Department of Biology, University of Marburg, Marburg, Germany, Marburg, Germany.
Max Planck Institute for Terrestrial Microbiology, Marburg, Germany.
Elife. 2024 Jan 31;12:RP86577. doi: 10.7554/eLife.86577.
Bactofilins have emerged as a widespread family of cytoskeletal proteins with important roles in bacterial morphogenesis, but their precise mode of action is still incompletely understood. In this study, we identify the bactofilin cytoskeleton as a key regulator of cell growth in the stalked budding alphaproteobacterium . We show that, in this species, bactofilin polymers localize dynamically to the stalk base and the bud neck, with their absence leading to unconstrained growth of the stalk and bud compartments, indicating a central role in the spatial regulation of cell wall biosynthesis. Database searches reveal that bactofilin genes are often clustered with genes for cell wall hydrolases of the M23 peptidase family, suggesting a functional connection between these two types of proteins. In support of this notion, we find that the M23 peptidase homolog LmdC interacts directly with bactofilin in vitro and is required for proper cell shape in vivo. Complementary studies in the spiral-shaped alphaproteobacterium again reveal a close association of its bactofilin and LmdC homologs, which co-localize at the inner curve of the cell, modulating the degree of cell curvature. Collectively, these findings demonstrate that bactofilins and M23 peptidases form a conserved functional module that promotes local changes in the mode of cell wall biosynthesis, thereby driving cell shape determination in morphologically complex bacteria.
细菌丝蛋白已成为细胞骨架蛋白家族中的一个广泛存在的家族,在细菌形态发生中具有重要作用,但它们的确切作用模式仍不完全清楚。在这项研究中,我们确定了细菌丝蛋白细胞骨架是杆状出芽 α 变形菌细胞生长的关键调节剂。我们表明,在该物种中,细菌丝蛋白聚合物动态定位于柄基部和芽颈,其缺失导致柄和芽隔间的无约束生长,表明其在细胞壁生物合成的空间调节中起核心作用。数据库搜索表明,细菌丝蛋白基因通常与 M23 肽酶家族的细胞壁水解酶基因簇在一起,表明这两种类型的蛋白质之间存在功能联系。为了支持这一观点,我们发现 M23 肽酶同源物 LmdC 在体内与细菌丝蛋白直接相互作用,并且在体内对于正确的细胞形状是必需的。在螺旋形 α 变形菌中的互补研究再次揭示了其细菌丝蛋白和 LmdC 同源物的紧密关联,它们在细胞的内曲处共定位,调节细胞曲率的程度。总之,这些发现表明细菌丝蛋白和 M23 肽酶形成了一个保守的功能模块,促进了细胞壁生物合成方式的局部变化,从而推动了形态复杂细菌的细胞形状决定。