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II 型脂肪酸生物合成酶和硫解酶的组合支持功能性β-氧化逆转。

Combination of type II fatty acid biosynthesis enzymes and thiolases supports a functional β-oxidation reversal.

机构信息

Department of Chemical and Biomolecular Engineering, Rice University, 6100 Main St, Houston, TX 77005, USA.

Department of Chemistry, University of California Davis, One Shields Avenue, Davis, CA 95616, USA; Genome Center, University of California Davis, One Shields Avenue, Davis, CA 95616, USA.

出版信息

Metab Eng. 2018 Jan;45:11-19. doi: 10.1016/j.ymben.2017.11.003. Epub 2017 Nov 13.

Abstract

An engineered reversal of the β-oxidation cycle (r-BOX) and the fatty acid biosynthesis (FAB) pathway are promising biological platforms for advanced fuel and chemical production in part due to their iterative nature supporting the synthesis of various chain length products. While diverging in their carbon-carbon elongation reaction mechanism, iterative operation of each pathway relies on common chemical conversions (reduction, dehydration, and reduction) differing only in the attached moiety (acyl carrier protein (ACP) in FAB vs Coenzyme A in r-BOX). Given this similarity, we sought to determine whether FAB enzymes can be used in the context of r-BOX as a means of expanding available r-BOX components with a ubiquitous set of well characterized enzymes. Using enzymes from the type II FAB pathway (FabG, FabZ, and FabI) in conjunction with a thiolase catalyzing a non-decarboxylative condensation, we demonstrate that FAB enzymes support a functional r-BOX. Pathway operation with FAB enzymes was improved through computationally directed protein design to develop FabZ variants with amino acid substitutions designed to disrupt hydrogen bonding at the FabZ-ACP interface and introduce steric and electrostatic repulsion between the FabZ and ACP. FabZ with R126W and R121E substitutions resulted in improved carboxylic acid and alcohol production from one- and multiple-turn r-BOX compared to the wild-type enzyme. Furthermore, the ability for FAB enzymes to operate on functionalized intermediates was exploited to produce branched chain carboxylic acids through an r-BOX with functionalized priming. These results not only provide an expanded set of enzymes within the modular r-BOX pathway, but can also potentially expand the scope of products targeted through this pathway by operating with CoA intermediates containing various functional groups.

摘要

一种工程化的β-氧化循环(r-BOX)和脂肪酸生物合成(FAB)途径的逆转,由于其迭代性质支持各种链长产物的合成,因此是先进燃料和化学品生产的有前途的生物平台。虽然它们的碳-碳延长反应机制不同,但每个途径的迭代操作都依赖于常见的化学转化(还原、脱水和还原),不同之处仅在于附着的部分(FAB 中的酰基载体蛋白(ACP)与 r-BOX 中的辅酶 A)。鉴于这种相似性,我们试图确定 FAB 酶是否可以在 r-BOX 的背景下作为一种手段,用一组普遍存在的、特征良好的酶来扩展可用的 r-BOX 组件。使用来自 II 型 FAB 途径的酶(FabG、FabZ 和 FabI)以及一种催化非脱羧缩合的硫酯酶,我们证明 FAB 酶支持功能性 r-BOX。通过计算指导的蛋白质设计改进了途径操作,以开发具有氨基酸取代的 FabZ 变体,这些取代旨在破坏 FabZ-ACP 界面处的氢键,并在 FabZ 和 ACP 之间引入空间和静电排斥。与野生型酶相比,具有 R126W 和 R121E 取代的 FabZ 导致从单轮和多轮 r-BOX 产生更多的羧酸和醇。此外,利用 FAB 酶对功能化中间体的作用能力,通过具有功能化引发的 r-BOX 生产支链羧酸。这些结果不仅在模块化 r-BOX 途径中提供了一组扩展的酶,而且还可以通过与含有各种官能团的 CoA 中间体一起操作,潜在地扩展通过该途径靶向的产物范围。

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