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新型双组分系统 XygS/XygR 正向调控瘤胃拟杆菌木聚糖降解、导入和分解代谢。

A Novel Two-Component System, XygS/XygR, Positively Regulates Xyloglucan Degradation, Import, and Catabolism in Ruminiclostridium cellulolyticum.

机构信息

Aix-Marseille Université, CNRS, UMR7283, Marseille, France.

Aix-Marseille Université, CNRS, IMM, Marseille, France.

出版信息

Appl Environ Microbiol. 2020 Oct 1;86(20). doi: 10.1128/AEM.01357-20.

Abstract

Cellulolytic microorganisms play a key role in the global carbon cycle by decomposing structurally diverse plant biopolymers from dead plant matter. These microorganisms, in particular anaerobes such as that are capable of degrading and catabolizing several different polysaccharides, require a fine-tuned regulation of the biosynthesis of their polysaccharide-degrading enzymes. In this study, we present a bacterial regulatory system involved in the regulation of genes enabling the metabolism of the ubiquitous plant polysaccharide xyloglucan. The characterization of knockout mutants suggests that the response regulator XygR and its cognate histidine kinase XygS are essential for growth on xyloglucan. Using and analyses, we show that XygR binds to the intergenic region and activates the expression of two polycistronic transcriptional units encoding an ABC transporter dedicated to the uptake of xyloglucan oligosaccharides and the two-component system itself together with three intracellular glycoside hydrolases responsible for the sequential intracellular degradation of the imported oligosaccharides into mono- and disaccharides. Interestingly, XygR also upregulates the expression of a distant gene coding for the most active extracellular cellulosomal xyloglucanase of by binding to the upstream intergenic region. is a Gram-positive, mesophilic, anaerobic, cellulolytic, and hemicellulolytic bacterium. The last property qualifies this species as a model species for the study of hemicellulose degradation, import of degradation products, and overall regulation of these phenomena. In this study, we focus on the regulation of xyloglucan dextrin import and intracellular degradation and show that the two components of the two-component regulation system XygSR are essential for growth on xyloglucan and that the response regulator XygR regulates the transcription of genes involved in the extracellular degradation of the polysaccharide, the import of degradation products, and their intracellular degradation.

摘要

纤维素分解微生物通过分解来自死植物物质的结构多样的植物生物聚合物在全球碳循环中起着关键作用。这些微生物,特别是能够降解和分解几种不同多糖的厌氧菌,如 ,需要精细调节其多糖降解酶的生物合成。在这项研究中,我们介绍了一个参与调节基因的细菌调节系统,这些基因使普遍存在的植物多糖木葡聚糖的代谢成为可能。 敲除突变体的特征表明,响应调节剂 XygR 和其同源组氨酸激酶 XygS 对于木葡聚糖的生长是必不可少的。使用 和 分析,我们表明 XygR 结合到基因间区并激活两个多顺反子转录单元的表达,该转录单元编码一个 ABC 转运蛋白,专门用于摄取木葡聚糖低聚糖,以及该两元件系统本身以及负责将导入的低聚糖顺序降解为单糖和二糖的三个细胞内糖苷水解酶。有趣的是,XygR 还通过结合到上游基因间区上调编码最活跃的细胞外纤维小体木葡聚糖酶 的远基因的表达。 是一种革兰氏阳性、嗜温、厌氧、纤维素分解和半纤维素分解细菌。最后一个特性使该物种成为研究半纤维素降解、降解产物的导入以及这些现象的整体调控的模式物种。在这项研究中,我们专注于木葡聚糖糊精导入和细胞内降解的调节,并表明双组分调节系统 XygSR 的两个组成部分对于木葡聚糖的生长是必不可少的,并且响应调节剂 XygR 调节涉及多糖的细胞外降解、降解产物的导入及其细胞内降解的基因的转录。

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