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细菌细胞分裂蛋白FtsZ组装成原丝片层和微环,它们是微管蛋白聚合物的结构同源物。

Bacterial cell division protein FtsZ assembles into protofilament sheets and minirings, structural homologs of tubulin polymers.

作者信息

Erickson H P, Taylor D W, Taylor K A, Bramhill D

机构信息

Department of Cell Biology, Duke University Medical School, Durham, NC 27710, USA.

出版信息

Proc Natl Acad Sci U S A. 1996 Jan 9;93(1):519-23. doi: 10.1073/pnas.93.1.519.

Abstract

The bacterial cell division protein FtsZ is a homolog of tubulin, but it has not been determined whether FtsZ polymers are structurally related to the microtubule lattice. In the present study, we have obtained high-resolution electron micrographs of two FtsZ polymers that show remarkable similarity to tubulin polymers. The first is a two-dimensional sheet of protofilaments with a lattice very similar to that of the microtubule wall. The second is a miniring, consisting of a single protofilament in a sharply curved, planar conformation. FtsZ minirings are very similar to tubulin rings that are formed upon disassembly of microtubules but are about half the diameter. This suggests that the curved conformation occurs at every FtsZ subunit, but in tubulin rings the conformation occurs at either beta- or alpha-tubulin subunits but not both. We conclude that the functional polymer of FtsZ in bacterial cell division is a long thin sheet of protofilaments. There is sufficient FtsZ in Escherichia coli to form a protofilament that encircles the cell 20 times. The similarity of polymers formed by FtsZ and tubulin implies that the protofilament sheet is an ancient cytoskeletal system, originally functioning in bacterial cell division and later modified to make microtubules.

摘要

细菌细胞分裂蛋白FtsZ是微管蛋白的同源物,但FtsZ聚合物在结构上是否与微管晶格相关尚未确定。在本研究中,我们获得了两种FtsZ聚合物的高分辨率电子显微照片,它们与微管蛋白聚合物具有显著的相似性。第一种是原纤维的二维薄片,其晶格与微管壁的晶格非常相似。第二种是微环,由处于急剧弯曲的平面构象的单个原纤维组成。FtsZ微环与微管解聚时形成的微管蛋白环非常相似,但直径约为其一半。这表明弯曲构象存在于每个FtsZ亚基上,但在微管蛋白环中,该构象只存在于β-微管蛋白亚基或α-微管蛋白亚基上,而非两者都有。我们得出结论,FtsZ在细菌细胞分裂中的功能聚合物是原纤维的细长薄片。大肠杆菌中有足够的FtsZ来形成环绕细胞20次的原纤维。FtsZ和微管蛋白形成的聚合物的相似性意味着原纤维薄片是一种古老的细胞骨架系统,最初在细菌细胞分裂中发挥作用,后来经过修饰形成了微管。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1af8/40269/c97ed954d0f6/pnas01505-0531-a.jpg

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