Suppr超能文献

靶向合成和鉴定来源于肠道宏基因组序列 Eggerthella CAG:298 的编码 NAD(P)H 依赖的 3α-, 3β-, 和 12α-羟甾醇脱氢酶的基因簇

Targeted Synthesis and Characterization of a Gene Cluster Encoding NAD(P)H-Dependent 3α-, 3β-, and 12α-Hydroxysteroid Dehydrogenases from Eggerthella CAG:298, a Gut Metagenomic Sequence.

机构信息

Microbiome Metabolic Engineering Theme, Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.

Department of Animal Sciences, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.

出版信息

Appl Environ Microbiol. 2018 Mar 19;84(7). doi: 10.1128/AEM.02475-17. Print 2018 Apr 1.

Abstract

Gut metagenomic sequences provide a rich source of microbial genes, the majority of which are annotated by homology or unknown. Genes and gene pathways that encode enzymes catalyzing biotransformation of host bile acids are important to identify in gut metagenomic sequences due to the importance of bile acids in gut microbiome structure and host physiology. Hydroxysteroid dehydrogenases (HSDHs) are pyridine nucleotide-dependent enzymes with stereospecificity and regiospecificity for bile acid and steroid hydroxyl groups. HSDHs have been identified in several protein families, including medium-chain and short-chain dehydrogenase/reductase families as well as the aldo-keto reductase family. These protein families are large and contain diverse functionalities, making prediction of HSDH-encoding genes difficult and necessitating biochemical characterization. We located a gene cluster in sp. CAG:298 predicted to encode three HSDHs (CDD59473, CDD59474, and CDD59475) and synthesized the genes for heterologous expression in We then screened bile acid substrates against the purified recombinant enzymes. CDD59475 is a novel 12α-HSDH, and we determined that CDD59474 (3α-HSDH) and CDD59473 (3β-HSDH) constitute novel enzymes in an iso-bile acid pathway. Phylogenetic analysis of these HSDHs with other gut bacterial HSDHs and closest homologues in the database revealed predictable clustering of HSDHs by function and identified several likely HSDH sequences from bacteria isolated or sequenced from diverse mammalian and avian gut samples. Bacterial HSDHs have the potential to significantly alter the physicochemical properties of bile acids, with implications for increased/decreased toxicity for gut bacteria and the host. The generation of oxo-bile acids is known to inhibit host enzymes involved in glucocorticoid metabolism and may alter signaling through nuclear receptors such as farnesoid X receptor and G-protein-coupled receptor TGR5. Biochemical or similar approaches are required to fill in many gaps in our ability to link a particular enzymatic function with a nucleic acid or amino acid sequence. In this regard, we have identified a novel 12α-HSDH and a novel set of genes encoding an iso-bile acid pathway (3α-HSDH and 3β-HSDH) involved in epimerization and detoxification of harmful secondary bile acids.

摘要

肠道宏基因组序列为微生物基因提供了丰富的来源,其中大多数基因通过同源性或未知性进行注释。在肠道宏基因组序列中,由于胆汁酸在肠道微生物组结构和宿主生理学中的重要性,鉴定编码宿主胆汁酸生物转化的酶的基因和基因途径非常重要。羟甾酮脱氢酶(HSDHs)是吡啶核苷酸依赖性酶,对胆汁酸和类固醇羟基具有立体特异性和区域特异性。HSDHs 已在几个蛋白质家族中被鉴定出来,包括中链和短链脱氢酶/还原酶家族以及醛酮还原酶家族。这些蛋白质家族很大,包含多种功能,使得 HSDH 编码基因的预测变得困难,并需要生化表征。我们在 sp. CAG:298 中定位了一个基因簇,该基因簇预测编码三个 HSDHs(CDD59473、CDD59474 和 CDD59475),并合成了用于在 中异源表达的基因。然后,我们筛选了胆汁酸底物对纯化的重组酶的反应。CDD59475 是一种新型的 12α-HSDH,我们确定 CDD59474(3α-HSDH)和 CDD59473(3β-HSDH)构成了同型胆汁酸途径中的新型酶。这些 HSDHs 与其他肠道细菌 HSDHs 以及数据库中最接近的同源物的系统发育分析表明,HSDHs 按功能进行了可预测的聚类,并从不同哺乳动物和禽类肠道样本中分离或测序的细菌中鉴定出了几个可能的 HSDH 序列。肠道细菌 HSDHs 有可能显著改变胆汁酸的物理化学性质,这对肠道细菌和宿主的毒性增加/减少有影响。已知生成的氧代胆汁酸会抑制参与糖皮质激素代谢的宿主酶,并可能通过法尼醇 X 受体和 G 蛋白偶联受体 TGR5 等核受体改变信号传导。需要生化或类似的方法来填补我们将特定酶功能与核酸或氨基酸序列联系起来的能力中的许多空白。在这方面,我们已经确定了一种新型的 12α-HSDH 和一组新型基因,它们编码涉及有害次级胆汁酸消旋和解毒的同型胆汁酸途径(3α-HSDH 和 3β-HSDH)。

相似文献

3
Completion of the gut microbial epi-bile acid pathway.完成肠道微生物表胆汁酸途径。
Gut Microbes. 2021 Jan-Dec;13(1):1-20. doi: 10.1080/19490976.2021.1907271.

引用本文的文献

7
Another renaissance for bile acid gastrointestinal microbiology.胆汁酸胃肠微生物学的另一个复兴。
Nat Rev Gastroenterol Hepatol. 2024 May;21(5):348-364. doi: 10.1038/s41575-024-00896-2. Epub 2024 Feb 21.
10
Liver's influence on the brain through the action of bile acids.肝脏通过胆汁酸的作用对大脑产生影响。
Front Neurosci. 2023 Feb 2;17:1123967. doi: 10.3389/fnins.2023.1123967. eCollection 2023.

本文引用的文献

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验