Le-Le Zhu, De-Gao Wang, Luo Niu, Yue-Zhong Li, Hai-yan Sui and Changsheng Wu
{"title":"将合成生物学与合成电化学相结合,拓展吲哚咔唑家族的化学空间。","authors":"Le-Le Zhu, De-Gao Wang, Luo Niu, Yue-Zhong Li, Hai-yan Sui and Changsheng Wu","doi":"10.1039/D5OB00766F","DOIUrl":null,"url":null,"abstract":"<p >Indolocarbazoles, a class of highly privileged scaffolds, hold immense significance in medicinal chemistry due to their diverse biological activities. In this study, we have demonstrated the environmentally benign synthesis of indolocarbazoles by integrating the strengths of synthetic biology and synthetic electrochemistry. Through pathway reconstruction in <em>Escherichia coli</em>, a sustained supply of the prototype indolocarbazole k252c (<strong>1</strong>) was achieved, which could be efficiently <em>N</em>-rhamnosylated to produce k252d (<strong>2</strong>) <em>via</em> modular coculture engineering. An appreciable yield (∼20 mg L<small><sup>−1</sup></small>) was obtained through <em>in vitro</em> enzymatic glycosylation of compounds <strong>1</strong> and <strong>2</strong>, yielding derivatives <strong>3–8</strong> with diverse glycosyl linkages. Additionally, under exceptionally mild conditions, the electrochemical conversion of compounds <strong>1</strong> and <strong>2</strong> enabled the synthesis of derivatives <strong>9–17</strong> with tunable functionalization. Notably, the N–N homodimerization observed in compounds <strong>9</strong> and <strong>10</strong> is unprecedented within the structural family of indolocarbazoles. The antiproliferative activity of compounds <strong>1–17</strong> was assessed against twenty different human tumor cell lines. Overall, the combination of multistep biocascades with electrocatalysis represents a novel green synthetic approach to expand the repertoire of xenobiotic compounds available to chemists.</p>","PeriodicalId":96,"journal":{"name":"Organic & Biomolecular Chemistry","volume":" 28","pages":" 6764-6772"},"PeriodicalIF":2.7000,"publicationDate":"2025-06-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Combining synthetic biology with synthetic electrochemistry to expand the chemical space of the indolocarbazole family†\",\"authors\":\"Le-Le Zhu, De-Gao Wang, Luo Niu, Yue-Zhong Li, Hai-yan Sui and Changsheng Wu\",\"doi\":\"10.1039/D5OB00766F\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Indolocarbazoles, a class of highly privileged scaffolds, hold immense significance in medicinal chemistry due to their diverse biological activities. In this study, we have demonstrated the environmentally benign synthesis of indolocarbazoles by integrating the strengths of synthetic biology and synthetic electrochemistry. Through pathway reconstruction in <em>Escherichia coli</em>, a sustained supply of the prototype indolocarbazole k252c (<strong>1</strong>) was achieved, which could be efficiently <em>N</em>-rhamnosylated to produce k252d (<strong>2</strong>) <em>via</em> modular coculture engineering. An appreciable yield (∼20 mg L<small><sup>−1</sup></small>) was obtained through <em>in vitro</em> enzymatic glycosylation of compounds <strong>1</strong> and <strong>2</strong>, yielding derivatives <strong>3–8</strong> with diverse glycosyl linkages. Additionally, under exceptionally mild conditions, the electrochemical conversion of compounds <strong>1</strong> and <strong>2</strong> enabled the synthesis of derivatives <strong>9–17</strong> with tunable functionalization. Notably, the N–N homodimerization observed in compounds <strong>9</strong> and <strong>10</strong> is unprecedented within the structural family of indolocarbazoles. The antiproliferative activity of compounds <strong>1–17</strong> was assessed against twenty different human tumor cell lines. 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Combining synthetic biology with synthetic electrochemistry to expand the chemical space of the indolocarbazole family†
Indolocarbazoles, a class of highly privileged scaffolds, hold immense significance in medicinal chemistry due to their diverse biological activities. In this study, we have demonstrated the environmentally benign synthesis of indolocarbazoles by integrating the strengths of synthetic biology and synthetic electrochemistry. Through pathway reconstruction in Escherichia coli, a sustained supply of the prototype indolocarbazole k252c (1) was achieved, which could be efficiently N-rhamnosylated to produce k252d (2) via modular coculture engineering. An appreciable yield (∼20 mg L−1) was obtained through in vitro enzymatic glycosylation of compounds 1 and 2, yielding derivatives 3–8 with diverse glycosyl linkages. Additionally, under exceptionally mild conditions, the electrochemical conversion of compounds 1 and 2 enabled the synthesis of derivatives 9–17 with tunable functionalization. Notably, the N–N homodimerization observed in compounds 9 and 10 is unprecedented within the structural family of indolocarbazoles. The antiproliferative activity of compounds 1–17 was assessed against twenty different human tumor cell lines. Overall, the combination of multistep biocascades with electrocatalysis represents a novel green synthetic approach to expand the repertoire of xenobiotic compounds available to chemists.
期刊介绍:
Organic & Biomolecular Chemistry is an international journal using integrated research in chemistry-organic chemistry. Founded in 2003 by the Royal Society of Chemistry, the journal is published in Semimonthly issues and has been indexed by SCIE, a leading international database. The journal focuses on the key research and cutting-edge progress in the field of chemistry-organic chemistry, publishes and reports the research results in this field in a timely manner, and is committed to becoming a window and platform for rapid academic exchanges among peers in this field. The journal's impact factor in 2023 is 2.9, and its CiteScore is 5.5.