弹头
酶
生物化学
内酰胺
化学
内酯
β-内酰胺
立体化学
组合化学
抗生素
工程类
航空航天工程
作者
Katherine D. Bauman,Vikram V. Shende,Percival Yang-Ting Chen,Daniela B. B. Trivella,Tobias A. M. Gulder,Sreekumar Vellalath,Daniel Romo,Bradley S. Moore
标识
DOI:10.1038/s41589-022-00993-w
摘要
The marine microbial natural product salinosporamide A (marizomib) is a potent proteasome inhibitor currently in clinical trials for the treatment of brain cancer. Salinosporamide A is characterized by a complex and densely functionalized γ-lactam-β-lactone bicyclic warhead, the assembly of which has long remained a biosynthetic mystery. Here, we report an enzymatic route to the salinosporamide core catalyzed by a standalone ketosynthase (KS), SalC. Chemoenzymatic synthesis of carrier protein-tethered substrates, as well as intact proteomics, allowed us to probe the reactivity of SalC and understand its role as an intramolecular aldolase/β-lactone synthase with roles in both transacylation and bond-forming reactions. Additionally, we present the 2.85-Å SalC crystal structure that, combined with site-directed mutagenesis, allowed us to propose a bicyclization reaction mechanism. This work challenges our current understanding of the role of KS enzymes and establishes a basis for future efforts toward streamlined production of a clinically relevant chemotherapeutic. Biochemical and structural characterization of a standalone ketosynthase, SalC, reveals that it serves as a critical intramolecular aldolase and β-lactone synthase during biosynthesis of the core of the marine natural product salinosporamide A.
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