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BaiJ和BaiB是肠道微生物ATCC 35704中鹅去氧胆酸7α-脱羟基化途径的关键酶。

BaiJ and BaiB are key enzymes in the chenodeoxycholic acid 7α-dehydroxylation pathway in the gut microbe ATCC 35704.

作者信息

Meibom Karin Lederballe, Marion Solenne, Volet Colin, Nass Théo, Vico-Oton Eduard, Menin Laure, Bernier-Latmani Rizlan

机构信息

Environmental Microbiology Laboratory, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

出版信息

Gut Microbes. 2024 Jan-Dec;16(1):2323233. doi: 10.1080/19490976.2024.2323233. Epub 2024 Mar 11.

DOI:10.1080/19490976.2024.2323233
PMID:38465624
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10936602/
Abstract

Bile acid transformation is a common gut microbiome activity that produces secondary bile acids, some of which are important for human health. One such process, 7α-dehydroxylation, converts the primary bile acids, cholic acid and chenodeoxycholic acid, to deoxycholic acid and lithocholic acid, respectively. This transformation requires a number of enzymes, generally encoded in a bile acid-inducible () operon and consists of multiple steps. Some 7α-dehydroxylating bacteria also harbor additional genes that encode enzymes with potential roles in this pathway, but little is known about their functions. Here, we purified 11 enzymes originating either from the operon or encoded at other locations in the genome of strain ATCC 35704. Enzyme activity was probed under anoxic conditions to characterize the biochemical pathway of chenodeoxycholic acid 7α-dehydroxylation. We found that more than one combination of enzymes can support the process and that a set of five enzymes, including BaiJ that is encoded outside the operon, is sufficient to achieve the transformation. We found that BaiJ, an oxidoreductase, exhibits an activity that is not harbored by the homologous enzyme from another strain. Furthermore, ligation of bile acids to coenzyme A (CoA) was shown to impact the product of the transformation. These results point to differences in the 7α-dehydroxylation pathway among microorganisms and the crucial role of CoA ligation in the process.

摘要

胆汁酸转化是肠道微生物群的一种常见活动,可产生次级胆汁酸,其中一些对人体健康很重要。其中一个过程,即7α-脱羟基作用,分别将初级胆汁酸胆酸和鹅去氧胆酸转化为脱氧胆酸和石胆酸。这种转化需要多种酶,这些酶通常由胆汁酸诱导型()操纵子编码,并且由多个步骤组成。一些7α-脱羟基细菌还含有额外的基因,这些基因编码在该途径中可能起作用的酶,但对它们的功能知之甚少。在这里,我们纯化了11种酶,它们要么来自操纵子,要么编码在菌株ATCC 35704基因组的其他位置。在缺氧条件下检测酶活性,以表征鹅去氧胆酸7α-脱羟基作用的生化途径。我们发现,不止一种酶组合可以支持这一过程,并且一组五种酶,包括操纵子外编码的BaiJ,足以实现这种转化。我们发现,氧化还原酶BaiJ表现出另一种菌株同源酶所没有的活性。此外,胆汁酸与辅酶A(CoA)的连接被证明会影响转化产物。这些结果表明微生物之间7α-脱羟基途径存在差异,以及CoA连接在该过程中的关键作用。

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本文引用的文献

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2
Bile acids and their receptors in regulation of gut health and diseases.胆汁酸及其受体在肠道健康与疾病调节中的作用
Prog Lipid Res. 2023 Jan;89:101210. doi: 10.1016/j.plipres.2022.101210. Epub 2022 Dec 25.
3
Formation of secondary allo-bile acids by novel enzymes from gut Firmicutes.肠道Firmicutes 新型酶形成次级胆汁酸。
Clostridium scindens: history and current outlook for a keystone species in the mammalian gut involved in bile acid and steroid metabolism.
斯氏梭菌:参与胆汁酸和类固醇代谢的哺乳动物肠道关键物种的历史与当前展望
FEMS Microbiol Rev. 2025 Jan 14;49. doi: 10.1093/femsre/fuaf016.
4
Pangenome Analysis of : A Collection of Diverse Bile Acid- and Steroid-Metabolizing Commensal Gut Bacterial Strains.不同胆汁酸和类固醇代谢共生肠道细菌菌株集合的泛基因组分析
Microorganisms. 2025 Apr 9;13(4):857. doi: 10.3390/microorganisms13040857.
5
Bile acids impact the microbiota, host, and dynamics providing insight into mechanisms of efficacy of FMTs and microbiota-focused therapeutics.胆汁酸影响微生物群、宿主和动态,为深入了解 FMT 和专注于微生物组的治疗方法的疗效机制提供了线索。
Gut Microbes. 2024 Jan-Dec;16(1):2393766. doi: 10.1080/19490976.2024.2393766. Epub 2024 Sep 3.
6
Strain-dependent induction of primary bile acid 7-dehydroxylation by cholic acid.胆酸依赖菌株诱导初级胆汁酸 7-脱羟化。
BMC Microbiol. 2024 Aug 1;24(1):286. doi: 10.1186/s12866-024-03433-y.
Gut Microbes. 2022 Jan-Dec;14(1):2132903. doi: 10.1080/19490976.2022.2132903.
4
A Novel Gene Alignment in sp. AM58-8 Produces 7-Dehydroxy-3β Bile Acids from Primary Bile Acids.新型基因在 sp. AM58-8 中的排列,使初级胆汁酸生成 7-脱氢-3β 胆汁酸。
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8
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J Lipid Res. 2020 Nov;61(11):1450-1463. doi: 10.1194/jlr.RA120001021. Epub 2020 Jul 13.
9
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10
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