López-Montero I, López-Navajas P, Mingorance J, Vélez M, Vicente M, Monroy F
Departamento de Química Física I, Universidad Complutense, 28040 Madrid, Spain.
Biochim Biophys Acta. 2013 Feb;1828(2):687-98. doi: 10.1016/j.bbamem.2012.11.003. Epub 2012 Nov 10.
During the division process of Escherichia coli, the globular protein FtsZ is early recruited at the constriction site. The Z-ring, based on FtsZ filaments associated to the inner cell membrane, has been postulated to exert constriction forces. Membrane anchoring is mediated by ZipA, an essential transmembrane protein able to specifically bind FtsZ. In this work, an artificial complex of FtsZ-ZipA has been reconstituted at the inner side of spherical giant unilamellar vesicles made of E. coli lipids. Under these conditions, FtsZ polymerization, triggered when a caged GTP analogue is UV-irradiated, was followed by up to 40% vesicle inflation. The homogeneous membrane dilation was accompanied by the visualization of discrete FtsZ assemblies at the membrane. Complementary rheological data revealed enhanced elasticity under lateral dilation. This explains why vesicles can undergo large dilations in the regime of mechanical stability. A mechanical role for FtsZ polymers as promoters of membrane softening and plasticization is hypothesized.
在大肠杆菌的分裂过程中,球状蛋白FtsZ会早期募集到缢缩位点。基于与细胞膜内膜相关的FtsZ细丝形成的Z环,被认为能施加缢缩力。膜锚定由ZipA介导,ZipA是一种能特异性结合FtsZ的必需跨膜蛋白。在这项工作中,FtsZ-ZipA人工复合物已在由大肠杆菌脂质制成的球形巨型单层囊泡内侧重构。在这些条件下,当笼形GTP类似物受到紫外线照射时引发FtsZ聚合,随后囊泡膨胀高达40%。均匀的膜扩张伴随着膜上离散FtsZ聚集体的可视化。补充的流变学数据显示在横向扩张下弹性增强。这解释了为什么囊泡在机械稳定性范围内能经历大幅扩张。推测FtsZ聚合物具有促进膜软化和增塑的机械作用。