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Molecular characterization of Itp3 and Itp4, essential for C24-branched chain sterol-side-chain degradation in Rhodococcus rhodochrous DSM 43269

机译:Itp3和Itp4的分子表征,对杜鹃红球菌DSM 43269的C24支链固醇侧链降解至关重要

摘要

A previously identified sterol catabolic gene cluster is widely dispersed among actinobacteria, enabling them to degrade and grow on naturally occurring sterols. We investigated the physiological roles of various genes by targeted inactivation in mutant RG32 of Rhodococcus rhodochrous, which selectively degrades sterol side-chains. The Itp3 and Itp4 deletion mutants were each completely blocked in side-chain degradation of beta-sitosterol and campesterol, but not of cholesterol. These results indicated a role for Itp3 and Itp4 in the removal of C24 branches specifically. Bioinformatic analysis of the encoded Ltp3 and Ltp4 proteins revealed relatively high similarity to thiolase enzymes, typically involved in beta-oxidation, but the catalytic residues characteristic for thiolase enzymes are not conserved in their amino acid sequences. Removal of the C24-branched side-chain carbons of beta-sitosterol was previously shown to proceed via aldolytic cleavage rather than by beta-oxidation. Our results therefore suggest that Itp3 and Itp4 probably encode aldol-lyases rather than thiolases. This is the first report, to our knowledge, on the molecular characterization of genes with specific and essential roles in carbon-carbon bond cleavage of C24-branched chain sterols in Rhodococcus strains, most likely acting as aldol-lyases. The results are a clear contribution to our understanding of sterol degradation in actinobacteria.
机译:先前确定的固醇分解代谢基因簇广泛分布于放线菌中,使它们能够在天然固醇上降解并生长。我们通过有针对性的灭活了红球红球菌RG32突变体RG32中的各种基因的生理作用,这选择性地降解了固醇侧链。 Itp3和Itp4缺失突变体分别在β-谷固醇和菜油甾醇的侧链降解中被完全阻断,但在胆固醇中没有被完全阻断。这些结果表明,Itp3和Itp4在清除C24分支方面特别起作用。编码的Ltp3和Ltp4蛋白的生物信息学分析表明,它与通常参与β-氧化反应的硫解酶相对较高的相似性,但是硫解酶的催化残基在其氨基酸序列中并不保守。先前显示,β-谷甾醇的C24支链侧链碳的去除是通过醛基裂解而不是通过β-氧化来进行的。因此,我们的结果表明Itp3和Itp4可能编码醛缩酶,而不是硫解酶。据我们所知,这是关于在红球菌菌株中C24支链固醇的碳-碳键裂解中具有特定和必要作用的基因的分子表征的第一份报告,该菌株最有可能充当醛醇裂解酶。结果对我们对放线菌中固醇降解的理解做出了明显贡献。

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