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调查蜡酯合成酶的底物结合口袋。

Canvasing the Substrate-Binding Pockets of the Wax Ester Synthase.

机构信息

Department of Bioproducts and Biosystems Engineering, University of Minnesota, St. Paul, Minnesota 55108, United States.

BioTechnology Institute, University of Minnesota, St. Paul, Minnesota 55108, United States.

出版信息

Biochemistry. 2022 May 17;61(10):922-932. doi: 10.1021/acs.biochem.2c00076. Epub 2022 May 4.

Abstract

The biosynthesis of wax esters and triglycerides in bacteria is accomplished through the action of the wax ester synthase/acyl-coenzyme A:diacylglycerol acyltransferase (WS/DGAT or wax ester synthase). A hallmark of these enzymes is the broad substrate profile that accepts alcohols, diglycerides, and fatty acyl-CoAs of various carbon chain lengths and degrees of branching. These enzymes have a broad biotechnological potential due to their role in producing high-value lipids or simple fuels similar to biodiesel through biosynthetic routes. Recently, a crystal structure was solved for the wax ester synthase from VT8 (Maqu_0168), providing a much clearer picture of the architecture of this enzyme and enabling a more precise analysis of the important structural features of the protein. In this work, we used the structure to canvas amino acids lining the proposed substrate-binding pockets and tested the effects of exchanging specific residues on the substrate profiles. We also developed an approach to better probe the residues that alter fatty acyl-CoA selectivity, which has proven more difficult to investigate. Our findings provide an improved blueprint for future efforts to understand how these enzymes position substrates for catalysis and to tailor or improve these enzymes in future biosynthetic schemes.

摘要

细菌中蜡酯和三酰基甘油的生物合成是通过蜡酯合酶/酰基辅酶 A:二酰基甘油酰基转移酶(WS/DGAT 或蜡酯合酶)的作用来完成的。这些酶的一个特点是具有广泛的底物谱,能够接受各种碳链长度和支化程度的醇、二酰基甘油和脂肪酸辅酶 A。由于这些酶在通过生物合成途径生产高价值脂质或类似于生物柴油的简单燃料方面的作用,它们具有广泛的生物技术潜力。最近,解决了来自 VT8(Maqu_0168)的蜡酯合酶的晶体结构,为该酶的结构提供了更清晰的图像,并能够更精确地分析该蛋白质的重要结构特征。在这项工作中,我们使用该结构来研究排列在假定的底物结合口袋中的氨基酸,并测试交换特定残基对底物谱的影响。我们还开发了一种方法来更好地探测改变脂肪酸辅酶 A 选择性的残基,这一过程证明更难以研究。我们的研究结果为未来理解这些酶如何为催化定位底物以及在未来的生物合成方案中调整或改进这些酶提供了一个更好的蓝图。

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