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细胞骨架成分可以将无壁的球形细菌变成扭结的螺旋形。

Cytoskeletal components can turn wall-less spherical bacteria into kinking helices.

机构信息

Univ. Bordeaux, INRAE, BFP, UMR 1332, Villenave d'Ornon, France.

University Bordeaux, CNRS, CBMN UMR 5248, Bordeaux INP, Pessac, France.

出版信息

Nat Commun. 2022 Nov 14;13(1):6930. doi: 10.1038/s41467-022-34478-0.

Abstract

Bacterial cell shape is generally determined through an interplay between the peptidoglycan cell wall and cytoplasmic filaments made of polymerized MreB. Indeed, some bacteria (e.g., Mycoplasma) that lack both a cell wall and mreB genes consist of non-motile cells that are spherical or pleomorphic. However, other members of the same class Mollicutes (e.g., Spiroplasma, also lacking a cell wall) display a helical cell shape and kink-based motility, which is thought to rely on the presence of five MreB isoforms and a specific fibril protein. Here, we show that heterologous expression of Spiroplasma fibril and MreB proteins confers helical shape and kinking ability to Mycoplasma capricolum cells. Isoform MreB5 is sufficient to confer helicity and kink propagation to mycoplasma cells. Cryoelectron microscopy confirms the association of cytoplasmic MreB filaments with the plasma membrane, suggesting a direct effect on membrane curvature. However, in our experiments, the heterologous expression of MreBs and fibril did not result in efficient motility in culture broth, indicating that additional, unknown Spiroplasma components are required for swimming.

摘要

细菌的细胞形状通常是通过肽聚糖细胞壁和由聚合的 MreB 组成的细胞质丝之间的相互作用来决定的。事实上,一些既缺乏细胞壁又缺乏 mreB 基因的细菌(例如支原体)由非运动的球形或多形性细胞组成。然而,同一门 Mollicutes 的其他成员(例如缺乏细胞壁的螺原体)则呈现出螺旋形细胞形状和基于扭结的运动性,这被认为依赖于存在五种 MreB 同工型和一种特定的纤维蛋白。在这里,我们表明螺原体纤维蛋白和 MreB 蛋白的异源表达赋予了支原体细胞螺旋形状和扭结能力。同工型 MreB5 足以赋予支原体细胞螺旋性和扭结传播。冷冻电子显微镜证实了细胞质 MreB 丝与质膜的结合,表明其对膜曲率有直接影响。然而,在我们的实验中,MreBs 和纤维蛋白的异源表达并没有导致在培养肉汤中有效的运动性,这表明螺原体中还需要其他未知的成分来进行游动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5833/9663586/28873c2c19b5/41467_2022_34478_Fig1_HTML.jpg

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