Liu Bowen, Chan Helena, Bauda Elda, Contreras-Martel Carlos, Bellard Laure, Villard Anne-Marie, Mas Caroline, Neumann Emmanuelle, Fenel Daphna, Favier Adrien, Serrano Monica, Henriques Adriano O, Rodrigues Christopher D A, Morlot Cecile
Univ. Grenoble Alpes, CNRS, CEA, IBS, 38000 Grenoble, France.
The ithree institute, University of Technology Sydney, 2007 Ultimo, NSW, Australia.
J Struct Biol. 2022 Mar;214(1):107813. doi: 10.1016/j.jsb.2021.107813. Epub 2021 Nov 19.
Components of specialized secretion systems, which span the inner and outer membranes in Gram-negative bacteria, include ring-forming proteins whose oligomerization was proposed to be promoted by domains called RBM for "Ring-Building Motifs". During spore formation in Gram-positive bacteria, a transport system called the SpoIIIA-SpoIIQ complex also assembles in the double membrane that surrounds the forespore following its endocytosis by the mother cell. The presence of RBM domains in some of the SpoIIIA proteins led to the hypothesis that they would assemble into rings connecting the two membranes and form a conduit between the mother cell and forespore. Among them, SpoIIIAG forms homo-oligomeric rings in vitro but the oligomerization of other RBM-containing SpoIIIA proteins, including SpoIIIAH, remains to be demonstrated. In this work, we identified RBM domains in the YhcN/YlaJ family of proteins that are not related to the SpoIIIA-SpoIIQ complex. We solved the crystal structure of YhcN from Bacillus subtilis, which confirmed the presence of a RBM fold, flanked by additional secondary structures. As the protein did not show any oligomerization ability in vitro, we investigated the structural determinants of ring formation in SpoIIIAG, SpoIIIAH and YhcN. We showed that in vitro, the conserved core of RBM domains alone is not sufficient for oligomerization while the β-barrel forming region in SpoIIIAG forms rings on its own. This work suggests that some RBMs might indeed participate in the assembly of homomeric rings but others might have evolved toward other functions.
革兰氏阴性菌中跨越内膜和外膜的特殊分泌系统的组成部分包括形成环的蛋白质,其寡聚化被认为是由称为“环构建基序”(RBM)的结构域促进的。在革兰氏阳性菌的孢子形成过程中,一种称为SpoIIIA - SpoIIQ复合物的转运系统也会在母细胞内吞前芽孢后围绕前芽孢的双膜中组装。一些SpoIIIA蛋白中存在RBM结构域,这引发了一种假设,即它们会组装成连接两个膜的环,并在母细胞和前芽孢之间形成一个通道。其中,SpoIIIAG在体外形成同型寡聚环,但其他含RBM的SpoIIIA蛋白,包括SpoIIIAH的寡聚化仍有待证明。在这项工作中,我们在与SpoIIIA - SpoIIQ复合物无关的YhcN/YlaJ蛋白家族中鉴定出了RBM结构域。我们解析了枯草芽孢杆菌YhcN的晶体结构,证实了存在一个RBM折叠,两侧还有其他二级结构。由于该蛋白在体外未显示出任何寡聚化能力,我们研究了SpoIIIAG、SpoIIIAH和YhcN中环形成的结构决定因素。我们表明,在体外,仅RBM结构域的保守核心不足以进行寡聚化,而SpoIIIAG中的β桶形成区域可自行形成环。这项工作表明,一些RBM可能确实参与了同型环的组装,但其他RBM可能已经进化出了其他功能。