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聚酮类似物为非还原性聚酮合酶产物模板结构域功能提供了结构和机制方面的见解。

Polyketide mimetics yield structural and mechanistic insights into product template domain function in nonreducing polyketide synthases.

机构信息

Departments of Molecular Biology and Biochemistry, Chemistry, and Pharmaceutical Sciences, University of California, Irvine, CA 92697.

Department of Chemistry and Biochemistry, University of California, San Diego, La Jolla, CA 92093.

出版信息

Proc Natl Acad Sci U S A. 2017 May 23;114(21):E4142-E4148. doi: 10.1073/pnas.1609001114. Epub 2017 May 8.

Abstract

Product template (PT) domains from fungal nonreducing polyketide synthases (NR-PKSs) are responsible for controlling the aldol cyclizations of poly-β-ketone intermediates assembled during the catalytic cycle. Our ability to understand the high regioselective control that PT domains exert is hindered by the inaccessibility of intrinsically unstable poly-β-ketones for in vitro studies. We describe here the crystallographic application of "atom replacement" mimetics in which isoxazole rings linked by thioethers mimic the alternating sites of carbonyls in the poly-β-ketone intermediates. We report the 1.8-Å cocrystal structure of the PksA PT domain from aflatoxin biosynthesis with a heptaketide mimetic tethered to a stably modified 4'-phosphopantetheine, which provides important empirical evidence for a previously proposed mechanism of PT-catalyzed cyclization. Key observations support the proposed deprotonation at C4 of the nascent polyketide by the catalytic His1345 and the role of a protein-coordinated water network to selectively activate the C9 carbonyl for nucleophilic addition. The importance of the 4'-phosphate at the distal end of the pantetheine arm is demonstrated to both facilitate delivery of the heptaketide mimetic deep into the PT active site and anchor one end of this linear array to precisely meter C4 into close proximity to the catalytic His1345. Additional structural features, docking simulations, and mutational experiments characterize protein-substrate mimic interactions, which likely play roles in orienting and stabilizing interactions during the native multistep catalytic cycle. These findings afford a view of a polyketide "atom-replaced" mimetic in a NR-PKS active site that could prove general for other PKS domains.

摘要

真菌非还原型聚酮合酶 (NR-PKS) 的产物模板 (PT) 结构域负责控制催化循环中组装的多-β-酮中间体的醛醇环化。由于内在不稳定的多-β-酮难以进行体外研究,我们对 PT 结构域施加的高区域选择性控制的理解能力受到了阻碍。我们在这里描述了“原子替换”模拟物在晶体学中的应用,其中通过硫醚连接的异噁唑环模拟了多-β-酮中间体中羰基的交替位置。我们报告了来自黄曲霉毒素生物合成的 PksA PT 结构域与稳定修饰的 4'-磷酸泛酰巯基乙胺连接的庚酮模拟物的 1.8-Å 共晶结构,这为先前提出的 PT 催化环化机制提供了重要的经验证据。关键观察结果支持了由催化 His1345 对新生聚酮 C4 进行去质子化的提议,以及蛋白质协调的水分子网络选择性激活 C9 羰基进行亲核加成的作用。证明了泛酰巯基乙胺臂远端 4'-磷酸的重要性,它既促进了庚酮模拟物深入到 PT 活性位点的传递,又将线性阵列的一端锚定,使 C4 精确地靠近催化 His1345。附加的结构特征、对接模拟和突变实验表征了蛋白质-底物模拟物的相互作用,这些相互作用可能在定向和稳定天然多步催化循环中的相互作用中发挥作用。这些发现提供了一种在 NR-PKS 活性位点中对多酮“原子替换”模拟物的看法,这可能对其他 PKS 结构域具有普遍性。

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