Oswald Felix, Varadarajan Aravindan, Lill Holger, Peterman Erwin J G, Bollen Yves J M
Department of Physics and Astronomy, Vrije Universiteit Amsterdam, the Netherlands; Department of Molecular Cell Biology, Vrije Universiteit Amsterdam, the Netherlands; LaserLaB Amsterdam, the Netherlands.
Department of Physics and Astronomy, Vrije Universiteit Amsterdam, the Netherlands; LaserLaB Amsterdam, the Netherlands.
Biophys J. 2016 Mar 8;110(5):1139-49. doi: 10.1016/j.bpj.2016.01.010.
The functional organization of prokaryotic cell membranes, which is essential for many cellular processes, has been challenging to analyze due to the small size and nonflat geometry of bacterial cells. Here, we use single-molecule fluorescence microscopy and three-dimensional quantitative analyses in live Escherichia coli to demonstrate that its cytoplasmic membrane contains microdomains with distinct physical properties. We show that the stability of these microdomains depends on the integrity of the MreB cytoskeletal network underneath the membrane. We explore how the interplay between cytoskeleton and membrane affects trans-membrane protein (TMP) diffusion and reveal that the mobility of the TMPs tested is subdiffusive, most likely caused by confinement of TMP mobility by the submembranous MreB network. Our findings demonstrate that the dynamic architecture of prokaryotic cell membranes is controlled by the MreB cytoskeleton and regulates the mobility of TMPs.
原核细胞膜的功能组织对许多细胞过程至关重要,但由于细菌细胞体积小且几何形状不平坦,对其进行分析具有挑战性。在这里,我们使用单分子荧光显微镜和对活的大肠杆菌进行三维定量分析,以证明其细胞质膜含有具有不同物理性质的微结构域。我们表明,这些微结构域的稳定性取决于膜下MreB细胞骨架网络的完整性。我们探索了细胞骨架与膜之间的相互作用如何影响跨膜蛋白(TMP)的扩散,并揭示所测试的TMP的流动性是亚扩散的,这很可能是由膜下MreB网络对TMP流动性的限制所致。我们的研究结果表明,原核细胞膜的动态结构由MreB细胞骨架控制,并调节TMP的流动性。