Garcia-Saez Isabel, Yen Tim, Wade Richard H, Kozielski Frank
Laboratoire de Microscopie Electronique Structurale, Institut de Biologie Structurale, 41 rue Jules Horowitz, 38027 Grenoble Cedex 01, France.
J Mol Biol. 2004 Jul 23;340(5):1107-16. doi: 10.1016/j.jmb.2004.05.053.
The human kinetochore is a highly complex macromolecular structure that connects chromosomes to spindle microtubules (MTs) in order to facilitate accurate chromosome segregation. Centromere-associated protein E (CENP-E), a member of the kinesin superfamily, is an essential component of the kinetochore, since it is required to stabilize the attachment of chromosomes to spindle MTs, to develop tension across aligned chromosomes, to stabilize spindle poles and to satisfy the mitotic checkpoint. Here we report the 2.5A resolution crystal structure of the motor domain and linker region of human CENP-E with MgADP bound in the active site. This structure displays subtle but important differences compared to the structures of human Eg5 and conventional kinesin. Our structure reveals that the CENP-E linker region is in a "docked" position identical to that in the human plus-end directed conventional kinesin. CENP-E has many advantages as a potential anti-mitotic drug target and this crystal structure of human CENP-E will provide a starting point for high throughput virtual screening of potential inhibitors.
人类动粒是一种高度复杂的大分子结构,它将染色体与纺锤体微管(MTs)相连,以促进染色体的准确分离。着丝粒相关蛋白E(CENP-E)是驱动蛋白超家族的成员,是动粒的重要组成部分,因为它对于稳定染色体与纺锤体MTs的附着、在排列好的染色体上产生张力、稳定纺锤体极以及满足有丝分裂检查点都是必需的。在此,我们报道了人类CENP-E的马达结构域和连接区的晶体结构,分辨率为2.5埃,活性位点结合有MgADP。与人类Eg5和传统驱动蛋白的结构相比,该结构显示出细微但重要的差异。我们的结构表明,CENP-E连接区处于与人类正端定向传统驱动蛋白相同的“对接”位置。CENP-E作为潜在的抗有丝分裂药物靶点具有诸多优势,而这种人类CENP-E的晶体结构将为潜在抑制剂的高通量虚拟筛选提供一个起点。