双酚a介导的双酚F降解在假单胞菌和放线菌中的广泛分布。

Mingliang Zhang,Changchang Wang,Yanni Huang,Qian Li,Junqiang Hu,Kaihua Pan,Qian Zhu,Wankui Jiang,Jiguo Qiu,Xin Yan,Qing Hong
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引用次数: 0

摘要

双酚F是一种广泛用于生产聚碳酸酯和环氧树脂的主要原料,在环境中经常被检测到,并对生态系统和人类健康构成重大风险。微生物在自然环境下双酚F的降解中起着重要作用;然而,涉及的遗传决定因素仍然未知。本研究从Microbacterium sp.菌株F2中鉴定出一种黄蛋白氧化酶BpfA,该酶负责双酚F降解的关键步骤,包括通过三个连续反应将其转化为4,4'-二羟基二苯甲酮。双酚a在系统发育上属于香草醇氧化酶/对甲酚甲基羟化酶黄蛋白家族的4-酚氧化亚家族。该亚家族的3个同源物均与双酚F酶同源性超过35.0%,且均具有降解双酚F的活性,但双酚a对双酚F的催化效率(508.1 mM-1 s-1)显著高于香草醇氧化酶(0.2 mM-1 s-1)、丁香酚氧化酶(0.2 mM-1 s-1)和黄蛋白氧化酶(0.3 mM-1 s-1)。结构分析表明,较强的活性位点疏水性可能是催化效率高的原因。基于生物信息学的分类分析表明,携带双酚a的候选双酚F降解物主要属于假单胞菌门和放线菌门,主要存在于耕地和森林的宏基因组中。本研究阐明了双酚a的功能和分布规律,增加了我们对环境中微生物双酚F降解的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Widespread distribution of BpfA-mediated bisphenol F degradation among members of the Pseudomonadota and Actinomycetota.
Bisphenol F, a widely used primary raw material in the production of polycarbonate and epoxy resins, is frequently detected in the environment and poses significant risks to ecosystems and human health. Microorganisms play an important role in bisphenol F degradation in the natural environment; however, the genetic determinants involved remain unknown. A flavoprotein oxidase BpfA from Microbacterium sp. strain F2 was identified in this study, which is responsible for the crucial steps of bisphenol F degradation involving its conversion to 4,4'-dihydroxybenzophenone through three consecutive reactions. BpfA phylogenetically clusters within the 4-phenol oxidizing subfamily of the vanillyl alcohol oxidase/para-cresol methylhydroxylase flavoprotein family. Three homologs in this subfamily-vanillyl alcohol oxidase, eugenol oxidase, and flavoprotein oxidase-shared over 35.0% identity with BpfA and demonstrated bisphenol F-degrading activity, yet the catalytic efficiency of BpfA against bisphenol F (508.1 mM-1 s-1) was significantly higher than that of vanillyl alcohol oxidase (0.2 mM-1 s-1), eugenol oxidase (0.2 mM-1 s-1), and flavoprotein oxidase (0.3 mM-1 s-1). Structural analysis indicated that strong active site hydrophobicity was likely the reason for this high catalytic efficiency. Bioinformatics-based taxonomic profiling revealed that candidate bisphenol F degraders carrying bpfA mainly belonged to the Pseudomonadota and Actinomycetota phyla, and were predominantly found in metagenomes from cultivated land and forests. This study elucidated the function and distribution pattern of bpfA, enhancing our understanding of microbial bisphenol F degradation in the environment.
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