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Unraveling the Self-Assembly of the Pseudomonas aeruginosa XcpQ Secretin Periplasmic Domain Provides New Molecular Insights into Type II Secretion System Secreton Architecture and Dynamics

机译:解开铜绿假单胞菌 XcpQ Secretin周质结构域的自组装,为II型分泌系统Secreton体系结构和动力学提供新的分子见解

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ABSTRACT The type II secretion system (T2SS) releases large folded exoproteins across the envelope of many Gram-negative pathogens. This secretion process therefore requires specific gating, interacting, and dynamics properties mainly operated by a bipartite outer membrane channel called secretin. We have a good understanding of the structure-function relationship of the pore-forming C-terminal domain of secretins. In contrast, the high flexibility of their periplasmic N-terminal domain has been an obstacle in obtaining the detailed structural information required to uncover its molecular function. In Pseudomonas aeruginosa , the Xcp T2SS plays an important role in bacterial virulence by its capacity to deliver a large panel of toxins and degradative enzymes into the surrounding environment. Here, we revealed that the N-terminal domain of XcpQ secretin spontaneously self-assembled into a hexamer of dimers independently of its C-terminal domain. Furthermore, and by using multidisciplinary approaches, we elucidate the structural organization of the XcpQ N domain and demonstrate that secretin flexibility at interdimer interfaces is mandatory for its function. IMPORTANCE Bacterial secretins are large homooligomeric proteins constituting the outer membrane pore-forming element of several envelope-embedded nanomachines essential in bacterial survival and pathogenicity. They comprise a well-defined membrane-embedded C-terminal domain and a modular periplasmic N-terminal domain involved in substrate recruitment and connection with inner membrane components. We are studying the XcpQ secretin of the T2SS present in the pathogenic bacterium Pseudomonas aeruginosa . Our data highlight the ability of the XcpQ N-terminal domain to spontaneously oligomerize into a hexamer of dimers. Further in vivo experiments revealed that this domain adopts different conformations essential for the T2SS secretion process. These findings provide new insights into the functional understanding of bacterial T2SS secretins.
机译:摘要II型分泌系统(T2SS)在许多革兰氏阴性病原体的包膜上释放出大量折叠的外蛋白。因此,这种分泌过程需要特定的门控,相互作用和动力学特性,这些特性主要由称为分泌素的两部分外膜通道来操纵。我们对促胰液素的孔形成C末端结构域的结构功能关系有很好的了解。相反,其周质N端结构域的高灵活性已成为获取揭示其分子功能所需的详细结构信息的障碍。在铜绿假单胞菌中,Xcp T2SS通过将大量毒素和降解酶传递到周围环境中的能力,在细菌毒性中发挥重要作用。在这里,我们揭示了XcpQ分泌蛋白的N末端结构域自发地自组装成二聚体的六聚体,而与其C末端结构域无关。此外,通过使用多学科方法,我们阐明了XcpQ N域的结构组织,并证明了二聚体界面处的促胰液素灵活性对于其功能是必不可少的。重要信息细菌促胰液素是大的低聚蛋白,它构成了细菌生存和致病性必不可少的几种包埋的纳米机器的外膜孔形成元件。它们包括一个明确定义的膜嵌入的C末端结构域和一个模块化的周质N末端结构域,参与底物募集和与内部膜成分的连接。我们正在研究铜绿假单胞菌致病菌T2SS的XcpQ分泌蛋白。我们的数据突出了XcpQ N末端域自发寡聚为二聚体六聚体的能力。进一步的体内实验表明,该结构域采用了T2SS分泌过程必不可少的不同构象。这些发现为细菌T2SS分泌蛋白的功能理解提供了新的见解。

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