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Proteins Exported via the PrsD-PrsE Type I Secretion System and the Acidic Exopolysaccharide Are Involved in Biofilm Formation by Rhizobium leguminosarum

机译:通过PrsD-PrsE I型分泌系统和酸性胞外多糖输出的蛋白质参与豆科根瘤菌生物膜的形成。

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摘要

The type I protein secretion system of Rhizobium leguminosarum bv. viciae encoded by the prsD and prsE genes is responsible for secretion of the exopolysaccharide (EPS)-glycanases PlyA and PlyB. The formation of a ring of biofilm on the surface of the glass in shaken cultures by both the prsD and prsE secretion mutants was greatly affected. Confocal laser scanning microscopy analysis of green-fluorescent-protein-labeled bacteria showed that during growth in minimal medium, R. leguminosarum wild type developed microcolonies, which progress to a characteristic three-dimensional biofilm structure. However, the prsD and prsE secretion mutants were able to form only an immature biofilm structure. A mutant disrupted in the EPS-glycanase plyB gene showed altered timing of biofilm formation, and its structure was atypical. A mutation in an essential gene for EPS synthesis (pssA) or deletion of several other pss genes involved in EPS synthesis completely abolished the ability of R. leguminosarum to develop a biofilm. Extracellular complementation studies of mixed bacterial cultures confirmed the role of the EPS and the modulation of the biofilm structure by the PrsD-PrsE secreted proteins. Protein analysis identified several additional proteins secreted by the PrsD-PrsE secretion system, and N-terminal sequencing revealed peptides homologous to the N termini of proteins from the Rap family (Rhizobium adhering proteins), which could have roles in cellular adhesion in R. leguminosarum. We propose a model for R. leguminosarum in which synthesis of the EPS leads the formation of a biofilm and several PrsD-PrsE secreted proteins are involved in different aspects of biofilm maturation, such as modulation of the EPS length or mediating attachment between bacteria.
机译:豆科根瘤菌的I型蛋白分泌系统。 prsD和prsE基因编码的蚕豆负责分泌胞外多糖(EPS)-聚糖酶PlyA和PlyB。 prsD和prsE分泌突变体在摇动的培养物中在玻璃表面上形成的生物膜环受到很大影响。共聚焦激光扫描显微镜对绿色荧光蛋白标记细菌的分析表明,在最小培养基中生长的豆科植物R. leguminosarum野生型会形成微菌落,并逐渐发展为具有特色的三维生物膜结构。但是,prsD和prsE分泌突变体只能形成未成熟的生物膜结构。一个EPS-聚糖酶plyB基因被破坏的突变体显示生物膜形成时间的改变,其结构是非典型的。 EPS合成(pssA)的必需基因中的突变或参与EPS合成的其他几个pss基因的缺失完全消除了豆科植物豆蔻形成生物膜的能力。混合细菌培养物的细胞外互补研究证实了EPS的作用以及PrsD-PrsE分泌蛋白对生物膜结构的调节。蛋白质分析确定了PrsD-PrsE分泌系统分泌的其他几种蛋白质,并且N端测序揭示了与Rap家族蛋白质(根瘤菌粘附蛋白)的N末端同源的肽,它们可能在豆科植物豆科菌的细胞粘附中起作用。我们提出了一种豆科念珠菌模型,其中EPS的合成导致生物膜的形成,并且若干PrsD-PrsE分泌的蛋白质参与生物膜成熟的不同方面,例如EPS长度的调节或细菌之间的介导附着。

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