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通过串联转氨基作用和选择性氧化处理 2-甲基-l-色氨酸,在硫链丝菌素生物合成中引发吲哚环扩展。

Processing 2-Methyl-l-Tryptophan through Tandem Transamination and Selective Oxygenation Initiates Indole Ring Expansion in the Biosynthesis of Thiostrepton.

机构信息

State Key Laboratory of Bioorganic and Natural Products Chemistry, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences , 345 Lingling Road, Shanghai 200032, China.

State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences , 345 Lingling Road, Shanghai 200032, China.

出版信息

J Am Chem Soc. 2017 Sep 6;139(35):12105-12108. doi: 10.1021/jacs.7b05337. Epub 2017 Aug 23.

Abstract

Thiostrepton (TSR), an archetypal member of the family of ribosomally synthesized and post-translationally modified thiopeptide antibiotics, possesses a biologically important quinaldic acid (QA) moiety within the side-ring system of its characteristic thiopeptide framework. QA is derived from an independent l-Trp residue; however, its associated transformation process remains poorly understood. We here report that during the formation of QA, the key expansion of an indole to a quinoline relies on the activities of the pyridoxal-5'-phosphate-dependent protein TsrA and the flavoprotein TsrE. These proteins act in tandem to process the precursor 2-methyl- l-Trp through reversible transamination and selective oxygenation, thereby initiating a highly reactive rearrangement in which selective C2-N1 bond cleavage via hydrolysis for indole ring-opening is closely coupled with C2'-N1 bond formation via condensation for recyclization and ring expansion in the production of a quinoline ketone intermediate. This indole ring-expansion mechanism is unusual, and represents a new strategy found in nature for l-Trp-based functionalization.

摘要

硫链丝菌素(TSR)是一类核糖体合成和翻译后修饰的硫肽抗生素的典型成员,在其特征性硫肽骨架的侧环系统内具有生物上重要的喹哪啶(QA)部分。QA 来源于独立的 l-Trp 残基;然而,其相关的转化过程仍知之甚少。我们在这里报告,在 QA 的形成过程中,关键的吲哚扩展为喹啉依赖于依赖吡哆醛-5'-磷酸的蛋白 TsrA 和黄素蛋白 TsrE 的活性。这些蛋白串联作用,通过可逆转氨和选择性氧化作用来处理前体 2-甲基-l-Trp,从而引发高度反应性的重排,其中通过水解进行吲哚环开裂的选择性 C2-N1 键断裂与通过缩合进行 C2'-N1 键形成紧密偶联,用于再循环和环扩张,生成喹啉酮中间产物。这种吲哚环扩展机制不常见,代表了自然界中基于 l-Trp 的功能化的新策略。

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