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Complex molecule synthesis by electrocatalytic decarboxylative cross-coupling.
Zhang, Benxiang; He, Jiayan; Gao, Yang; Levy, Laura; Oderinde, Martins S; Palkowitz, Maximilian D; Dhar, T G Murali; Mandler, Michael D; Collins, Michael R; Schmitt, Daniel C; Bolduc, Philippe N; Chen, TeYu; Clementson, Sebastian; Petersen, Nadia Nasser; Laudadio, Gabriele; Bi, Cheng; Kawamata, Yu; Baran, Phil S.
Afiliação
  • Zhang B; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • He J; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • Gao Y; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • Levy L; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • Oderinde MS; Department of Discovery Synthesis, Bristol Myers Squibb Research & Early Development, Princeton, NJ, USA.
  • Palkowitz MD; Small Molecule Drug Discovery, Bristol Myers Squibb Research & Early Development, Cambridge, MA, USA.
  • Dhar TGM; Bristol Myers Squibb Research & Early Development, Princeton, NJ, USA.
  • Mandler MD; Bristol Myers Squibb Research & Early Development, Princeton, NJ, USA.
  • Collins MR; Oncology Medicinal Chemistry Department, Pfizer Pharmaceuticals, San Diego, CA, USA.
  • Schmitt DC; Medicine Design, Pfizer Worldwide Research and Development, Groton, CT, USA.
  • Bolduc PN; Discovery Chemistry Research and Technologies, Lilly Research Laboratories, Eli Lilly and Company, Indianapolis, IN, USA.
  • Chen T; Biogen Inc., Cambridge, MA, USA.
  • Clementson S; Biogen Inc., Cambridge, MA, USA.
  • Petersen NN; Research and Early Development, LEO Pharma A/S, Ballerup, Denmark.
  • Laudadio G; Research and Early Development, LEO Pharma A/S, Ballerup, Denmark.
  • Bi C; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • Kawamata Y; Department of Chemistry, Scripps Research, La Jolla, CA, USA.
  • Baran PS; Department of Chemistry, Scripps Research, La Jolla, CA, USA. yukawama@scripps.edu.
Nature ; 623(7988): 745-751, 2023 Nov.
Article em En | MEDLINE | ID: mdl-37788684
Modern retrosynthetic analysis in organic chemistry is based on the principle of polar relationships between functional groups to guide the design of synthetic routes1. This method, termed polar retrosynthetic analysis, assigns partial positive (electrophilic) or negative (nucleophilic) charges to constituent functional groups in complex molecules followed by disconnecting bonds between opposing charges2-4. Although this approach forms the basis of undergraduate curriculum in organic chemistry5 and strategic applications of most synthetic methods6, the implementation often requires a long list of ancillary considerations to mitigate chemoselectivity and oxidation state issues involving protecting groups and precise reaction choreography3,4,7. Here we report a radical-based Ni/Ag-electrocatalytic cross-coupling of substituted carboxylic acids, thereby enabling an intuitive and modular approach to accessing complex molecular architectures. This new method relies on a key silver additive that forms an active Ag nanoparticle-coated electrode surface8,9 in situ along with carefully chosen ligands that modulate the reactivity of Ni. Through judicious choice of conditions and ligands, the cross-couplings can be rendered highly diastereoselective. To demonstrate the simplifying power of these reactions, concise syntheses of 14 natural products and two medicinally relevant molecules were completed.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Produtos Biológicos / Preparações Farmacêuticas / Descarboxilação / Eletroquímica / Eletrodos / Técnicas de Química Sintética Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Produtos Biológicos / Preparações Farmacêuticas / Descarboxilação / Eletroquímica / Eletrodos / Técnicas de Química Sintética Idioma: En Ano de publicação: 2023 Tipo de documento: Article