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烯键重排的分子基础在 Gephyronic 酸聚酮合酶中。

Molecular Basis for Olefin Rearrangement in the Gephyronic Acid Polyketide Synthase.

机构信息

Department of Biological Chemistry and Life Sciences Institute , University of Michigan , Ann Arbor , Michigan 48109 , United States.

Department of Chemistry and Biochemistry , University of Notre Dame , Notre Dame , Indiana 46556 , United States.

出版信息

ACS Chem Biol. 2018 Sep 21;13(9):2699-2707. doi: 10.1021/acschembio.8b00645. Epub 2018 Sep 12.

Abstract

Polyketide synthases (PKS) are a rich source of natural products of varied chemical composition and biological significance. Here, we report the characterization of an atypical dehydratase (DH) domain from the PKS pathway for gephyronic acid, an inhibitor of eukaryotic protein synthesis. Using a library of synthetic substrate mimics, the reaction course, stereospecificity, and tolerance to non-native substrates of GphF DH1 are probed via LC-MS analysis. Taken together, the studies establish GphF DH1 as a dual-function dehydratase/isomerase that installs an odd-to-even double bond and yields a product consistent with the isobutenyl terminus of gephyronic acid. The studies also reveal an unexpected C2 epimerase function in catalytic turnover with the native substrate. A 1.55-Å crystal structure of GphF DH1 guided mutagenesis experiments to elucidate the roles of key amino acids in the multistep DH1 catalysis, identifying critical functions for leucine and tyrosine side chains. The mutagenesis results were applied to add a secondary isomerase functionality to a nonisomerizing DH in the first successful gain-of-function engineering of a PKS DH. Our studies of GphF DH1 catalysis highlight the versatility of the DH active site and adaptation for a specific catalytic outcome with a specific substrate.

摘要

聚酮合酶(PKS)是具有不同化学组成和生物意义的天然产物的丰富来源。在这里,我们报告了来自 gephyronic 酸 PKS 途径的非典型脱水酶(DH)结构域的特征,该酸是一种真核蛋白合成抑制剂。通过使用合成底物模拟物文库,通过 LC-MS 分析研究了 GphF DH1 的反应过程、立体特异性和对非天然底物的耐受性。总之,这些研究确立了 GphF DH1 是一种具有双重功能的脱水酶/异构酶,可安装奇数到偶数的双键,并产生与 gephyronic 酸异丁烯基末端一致的产物。该研究还揭示了在催化周转过程中与天然底物的意想不到的 C2 差向异构酶功能。GphF DH1 的 1.55-Å 晶体结构指导了突变实验,以阐明在多步 DH1 催化中关键氨基酸的作用,确定了亮氨酸和酪氨酸侧链的关键功能。突变结果应用于在第一个成功的 PKS DH 功能获得工程中为非异构化 DH 添加次要异构酶功能。我们对 GphF DH1 催化的研究强调了 DH 活性位点的多功能性和对特定催化结果与特定底物的适应性。

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