Giese B Formation of C-C bonds by addition of free radicals to alkenes Angew. Chem. Int. Ed. Engl. 1983 22 753 764 10.1002/anie.198307531 43. Qin T Nickel catalyzed Barton decarboxylation and Giese reactions: a practical take on classic transforms Angew. Chem. Int. Ed. 2017 56 260 265 10.1002/anie.201609662 44. ElMarrouni A Ritts CB Balsells J Silyl-mediated photoredox-catalyzed Giese reaction: addition of non-activated alkyl bromides Chem. Sci. 2018 9 6639 6646 10.1039/C8SC02253D 30310596 45. Liu H One-pot photomediated Giese reaction/Friedel–Crafts hydroxyalkylation/oxidative aromatization to access naphthalene derivatives from toluenes and enones ACS Catal. 2018 8 6224 6229 10.1021/acscatal.8b00481 46. Kanegusuku ALG Castanheiro T Ayer SK Roizen JL Sulfamyl radicals direct photoredox-mediated Giese reactions at unactivated C(3)–H bonds Org. Lett. 2019 21 6089 6095 10.1021/acs.orglett.9b02234 31313933 47. Cheng Y-Z Intermolecular dearomatization of naphthalene derivatives by photoredox-catalyzed 1,2-hydroalkylation Angew. Chem. Int. Ed. 2020 59 18062 18067 10.1002/anie.202008358 48. Huang X-L Cheng Y-Z Zhang X You S-L Photoredox-catalyzed intermolecular hydroalkylative dearomatization of electron-deficient indole derivatives Org. Lett. 2020 22 9699 9705 10.1021/acs.orglett.0c03759 33295778 49. Zhang YT Ji P Guo F Zeng FX Wang W Photoredox asymmetric nucleophilic dearomatization of indoles with neutral radicals ACS Catal. 2021 11 998 1007 10.1021/acscatal.0c04696 50. Zhang YT Ji P Wang CQ Zhou ZY Wang W Organophotocatalytic dearomatization of indoles, pyrroles and benzo(thio)furans via a Giese-type transformation Commun. Chem. 2021 4 20 10.1038/s42004-021-00460-y 36697532 51. Varlet T Bouchet D Elslande EV Masson G Decatungstate-photocatalyzed dearomative hydroacylation of indoles: direct synthesis of 2-acylindolines Chem. Eur. J. 2022 28 e202201707 10.1002/chem.202201707 35809229 52. Huang X-L Cheng Y-Z You S-L Visible-light enabled synthesis of cyclopropane-fused indolines via dearomatization of indoles Org. Chem. Front. 2022 9 5463 5468 10.1039/D2QO01174C 53. Zhou W-J Reductive dearomative arylcarboxylation of indoles with CO2 via visible-light photoredox catalysis Nat. Commun. 2020 11 3263 10.1038/s41467-020-17085-9 32601286 54. Chen S Meervelt LV der Eycken EVV Sharma UK Visible-light-driven palladium-catalyzed radical tandem dearomatization of indoles with unactivated alkenes Org. Lett. 2022 24 1213 1218 10.1021/acs.orglett.1c04390 35107015 55. Chen S Visible-light-induced cascade difunctionalization of indoles enabled by the synergy of photoredox and photoexcited ketones: direct access to alkylated pyrrolophenanthridones Org. Lett. 2022 24 9386 9391 10.1021/acs.orglett.2c03697 36525615 56. Cai Y-P Ma M-Y Xu X Song Q-H Visible-light-driven reductive dearomatization of N-arylformyl indoles in EDA complexes with a thiophenol via a HAT pathway Org. Chem. Front. 2023 10 1633 1642 10.1039/D2QO02024F 57. Liu YB Liu XH Feng XM Recent advances in metal-catalysed asymmetric sigmatropic rearrangements Chem. Sci. 2022 13 12290 12308 10.1039/D2SC03806D 36382273 58. Liu YB Synergistic kinetic resolution and asymmetric propargyl Claisen rearrangement for the synthesis of chiral allenes Angew. Chem. Int. Ed. 2016 55 4054 4058 10.1002/anie.201511776 59. Liu Y Diastereodivergent synthesis of chiral α-aminoketones via a catalytic O–H insertion/Barnes–Claisen rearrangement reaction ACS Catal. 2022 12 1784 1790 10.1021/acscatal.1c05789 60. Wang LF [3,3]-Sigmatropic rearrangements of naphthyl 1-propargyl ethers: para-propargylation and catalytic asymmetric dearomatization Angew. Chem. Int. Ed. 2022 61 e202211785 10.1002/anie.202211785 61. Ireland RE Mueller RH Claisen rearrangement of allyl esters J. Am. Chem. Soc. 1972 94 5897 5898 10.1021/ja00771a062 62. Ireland RE Mueller RH Willard AK The ester enolate Claisen rearrangement. Stereochemical control through stereoselective enolate formation J. Am. Chem. Soc. 1976 98 2868 2877 10.1021/ja00426a033 63. Ireland RE Wipf P Armstrong JD III Stereochemical control in the ester enolate Claisen rearrangement. 