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人类肠道解木聚糖拟杆菌XB1A(T)对木聚糖的降解涉及两个不同的基因簇,这两个基因簇在转录水平上相互关联。

Xylan degradation by the human gut Bacteroides xylanisolvens XB1A(T) involves two distinct gene clusters that are linked at the transcriptional level.

作者信息

Despres Jordane, Forano Evelyne, Lepercq Pascale, Comtet-Marre Sophie, Jubelin Gregory, Chambon Christophe, Yeoman Carl J, Berg Miller Margaret E, Fields Christopher J, Martens Eric, Terrapon Nicolas, Henrissat Bernard, White Bryan A, Mosoni Pascale

机构信息

Institut National de la recherche Agronomique (INRA), UR454 Microbiologie, Centre de Clermont-Ferrand-Theix, 63122, Saint-Genès-Champanelle, France.

INRA, Plate-forme d'Exploration du Métabolisme, 63122, Saint-Genès Champanelle, France.

出版信息

BMC Genomics. 2016 May 4;17:326. doi: 10.1186/s12864-016-2680-8.

Abstract

BACKGROUND

Plant cell wall (PCW) polysaccharides and especially xylans constitute an important part of human diet. Xylans are not degraded by human digestive enzymes in the upper digestive tract and therefore reach the colon where they are subjected to extensive degradation by some members of the symbiotic microbiota. Xylanolytic bacteria are the first degraders of these complex polysaccharides and they release breakdown products that can have beneficial effects on human health. In order to understand better how these bacteria metabolize xylans in the colon, this study was undertaken to investigate xylan breakdown by the prominent human gut symbiont Bacteroides xylanisolvens XB1A(T).

RESULTS

Transcriptomic analyses of B. xylanisolvens XB1A(T) grown on insoluble oat-spelt xylan (OSX) at mid- and late-log phases highlighted genes in a polysaccharide utilization locus (PUL), hereafter called PUL 43, and genes in a fragmentary remnant of another PUL, hereafter referred to as rPUL 70, which were highly overexpressed on OSX relative to glucose. Proteomic analyses supported the up-regulation of several genes belonging to PUL 43 and showed the important over-production of a CBM4-containing GH10 endo-xylanase. We also show that PUL 43 is organized in two operons and that the knockout of the PUL 43 sensor/regulator HTCS gene blocked the growth of the mutant on insoluble OSX and soluble wheat arabinoxylan (WAX). The mutation not only repressed gene expression in the PUL 43 operons but also repressed gene expression in rPUL 70.

CONCLUSION

This study shows that xylan degradation by B. xylanisolvens XB1A(T) is orchestrated by one PUL and one PUL remnant that are linked at the transcriptional level. Coupled to studies on other xylanolytic Bacteroides species, our data emphasize the importance of one peculiar CBM4-containing GH10 endo-xylanase in xylan breakdown and that this modular enzyme may be used as a functional marker of xylan degradation in the human gut. Our results also suggest that B. xylanisolvens XB1A(T) has specialized in the degradation of xylans of low complexity. This functional feature may provide a niche to all xylanolytic bacteria harboring similar PULs. Further functional and ecological studies on fibrolytic Bacteroides species are needed to better understand their role in dietary fiber degradation and their impact on intestinal health.

摘要

背景

植物细胞壁(PCW)多糖,尤其是木聚糖,是人类饮食的重要组成部分。木聚糖在上消化道中不会被人类消化酶降解,因此会到达结肠,在那里它们会被共生微生物群的一些成员大量降解。木聚糖分解菌是这些复杂多糖的首批降解者,它们释放的分解产物可能对人类健康有益。为了更好地了解这些细菌如何在结肠中代谢木聚糖,本研究旨在调查人类肠道重要共生菌解木聚糖拟杆菌XB1A(T)对木聚糖的分解情况。

结果

对在对数中期和后期以不溶性燕麦-斯佩尔特木聚糖(OSX)为生长底物的解木聚糖拟杆菌XB1A(T)进行转录组分析,结果突出显示了多糖利用位点(PUL)(以下称为PUL 43)中的基因,以及另一个PUL的片段残余(以下称为rPUL 70)中的基因,相对于葡萄糖,这些基因在OSX上高度过表达。蛋白质组分析支持了属于PUL 43的几个基因的上调,并显示了一种含CBM4的GH10内切木聚糖酶的大量过量产生。我们还表明,PUL 43由两个操纵子组成,并且PUL 43传感器/调节基因HTCS的敲除阻断了突变体在不溶性OSX和可溶性小麦阿拉伯木聚糖(WAX)上的生长。该突变不仅抑制了PUL 43操纵子中的基因表达,还抑制了rPUL 70中的基因表达。

结论

本研究表明,解木聚糖拟杆菌XB1A(T)对木聚糖的降解是由一个在转录水平上相连的PUL和一个PUL残余物协调完成的。结合对其他木聚糖分解拟杆菌物种的研究,我们的数据强调了一种特殊的含CBM4的GH10内切木聚糖酶在木聚糖分解中的重要性,并且这种模块化酶可用作人类肠道中木聚糖降解的功能标记。我们的结果还表明,解木聚糖拟杆菌XB1A(T)专门用于降解低复杂性的木聚糖。这一功能特性可能为所有具有相似PUL的木聚糖分解菌提供一个生态位。需要对纤维分解拟杆菌物种进行进一步的功能和生态学研究,以更好地了解它们在膳食纤维降解中的作用及其对肠道健康的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf2d/4855328/ea727728e8cc/12864_2016_2680_Fig1_HTML.jpg

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