Enzyme Catalyzed Formation of CoA Adducts of Fluorinated Hexanoic Acid Analogues using a Long-Chain acyl-CoA Synthetase from Gordonia sp. Strain NB4-1Y.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemistry Biochemistry Pub Date : 2024-09-03 Epub Date: 2024-08-17 DOI:10.1021/acs.biochem.4c00336
Robert G Mothersole, Mina K Mothersole, Hannah G Goddard, Jinxia Liu, Jonathan D Van Hamme
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Abstract

Per and polyfluoroalkyl substances (PFAS) are a large family of anthropogenic fluorinated chemicals of increasing environmental concern. Over recent years, numerous microbial communities have been found to be capable of metabolizing some polyfluoroalkyl substances, generating a range of low-molecular-weight PFAS metabolites. One proposed pathway for the microbial breakdown of fluorinated carboxylates includes β-oxidation, this pathway is initiated by the formation of a CoA adduct. However, until recently no PFAS-CoA adducts had been reported. In a previous study, we were able to use a bacterial medium-chain acyl-CoA synthetase (mACS) to form CoA adducts of fluorinated adducts of propanoic acid and pentanoic acid but were not able to detect any products of fluorinated hexanoic acid analogues. Herein, we expressed and purified a long-chain acyl-CoA synthetase (lACS) and a A461K variant of mACS from the soil bacterium Gordonia sp. strain NB4-1Y and performed an analysis of substrate scope and enzyme kinetics using fluorinated and nonfluorinated carboxylates. We determined that lACS can catalyze the formation of CoA adducts of 1:5 fluorotelomer carboxylic acid (FTCA), 2:4 FTCA and 3:3 FTCA, albeit with generally low turnover rates (<0.02 s-1) compared with the nonfluorinated hexanoic acid (5.39 s-1). In addition, the A461K variant was found to have an 8-fold increase in selectivity toward hexanoic acid compared with wild-type mACS, suggesting that Ala-461 has a mechanistic role in selectivity toward substrate chain length. This provides further evidence to validate the proposed activation step involving the formation of CoA adducts in the enzymatic breakdown of PFAS.

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利用戈登氏菌菌株 NB4-1Y 的长链酰基-CoA 合成酶催化氟化己酸类似物 CoA 加合物的形成。
全氟烷基和多氟烷基物质(PFAS)是一大类人为含氟化学品,其环境问题日益受到关注。近年来,人们发现许多微生物群落能够代谢某些多氟烷基物质,产生一系列低分子量的 PFAS 代谢物。微生物分解含氟羧酸盐的一个拟议途径包括 β-氧化,这一途径由 CoA 加合物的形成启动。然而,直到最近才有关于 PFAS-CoA 加合物的报道。在之前的一项研究中,我们利用细菌中链酰基-CoA 合成酶(mACS)形成了丙酸和戊酸氟化加合物的 CoA 加合物,但未能检测到任何氟化己酸类似物的产物。在此,我们表达并纯化了土壤细菌 Gordonia sp. 菌株 NB4-1Y 中的长链酰基-CoA 合成酶(lACS)和 mACS 的 A461K 变体,并使用含氟和不含氟的羧酸盐对底物范围和酶动力学进行了分析。我们确定,lACS 可以催化 1:5 氟代羧酸(FTCA)、2:4 FTCA 和 3:3 FTCA 的 CoA 加合物的形成,尽管与非氟代己酸(5.39 s-1)相比,lACS 的周转率(-1)普遍较低。此外,与野生型 mACS 相比,A461K 变体对己酸的选择性增加了 8 倍,这表明 Ala-461 对底物链长的选择性具有机理作用。这进一步证实了在全氟辛烷磺酸的酶解过程中涉及 CoA 加合物形成的活化步骤。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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