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一种未培养的人肠道菌株利用木低聚糖相关的非结合 SusD 样蛋白的结构和生化特性。

Structural and Biochemical Characterization of a Nonbinding SusD-Like Protein Involved in Xylooligosaccharide Utilization by an Uncultured Human Gut Strain.

机构信息

TBI, CNRS, INRAE, INSAT, Université de Toulouse, Toulouse, France.

ALBA Synchrotron Light Source, Barcelona, Spain.

出版信息

mSphere. 2022 Oct 26;7(5):e0024422. doi: 10.1128/msphere.00244-22. Epub 2022 Aug 31.

Abstract

In the human gut microbiota, break down dietary and endogenous glycosides through highly specific polysaccharide utilization loci (PULs). PULs encode a variety of sensor regulators, binding proteins, transporters, and carbohydrate-active enzymes (CAZymes). Surface glycan-binding proteins (SGBPs) are essential for the efficient capture of the glycosides present on the cell surface, providing with a competitive advantage in colonizing their habitats. Here, we present the functional and structural characterization of a SusD-like protein encoded by a xylooligosaccharide (XOS) PUL from an uncultured human gut strain. This locus is also conserved in Bacteroides vulgatus, thereby providing new mechanistic insights into the role of SGBPs in the metabolism of dietary fiber of importance for gut health. Various analyses, including saturation transfer difference nuclear magnetic resonance (STD-NMR) spectroscopy, revealed that the SusD-like protein cannot bind to the cognate substrate of the XOS PUL, although its presence is essential for the PUL to function. Analysis of the crystal structure of the SusD-like protein reveals an unfolded binding surface and the absence or inappropriate orientation of several key residues compared with other known SusD-like structures. These results highlight the critical role of the SusD-like protein in the transport of oligosaccharides and provide fundamental knowledge about the structure-function of SusC/D-like transporters, revealing that the binding specificity of SusD-like SGBPs does not necessarily reflect the uptake specificity of the transporter. The metabolization of dietary fiber is a crucial function for many gut bacteria, especially , which are particularly well adapted for recognizing, binding, transporting, and degrading glycosides. In this study, we report the functional and structural characterization of a SusD-like protein involved in xylooligosaccharide utilization by an uncultured gut strain. We demonstrate that while this protein is structurally similar to many canonical surface glycan-binding proteins, it cannot bind the substrate taken up by the cognate SusC-like transporter. This lack of binding might be explained by the absence of several key residues known to be involved in oligosaccharide binding and/or the possible necessity of the SusC-like protein to be present to create a cooperative binding site. The term "surface glycan-binding proteins" generally used for SusD-like proteins is thus not generic. Overall, this study allowed us to revisit the concept of glycoside utilization by , in particular those strains that feed on the short fibers naturally present in some dietary compounds or on the leftovers of other microbes.

摘要

在人类肠道微生物群中,通过高度特异性的多糖利用基因座(PULs)分解膳食和内源性糖苷。PULs 编码各种传感器调节剂、结合蛋白、转运蛋白和碳水化合物活性酶(CAZymes)。表面糖结合蛋白(SGBPs)对于有效捕获细胞表面上存在的糖苷至关重要,为其在栖息地定殖提供了竞争优势。在这里,我们介绍了一种未培养的人类肠道 菌株的木寡糖(XOS)PUL 编码的 SusD 样蛋白的功能和结构特征。该基因座也在 Bacteroides vulgatus 中保守,从而为 SGBPs 在膳食纤维代谢中的作用提供了新的机制见解,膳食纤维对肠道健康很重要。各种 分析,包括饱和转移差核磁共振(STD-NMR)光谱分析,表明虽然 SusD 样蛋白的存在对于 PUL 发挥功能是必不可少的,但它不能结合 XOS PUL 的同源底物。对 SusD 样蛋白晶体结构的分析表明,与其他已知的 SusD 样结构相比,它具有未折叠的结合表面和几个关键残基的缺失或不当取向。这些结果突出了 SusD 样蛋白在寡糖转运中的关键作用,并提供了有关 SusC/D 样转运蛋白结构-功能的基本知识,表明 SusD 样 SGBPs 的结合特异性不一定反映转运蛋白的摄取特异性。膳食纤维的代谢是许多肠道细菌的关键功能,尤其是 ,它们特别适合识别、结合、运输和降解糖苷。在这项研究中,我们报告了一种涉及未培养肠道 菌株木寡糖利用的 SusD 样蛋白的功能和结构特征。我们证明,虽然该蛋白在结构上与许多典型的 表面糖结合蛋白相似,但它不能结合同源 SusC 样转运蛋白摄取的底物。这种缺乏结合可能是由于缺乏几个已知参与寡糖结合的关键残基和/或可能需要 SusC 样蛋白存在以创建协同结合位点来解释的。因此,通常用于 SusD 样蛋白的“表面糖结合蛋白”一词并不是通用的。总体而言,这项研究使我们能够重新审视 ,特别是那些以某些膳食化合物中天然存在的短纤维或其他微生物的残留物为食的菌株的糖苷利用概念。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4abf/9599597/e57daf39162c/msphere.00244-22-f002.jpg

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