Development of a Metal- and Oxidant-Free Enzyme–Photocatalyst Hybrid System for Highly Efficient C-3 Acylation Reactions of Indoles with Aldehydes
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Xiao‐Qi Yu | Yuan-guang Yu | Na Wang | Wei-Fan Lu | Mingxue Shi | Yao Yao | Ru-De Lin
[1] Huimin Zhao,et al. Photobiocatalysis for Abiological Transformations. , 2022, Accounts of chemical research.
[2] R. Cohen,et al. Photoenzymatic Synthesis of α-Tertiary Amines by Engineered Flavin-Dependent "Ene"-Reductases. , 2021, Journal of the American Chemical Society.
[3] J. Xue,et al. Engineering Fatty Acid Photodecarboxylase To Enable the Highly selective Decarboxylation of trans Fatty Acids. , 2021, Angewandte Chemie.
[4] G. Scholes,et al. Engineering a Non-Natural Photoenzyme for Improved Photon Efficiency. , 2021, Angewandte Chemie.
[5] T. Okazoe,et al. Photo-on-Demand Synthesis of Vilsmeier Reagents with Chloroform and Their Applications to One-Pot Organic Syntheses. , 2021, The Journal of organic chemistry.
[6] S. Boutet,et al. Mechanism and dynamics of fatty acid photodecarboxylase , 2021, Science.
[7] Xiao‐Qi Yu,et al. Fast and high-efficiency synthesis of 2-substituted benzothiazoles via combining enzyme catalysis and photoredox catalysis in one-pot. , 2020, Bioorganic chemistry.
[8] Xiao‐Qi Yu,et al. Combining photo-redox and enzyme catalysis for the synthesis of 4H-pyrimido[2,1-b] benzothiazole derivatives in one pot. , 2020, Bioorganic chemistry.
[9] Yan-hong Liu,et al. Enzyme-catalysed One-Pot Synthesis of 4H-Pyrimido[2,1-b] benzothiazoles and their Application in Subcellular Imaging. , 2020, Journal of biotechnology.
[10] Run Li,et al. Bioinspired NADH Regeneration Based on Conjugated Photocatalytic Systems , 2020 .
[11] Biqiang Chen,et al. Construction of multi-enzyme cascade biomimetic carbon sequestration system based on photocatalytic coenzyme NADH regeneration , 2020 .
[12] Huimin Zhao,et al. Photoenzymatic enantioselective intermolecular radical hydroalkylation , 2020, Nature.
[13] K. Scheidt,et al. Combined Photoredox/Enzymatic C-H Benzylic Hydroxylations Rick C. Betoria, Catherine M. Maya, Karl A. Scheidt*a. , 2019, Angewandte Chemie.
[14] Yujun Li,et al. Electrochemically Enabled C3-Formylation and -Acylation of Indoles with Aldehydes. , 2019, Organic letters.
[15] G. Scholes,et al. Asymmetric Redox-Neutral Radical Cyclization Catalyzed by Flavin-Dependent ‘Ene’-Reductases , 2019, Nature Chemistry.
[16] Xianfu Lin,et al. Light-Driven Kinetic Resolution of α-Functionalized Carboxylic Acids Enabled by an Engineered Fatty Acid Photodecarboxylase. , 2019, Angewandte Chemie.
[17] Piwu Li,et al. Fully Conjugated Two-Dimensional sp2 -Carbon Covalent Organic Frameworks as Artificial Photosystem I with High Efficiency. , 2019, Angewandte Chemie.
[18] Yangjie Wu,et al. Directed C3-Alkoxymethylation of Indole via Three-Component Cascade Reaction. , 2019, Organic letters.
[19] Wilson A. Smith,et al. Hydrocarbon Synthesis via Photoenzymatic Decarboxylation of Carboxylic Acids , 2019, Journal of the American Chemical Society.
[20] Zhi Guan,et al. Concurrent Asymmetric Reactions Combining Photocatalysis and Enzyme Catalysis: Direct Enantioselective Synthesis of 2,2-Disubstituted Indol-3-ones from 2-Arylindoles. , 2018, Angewandte Chemie.
[21] M. Stodulski,et al. Visible-Light-Mediated α-Oxygenation of 3-(N ,N -Dimethylaminomethyl)-Indoles to Aldehydes , 2018, European Journal of Organic Chemistry.
[22] Fabio Tonin,et al. Light‐Driven Enzymatic Decarboxylation of Fatty Acids , 2018, Angewandte Chemie.
