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MxiM and MxiJ, Base Elements of the Mxi-Spa Type III Secretion System of Shigella, Interact with and Stabilize the MxiD Secretin in the Cell Envelope

机译:MxiM和MxiJ,志贺氏菌Mxi-Spa III型分泌系统的基础元素,与细胞包膜中的MxiD分泌素相互作用并使其稳定

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摘要

The type III secretion pathway is broadly distributed across many parasitic bacterial genera and serves as a mechanism for delivering effector proteins to eukaryotic cell surface and cytosolic targets. While the effectors, as well as the host responses elicited, differ among type III systems, they all utilize a conserved set of 9 to 11 proteins that together form a bacterial envelope-associated secretory organelle or needle complex. The general structure of the needle complex consists of a transenvelope base containing at least three ring-forming proteins (MxiD, MxiJ, and MxiG in Shigella) that is connected to a hollow needle-like extension that projects away from the cell surface. Several studies have shown that the initial steps in needle complex assembly require interactions among the base proteins, although specific details of this process remain unknown. Here we identify a role for another base element in Shigella, MxiM, in interactions with the major outer-membrane-associated ring-forming protein, MxiD. MxiM affects several features of MxiD, including its stability, envelope association, and assembly into homomultimeric structures. Interestingly, many of the effects were also elicited by the inner-membrane-associated base element, MxiJ. We confirmed that MxiM-MxiD and MxiJ-MxiD interactions occur in vivo in the cell envelope, and we present evidence that together these base elements can form a transmembrane structure which is likely an important intermediary in the process of needle complex assembly.
机译:III型分泌途径广泛分布于许多寄生细菌属中,并作为将效应子蛋白传递至真核细胞表面和胞质靶标的机制。虽然效应物以及引发的宿主反应在III型系统中有所不同,但它们都利用了9-11种保守蛋白,它们共同形成了细菌包膜相关的分泌细胞器或针复合体。针状复合物的一般结构由一个跨膜碱基组成,该碱基包含至少三个成环蛋白(志贺氏菌中的MxiD,MxiJ和MxiG),该蛋白连接到从细胞表面突出的空心针状延伸部分。几项研究表明,针复合物组装的初始步骤需要基础蛋白之间的相互作用,尽管该过程的具体细节仍然未知。在这里,我们确定了志贺氏菌另一个基本元素MxiM在与主要的外膜相关成环蛋白MxiD相互作用中的作用。 MxiM影响MxiD的多个功能,包括其稳定性,包膜缔合和组装为同多聚体结构。有趣的是,许多作用也是由与内膜相关的基本元素MxiJ引起的。我们证实,MxiM-MxiD和MxiJ-MxiD相互作用在体内发生在细胞膜中,并且我们提供的证据表明,这些基本元素一起可以形成跨膜结构,这可能是针复合物组装过程中的重要中介。

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