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Trapping of Intermediates with Substrate Analog HBOCoA in the Polymerizations Catalyzed by Class III Polyhydroxybutyrate (PHB) Synthase from Allochromatium Vinosum

机译:Ⅲ类聚羟基丁酸(PHB)合酶催化的异源异色菌诱捕中间物与底物类似物HBOCoA

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摘要

Polyhydroxybutyrate (PHB) synthases (PhaCs) catalyze the formation of biodegradable PHB polymers that are considered as an ideal alternative to petroleum-based plastics. To provide strong evidence for the preferred mechanistic model involving covalent and noncovalent intermediates, a substrate analog HBOCoA was synthesized chemoenzymatically. Substitution of sulfur in the native substrate HBCoA with an oxygen in HBOCoA enabled detection of (HB)nOCoA (n = 2–6) intermediates when the polymerization was catalyzed by wild-type (wt-)PhaECAv at 5.84 hr−1. This extremely slow rate is due to thermodynamically unfavorable steps that involve formation of enzyme-bound PHB species (thioesters) from corresponding CoA oxoesters. Synthesized standards (HB)nOCoA (n = 2–3) were found to undergo both reacylation and hydrolysis catalyzed by the synthase. Distribution of the hydrolysis products highlights the importance of the penultimate ester group as previously suggested. Importantly, the reaction between primed synthase [3H]-sT-PhaECAv and HBOCoA yielded [3H]-sTet-O-CoA at a rate constant faster than 17.4 s−1, which represents the first example that a substrate analog undergoes PHB chain elongation at a rate close to that of the native substrate (65.0 s−1). Therefore, for the first time with a wt-synthase, strong evidence was obtained to support our favored PHB chain elongation model.
机译:聚羟基丁酸酯(PHB)合成酶(PhaCs)催化可生物降解的PHB聚合物的形成,这被认为是石油基塑料的理想替代品。为了为涉及共价和非共价中间体的优选机理模型提供强有力的证据,化学酶法合成了底物类似物HBOCoA。当野生型(wt-)PhaECAv在5.84 hrs-1催化聚合时,天然底物HBCoA中的硫被HBOCoA中的氧取代能检测(HB)nOCoA(n = 2-6)中间体。这种极慢的速度归因于热力学上不利的步骤,这些步骤涉及从相应的CoA含氧酸酯形成酶结合的PHB物质(硫酯)。已发现合成标准品(HB)nOCoA(n = 2–3)受到合成酶的催化再酰化和水解。水解产物的分布突出了如前所述的倒数第二个酯基的重要性。重要的是,引发的合酶[ 3 H] -sT-PhaECAv和HBOCoA之间的反应产生了[ 3 H] -sTet-O-CoA,其速率常数快于17.4 s -1 ,其代表底物类似物以接近天然底物的速率(65.0 s -1 )经历PHB链伸长的第一个例子。因此,首次使用wt合酶获得了强有力的证据来支持我们偏爱的PHB链延长模型。

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