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Genome-Wide Transcriptome Profiling Provides Insight on Cholesterol and Lithocholate Degradation Mechanisms in

机译:基因组转录组分析提供了对胆固醇和锂化浓度降解机制的洞察力

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摘要

Steroid microbial degradation plays a significant ecological role for biomass decomposition and removal/detoxification of steroid pollutants. In this study, the initial steps of cholesterol degradation and lithocholate bioconversion by a strain with enhanced 3-ketosteroid dehydrogenase (3-KSD) activity, Nocardioides simplex VKM Ac-2033D, were studied. Biochemical, transcriptomic, and bioinformatic approaches were used. Among the intermediates of sterol sidechain oxidation cholest-5-en-26-oic acid and 3-oxo-cholesta-1,4-dien-26-oic acid were identified as those that have not been earlier reported for N. simplex and related species. The transcriptomic approach revealed candidate genes of cholesterol and lithocholic acid (LCA) catabolism by the strain. A separate set of genes combined in cluster and additional 3-ketosteroid Δ1-dehydrogenase and 3-ketosteroid 9α-hydroxylases that might be involved in LCA catabolism were predicted. Bioinformatic calculations based on transcriptomic data showed the existence of a previously unknown transcription factor, which regulates cholate catabolism gene orthologs. The results contribute to the knowledge on diversity of steroid catabolism regulation in actinobacteria and might be used at the engineering of microbial catalysts for ecological and industrial biotechnology.
机译:类固醇微生物降解对生物量分解和类固醇污染物的去除/解毒起着重要的生态作用。在本研究中,研究了具有增强的3-酮烷醇脱氢酶(3-KSD)活性,NocardioideSimpyx VKM AC-2033D的含有增强的3-酮烷醇脱氢酶(3-KSD)活性菌株的胆固醇降解和锂化致氯化物生物转化的初始步骤。使用生物化学,转录组和生物信息化方法。在甾醇侧链氧化胆气最胆固-5-烯-26-甲酸和3-氧代胆汁脂肪酸-1,4-DIEN-26-OIC酸的中间体被鉴定为尚未提前报告的N.Piftx和相关的那些物种。转录组种方法揭示了菌株胆固醇和锂色敏(LCA)分解代谢的候选基因。预计在簇中组合的单独基因和可以参与LCA分解代谢的3-酮类甾体醇δ1-脱氢酶和3-酮类固醇9α-羟基酶。基于转录组数据的生物信息计算显示出存在先前未知的转录因子,其调节胆酸盐分解代谢基因原序。结果有助于对肌肌肌科的类固醇分解代谢调控的多样性知识有助于对生态工业生物技术的微生物催化剂的工程中使用。

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