Scaffold tailoring by a newly detected Pictet-Spenglerase activity of strictosidine synthase: from the common tryptoline skeleton to the rare piperazino-indole framework.
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Artem Cherkasov | Meitian Wang | Hongbin Zou | Chitra Rajendran | Santosh Panjikar | S. Panjikar | A. Cherkasov | Meitian Wang | J. Stöckigt | Joachim Stöckigt | Lianli Sun | Fangrui Wu | H. Zou | Fangrui Wu | Huajian Zhu | Lianli Sun | Xin Ren | X. Ren | Huajian Zhu | C. Rajendran
[1] J. Fridrichsons,et al. The crystal structure of gliotoxin. , 1967, Acta crystallographica.
[2] T. Kutchan,et al. Strictosidine: from alkaloid to enzyme to gene. , 1993, Phytochemistry.
[3] R. Glennon,et al. Pyrazino[1,2-a]indoles as novel high-affinity and selective imidazoline I(2) receptor ligands. , 2004, Bioorganic & medicinal chemistry letters.
[4] M. Bandini,et al. Enantioselective phase-transfer-catalyzed intramolecular aza-Michael reaction: effective route to pyrazino-indole compounds. , 2008, Angewandte Chemie.
[5] M. Zenk,et al. The biosynthesis of monoterpenoid indole alkaloids from strictosidine , 1979 .
[6] Sébastien Laliberté,et al. Palladium-catalyzed double allylic alkylation of indole-2-hydroxamates: easy access to pyrazino[1,2-a]indole derivatives , 2010 .
[7] Xudong Qu,et al. Integrating Carbon-Halogen Bond Formation into Medicinal Plant Metabolism , 2010, Nature.
[8] J. Stöckigt,et al. A facile chemoenzymatic approach: one-step syntheses of monoterpenoid indole alkaloids. , 2010, Chemistry, an Asian journal.
[9] Herbert Waldmann,et al. The Pictet-Spengler reaction in nature and in organic chemistry. , 2011, Angewandte Chemie.
[10] J. Bajorath,et al. Global assessment of scaffold hopping potential for current pharmaceutical targets , 2010 .
[11] M. Hao,et al. Pyrazinoindolone inhibitors of MAPKAP-K2. , 2008, Bioorganic & medicinal chemistry letters.
[12] M. Zenk,et al. Strictosidine (isovincoside): the key intermediate in the biosynthesis of monoterpenoid indole alkaloids , 1977 .
[13] S. O’Connor,et al. Metabolic reprogramming of periwinkle plant culture. , 2009, Nature chemical biology.
[14] S. Panjikar,et al. Structure-based engineering of strictosidine synthase: auxiliary for alkaloid libraries. , 2007, Chemistry & biology.
[15] R. Sarpong,et al. The first total synthesis of dragmacidin d. , 2002, Journal of the American Chemical Society.
[16] J. Koepke,et al. The Structure of Rauvolfia serpentina Strictosidine Synthase Is a Novel Six-Bladed β-Propeller Fold in Plant Proteins[W] , 2006, The Plant Cell Online.
[17] B. Trout,et al. Strictosidine synthase: mechanism of a Pictet-Spengler catalyzing enzyme. , 2008, Journal of the American Chemical Society.
[18] G. Fritzsch,et al. Crystallization and preliminary X-ray crystallographic analysis of strictosidine synthase from Rauvolfia: the first member of a novel enzyme family. , 2004, Biochimica et biophysica acta.
[19] S. O’Connor,et al. Rapid identification of enzyme variants for reengineered alkaloid biosynthesis in periwinkle. , 2007, Chemistry & biology.
[20] R. Chandra,et al. Synthesis and antifungal activity of substituted-10-methyl-1,2,3,4-tetrahydropyrazino[1,2-a]indoles. , 2006, Bioorganic & medicinal chemistry.
[21] Nathan Brown,et al. On scaffolds and hopping in medicinal chemistry. , 2006, Mini reviews in medicinal chemistry.
[22] D. Bracher,et al. Enzymology and molecular biology of alkaloid biosynthesis , 1991 .
[23] N. Hampp,et al. The cDNA clone for strictosidine synthase from Rauvolfia serpentina DNA sequence determination and expression in Escherichia coli , 1988, FEBS letters.
[24] Neil K Garg,et al. A unified synthetic approach to the pyrazinone dragmacidins. , 2006, Chemical communications.
[25] G. Abbiati,et al. Intramolecular cyclization of delta-iminoacetylenes: a new entry to pyrazino[1,2-a]indoles. , 2005, The Journal of organic chemistry.