1. Stereoselectivity in silyl ketene acetal formation J. Org. Chem. 1991 56 650 657 10.1021/jo00002a030 64. Kleinmans R Will LE Schwarz JL Glorius F Photoredox-enabled 1,2-dialkylation of alpha-substituted acrylates via Ireland–Claisen rearrangement Chem. Sci. 2021 12 2816 2822 10.1039/D0SC06385A 34164045 65. Nakajima K Miyake Y Nishibayashi Y Synthetic utilization of α‑aminoalkyl radicals and related species in visible light photoredox catalysis Acc. Chem. Res. 2016 49 1946 1956 10.1021/acs.accounts.6b00251 27505299 66. Leitch JA Rossolini T Rogova T Maitland JAP Dixon DJ α-Amino radicals via photocatalytic single-electron reduction of imine derivatives ACS Catal. 2020 10 2009 2025 10.1021/acscatal.9b05011 67. Shi L Xia W Photoredox functionalization of C–H bonds adjacent to a nitrogen atom Chem. Soc. Rev. 2012 41 7687 7697 10.1039/c2cs35203f 22869017 68. Brumfield MA Quillen SL Yoon UC Mariano PS A novel method for heteroatom-substituted free radical generation by photochemical electron transfer induced desilylation of RXCH2SiMe3 systems J. Am. Chem. Soc. 1984 106 6855 6856 10.1021/ja00334a072 69. Hasegawa E Xu W Mariano PS Yoon UC Kim JU Electron-transfer-induced photoadditions of the silyl amine, Et2NCH2SiMe3, to.alpha.,.beta.-unsaturated cyclohexenones. Dual reaction pathways based on ion pair-selective cation-radical chemistry J. Am. Chem. Soc. 1988 110 8099 8111 10.1021/ja00232a023 70. Espelt LR McPherson Iain S Wiensch EM Yoon TP Enantioselective conjugate additions of α-amino radicals via cooperative photoredox and Lewis acid catalysis J. Am. Chem. Soc. 2015 137 2452 2455 10.1021/ja512746q 25668687 71. Xie J Yu J Rudolph M Rominger F Hashmi ASK Monofluoroalkenylation of dimethylamino compounds through radical–radical cross-coupling Angew. Chem. Int. Ed. 2016 55 9416 9421 10.1002/anie.201602347 72. Le C Liang Y Evans RW Li X MacMillan DWC Selective sp3 C–H alkylation via polarity-match-based cross-coupling Nature 2017 547 79 83 10.1038/nature22813 28636596 73. Lin S-X Sun G-J Kang Q A visible-light-activated rhodium complex in enantioselective conjugate addition of α-amino radicals with Michael acceptors Chem. Commun. 2017 53 7665 7668 10.1039/C7CC03650G 74. Lang SB Wiles RJ Kelly CB Molander GA Photoredox generation of carbon-centered radicals enables the construction of 1,1-difluoroalkene carbonyl mimics Angew. Chem. Int. Ed. 2017 56 15073 15077 10.1002/anie.201709487 75. Aycock RA Pratt CJ Jui NT Aminoalkyl radicals as powerful intermediates for the synthesis of unnatural amino acids and peptides ACS Catal. 2018 8 9115 9119 10.1021/acscatal.8b03031 76. Zheng S Selective 1,2-aryl-aminoalkylation of alkenes enabled by metallaphotoredox catalysis Angew. Chem. Int. Ed. 2020 59 17910 17916 10.1002/anie.202006439 77. Leng L Fu Y Liu P Ready JM Regioselective, photocatalytic α-functionalization of amines J. Am. Chem. Soc. 2020 142 11972 11977 10.1021/jacs.0c03758 32573218 78. Walker MM Highly diastereoselective functionalization of piperidines by photoredox-catalyzed α-amino C–H arylation and epimerization J. Am. Chem. Soc. 2020 142 8194 8202 10.1021/jacs.9b13165 32286827 79. Zheng S Wang W Yuan W Remote and proximal hydroaminoalkylation of alkenes enabled by photoredox/nickel dual catalysis J. Am. Chem. Soc. 2022 144 17776 17782 10.1021/jacs.2c08039 36136777 80. Nay B Riache N Evanno L Chemistry and biology of non-tetramic γ-hydroxy-γ-lactams and γ-alkylidene-γ-lactams from natural sources Nat. Prod. Rep. 2009 26 1044 1062 10.1039/B903905H 19636449 81. Caruano J Muccioli GG Robiette R Biologically active γ-lactams: synthesis and natural sources Org. Biomol. Chem. 2016 14 10134 10156 10.1039/C6OB01349J 27748489 82. Yi Y Fan Z Xi C Photoredox-catalyzed intermolecular dearomative trifluoromethylcarboxylation of indoles and heteroanalogues with CO2 and fluorinated radical precursors Green. Chem. 2022 24 7894 7899 10.1039/D2GC03000D 83. Luo J Zhang J Donor−acceptor fluorophores for visible-light-promoted organic synthesis: photoredox/Ni dual catalytic C(sp3)–C(sp2) cross-coupling ACS Catal. 2016 6 873 877 10.1021/acscatal.5b02204 84. Remeur C Kelly CB Patel NR Molander GA Aminomethylation of aryl halides using α-silylamines enabled by Ni/photoredox dual catalysis ACS Catal. 2017 7 6065 6069 10.1021/acscatal.7b01973 29354317