INRA, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR441, F-31326, Castanet-Tolosan, France.
CNRS, Laboratoire des Interactions Plantes-Microorganismes (LIPM), UMR2594, F-31326, Castanet-Tolosan, France.
New Phytol. 2013 May;198(3):899-915. doi: 10.1111/nph.12187. Epub 2013 Feb 27.
Xylan is a major structural component of plant cell wall and the second most abundant plant polysaccharide in nature. Here, by combining genomic and functional analyses, we provide a comprehensive picture of xylan utilization by Xanthomonas campestris pv campestris (Xcc) and highlight its role in the adaptation of this epiphytic phytopathogen to the phyllosphere. The xylanolytic activity of Xcc depends on xylan-deconstruction enzymes but also on transporters, including two TonB-dependent outer membrane transporters (TBDTs) which belong to operons necessary for efficient growth in the presence of xylo-oligosaccharides and for optimal survival on plant leaves. Genes of this xylan utilization system are specifically induced by xylo-oligosaccharides and repressed by a LacI-family regulator named XylR. Part of the xylanolytic machinery of Xcc, including TBDT genes, displays a high degree of conservation with the xylose-regulon of the oligotrophic aquatic bacterium Caulobacter crescentus. Moreover, it shares common features, including the presence of TBDTs, with the xylan utilization systems of Bacteroides ovatus and Prevotella bryantii, two gut symbionts. These similarities and our results support an important role for TBDTs and xylan utilization systems for bacterial adaptation in the phyllosphere, oligotrophic environments and animal guts.
木聚糖是植物细胞壁的主要结构成分,也是自然界中第二丰富的植物多糖。在这里,我们通过结合基因组和功能分析,提供了黄单胞菌(Xanthomonas campestris pv campestris,Xcc)利用木聚糖的综合图景,并强调了其在这种附生植物病原菌适应叶际环境中的作用。Xcc 的木聚糖降解活性依赖于木聚糖降解酶,但也依赖于转运蛋白,包括两种依赖 TonB 的外膜转运蛋白(TBDT),它们属于在含有木二糖寡糖的情况下有效生长和在植物叶片上最佳生存所必需的操纵子。这个木聚糖利用系统的基因被木二糖寡糖特异性诱导,被一种名为 XylR 的 LacI 家族调节剂抑制。Xcc 的部分木聚糖降解机制,包括 TBDT 基因,与寡营养水生细菌新月柄杆菌(Caulobacter crescentus)的木糖调控子具有高度的同源性。此外,它与 Bacteroides ovatus 和 Prevotella bryantii 的木聚糖利用系统共享共同的特征,包括 TBDTs,这两个系统是肠道共生菌。这些相似性和我们的结果支持 TBDTs 和木聚糖利用系统在叶际、寡营养环境和动物肠道中对细菌适应的重要作用。