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细胞分裂蛋白FtsZ的激活。核苷酸γ-磷酸对开关环T3构象的控制。

Activation of cell division protein FtsZ. Control of switch loop T3 conformation by the nucleotide gamma-phosphate.

作者信息

Díaz J F, Kralicek A, Mingorance J, Palacios J M, Vicente M, Andreu J M

机构信息

Centro de Investigaciones Biológicas, Consejo Superior de Investigaciones Cientificas, C/Velázquez, 144, 28006 Madrid, Spain.

出版信息

J Biol Chem. 2001 May 18;276(20):17307-15. doi: 10.1074/jbc.M010920200. Epub 2001 Jan 25.

Abstract

The effect of bound nucleotide on the conformation of cell division protein FtsZ from Methanococcus jannaschii has been investigated using molecular dynamics and site-directed mutagenesis. The molecular dynamics indicate that the gamma-phosphate of GTP induces a conformational perturbation in loop T3 (Gly88-Gly99 segment), in a position structurally equivalent to switch II of Ha-ras-p21. In the simulated GTP-bound state, loop T3 is pulled by the gamma-phosphate into a more compact conformation than with GDP, related to that observed in the homologous proteins alpha- and beta-tubulin. The existence of a nucleotide-induced structural change in loop T3 has been confirmed by mutating Thr92 into Trp (T92W-W319Y FtsZ). This tryptophan (12 A away from gamma-phosphate) shows large differences in fluorescence emission, depending on which nucleotide is bound to FtsZ monomers. Loop T3 is located at a side of the contact interface between two FtsZ monomers in the current model of FtsZ filament. Such a structural change may bend the GDP filament upon hydrolysis by pushing against helix H8 of next monomer, thus, generating force on the membrane during cell division. A related curvature mechanism may operate in tubulin activation.

摘要

已使用分子动力学和定点诱变研究了结合核苷酸对詹氏甲烷球菌细胞分裂蛋白FtsZ构象的影响。分子动力学表明,GTP的γ-磷酸基团在T3环(甘氨酸88 - 甘氨酸99片段)中诱导了构象扰动,该位置在结构上等同于Ha-ras-p21的开关II。在模拟的GTP结合状态下,与GDP结合时相比,T3环被γ-磷酸基团拉成更紧凑的构象,这与在同源蛋白α-和β-微管蛋白中观察到的情况相关。通过将苏氨酸92突变为色氨酸(T92W-W319Y FtsZ),证实了T3环中存在核苷酸诱导的结构变化。这种色氨酸(距离γ-磷酸基团12埃)的荧光发射显示出很大差异,这取决于哪种核苷酸与FtsZ单体结合。在当前的FtsZ细丝模型中,T3环位于两个FtsZ单体之间接触界面的一侧。这种结构变化可能通过推挤下一个单体的螺旋H8,在水解时使GDP细丝弯曲,从而在细胞分裂期间在膜上产生力。一种相关的弯曲机制可能在微管蛋白激活中起作用。

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