[23] S. Charnock,et al. Photo-biocatalytic One-Pot Cascades for the Enantioselective Synthesis of 1,3-Mercaptoalkanol Volatile Sulfur Compounds. , 2018, Angewandte Chemie.
[24] D. A. Klumpp,et al. One-Pot Reactions Involving the Fischer Indole Synthesis and Friedel–Crafts Reactions , 2018, Topics in Catalysis.
[25] J. Waser,et al. Iridium- and Rhodium-Catalyzed Directed C-H Heteroarylation of Benzaldehydes with Benziodoxolone Hypervalent Iodine Reagents. , 2018, Organic letters.
[26] Yan‐Rong Li,et al. Lipase‐Initiated Tandem Biginelli Reactions via in situ‐Formed Acetaldehydes in One Pot: Discovery of Single‐Ring Deep Blue Luminogens , 2017 .
[27] Huanfeng Jiang,et al. Copper-Catalyzed Aerobic Oxidative Regioselective Thiocyanation of Aromatics and Heteroaromatics. , 2017, The Journal of organic chemistry.
[28] Bin Zhou,et al. Iron-Catalyzed C3-Formylation of Indoles with Formaldehyde and Aqueous Ammonia under Air , 2017 .
[29] Jin-ming Yang,et al. Iodine-catalyzed C3-formylation of indoles using hexamethylenetetramine and air , 2017 .
[30] E. V. D. Eycken,et al. Merger of Visible-Light Photoredox Catalysis and C–H Activation for the Room-Temperature C-2 Acylation of Indoles in Batch and Flow , 2017 .
[31] C. Cho,et al. Intramolecular Fischer Indole Synthesis for the Direct Synthesis of 3,4-Fused Tricyclic Indole and Application to the Total Synthesis of (-)-Aurantioclavine. , 2016, Organic letters.
[32] Yu Saito,et al. 2,6‐Bis(amido)benzoic Acid with Internal Hydrogen Bond as Brønsted Acid Catalyst for Friedel–Crafts Reaction of Indoles , 2015 .
[33] R. Vishwakarma,et al. Aminocatalytic cross-coupling approach via iminium ions to different C - C Bonds. , 2015, Chemistry.
[34] Pixu Li,et al. Aerobic Transition-Metal-Free Visible-Light Photoredox Indole C-3 Formylation Reaction , 2014 .
[35] K. Higashiyama,et al. Brønsted Acid Catalyzed Friedel–Crafts Alkylation Reactions of Trifluoromethyl-α,β-ynones with Indoles , 2012 .
[36] W. Su,et al. Mild and selective Ru-catalyzed formylation and Fe-catalyzed acylation of free (N-H) indoles using anilines as the carbonyl source. , 2011, Journal of the American Chemical Society.
[37] Xiao‐Qi Yu,et al. Utilization of biocatalytic promiscuity for direct Mannich reaction , 2010 .
[38] C. Li,et al. Promiscuous protease-catalyzed aldol reactions: a facile biocatalytic protocol for carbon-carbon bond formation in aqueous media. , 2010, Journal of biotechnology.
[39] Abolfazl Olyaei,et al. A simple, solvent and catalyst-free green synthesis of novel N-[(1H-indol-3-yl)arylmethyl]heteroarylamines , 2010 .
[40] E. Busto,et al. Hydrolases: catalytically promiscuous enzymes for non-conventional reactions in organic synthesis. , 2010, Chemical Society reviews.
[41] Angelo D. Favia,et al. Protein promiscuity and its implications for biotechnology , 2009, Nature Biotechnology.
[42] Wei Zhang,et al. Mn(OAc)3-promoted regioselective free radical thiocyanation of indoles and anilines , 2009 .
[43] Xiao‐Qi Yu,et al. Biocatalytic promiscuity: the first lipase-catalysed asymmetric aldol reaction , 2008 .
[44] K. Hult,et al. Enzyme promiscuity: mechanism and applications. , 2007, Trends in biotechnology.
[45] D. MacMillan,et al. Enantioselective organocatalytic indole alkylations. Design of a new and highly effective chiral amine for iminium catalysis. , 2002, Journal of the American Chemical Society.
[46] O. Ottoni,et al. Acylation of indole under Friedel-Crafts conditions-an improved method to obtain 3-acylindoles regioselectively. , 2001, Organic letters.