首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Solution Structure of the State 1 Conformer of GTP-bound H-Ras Protein and Distinct Dynamic Properties between the State 1 and State 2 Conformers
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Solution Structure of the State 1 Conformer of GTP-bound H-Ras Protein and Distinct Dynamic Properties between the State 1 and State 2 Conformers

机译:GTP结合H-Ras蛋白的状态1构象异构体的溶液结构以及状态1和状态2构象异构体之间的不同动态特性

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摘要

Ras small GTPases undergo dynamic equilibrium of two interconverting conformations, state 1 and state 2, in the GTP-bound forms, where state 2 is recognized by effectors, whereas physiological functions of state 1 have been unknown. Limited information, such as static crystal structures and 31P NMR spectra, was available for the study of the conformational dynamics. Here we determine the solution structure and dynamics of state 1 by multidimensional heteronuclear NMR analysis of an H-RasT35S mutant in complex with guanosine 5′-(β, γ-imido)triphosphate (GppNHp). The state 1 structure shows that the switch I loop fluctuates extensively compared with that in state 2 or H-Ras-GDP. Also, backbone 1H,15N signals for state 2 are identified, and their dynamics are studied by utilizing a complex with c-Raf-1. Furthermore, the signals for almost all the residues of H-Ras·GppNHp are identified by measurement at low temperature, and the signals for multiple residues are found split into two peaks corresponding to the signals for state 1 and state 2. Intriguingly, these residues are located not only in the switch regions and their neighbors but also in the rigidly structured regions, suggesting that global structural rearrangements occur during the state interconversion. The backbone dynamics of each state show that the switch loops in state 1 are dynamically mobile on the picosecond to nanosecond time scale, and these mobilities are significantly reduced in state 2. These results suggest that multiconformations existing in state 1 are mostly deselected upon the transition toward state 2 induced by the effector binding.
机译:Ras小GTPases以GTP结合形式经历两个相互转换的构象(状态1和状态2)的动态平衡,其中状态2被效应子识别,而状态1的生理功能尚不清楚。有限的信息,例如静态晶体结构和 31 P NMR光谱,可用于构象动力学的研究。在这里,我们通过与鸟苷5'-(β,γ-亚氨基)三磷酸(GppNHp)配合的H-RasT35S突变体的多维异核NMR分析,确定了状态1的溶液结构和动力学。状态1的结构显示,与状态2或H-Ras-GDP相比,开关I回路波动很大。此外,还确定了状态2的主干 1 H, 15 N信号,并利用c-Raf-1配合物研究了它们的动力学。此外,通过在低温下的测量可以鉴​​定出H-Ras·GppNHp几乎所有残基的信号,并且发现多个残基的信号分成与状态1和状态2的信号相对应的两个峰。有趣的是,这些残基不仅位于开关区域及其相邻区域,而且位于刚性结构区域,这表明在状态互转换期间会发生全局结构重排。每个状态的主干动力学表明,状态1的开关环可在皮秒到纳秒的时间尺度上动态移动,并且状态2中的迁移率显着降低。这些结果表明,状态1中存在的多态在转换时大多被取消选择通过效应子结合诱导向状态2。

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