Tauzin Alexandra S, Laville Elisabeth, Xiao Yao, Nouaille Sébastien, Le Bourgeois Pascal, Heux Stéphanie, Portais Jean-Charles, Monsan Pierre, Martens Eric C, Potocki-Veronese Gabrielle, Bordes Florence
LISBP, CNRS, INRA, INSAT, Université de Toulouse, Toulouse, France.
TWB, INRA, Ramonville Saint-Agne, France.
Mol Microbiol. 2016 Nov;102(4):579-592. doi: 10.1111/mmi.13480. Epub 2016 Sep 14.
In prominent gut Bacteroides strains, sophisticated strategies have been evolved to achieve the complete degradation of dietary polysaccharides such as xylan, which is one of the major components of the plant cell wall. Polysaccharide Utilization Loci (PULs) consist of gene clusters encoding different proteins with a vast arsenal of functions, including carbohydrate binding, transport and hydrolysis. Transport is often attributed to TonB-dependent transporters, although major facilitator superfamily (MFS) transporters have also been identified in some PULs. However, until now, few of these transporters have been biochemically characterized. Here, we targeted a PUL-like system from an uncultivated Bacteroides species that is highly prevalent in the human gut metagenome. It encodes three glycoside-hydrolases specific for xylo-oligosaccharides, a SusC/SusD tandem homolog and a MFS transporter. We combined PUL rational engineering, metabolic and transcriptional analysis in Escherichia coli to functionally characterize this genomic locus. We demonstrated that the SusC and the MFS transporters are specific for internalization of linear xylo-oligosaccharides of polymerization degree up to 3 and 4 respectively. These results were strengthened by the study of growth dynamics and transcriptional analyses in response to XOS induction of the PUL in the native strain, Bacteroides vulgatus.
在著名的肠道拟杆菌菌株中,已经进化出复杂的策略来实现对膳食多糖(如木聚糖,它是植物细胞壁的主要成分之一)的完全降解。多糖利用位点(PULs)由编码具有多种功能的不同蛋白质的基因簇组成,这些功能包括碳水化合物结合、转运和水解。转运通常归因于依赖TonB的转运蛋白,尽管在一些PULs中也发现了主要促进剂超家族(MFS)转运蛋白。然而,到目前为止,这些转运蛋白中很少有经过生物化学表征的。在这里,我们针对一种未培养的拟杆菌物种中的一个类似PUL的系统,该物种在人类肠道宏基因组中高度普遍。它编码三种对木寡糖具有特异性的糖苷水解酶、一个SusC/SusD串联同源物和一个MFS转运蛋白。我们在大肠杆菌中结合PUL理性工程、代谢和转录分析,对这个基因组位点进行功能表征。我们证明,SusC和MFS转运蛋白分别对聚合度高达3和4的线性木寡糖的内化具有特异性。对原生菌株普通拟杆菌中PUL的XOS诱导的生长动力学和转录分析研究进一步证实了这些结果。