Structural Biology and NMR Laboratory, The Linderstrøm-Lang Centre for Protein Science, Department of Biology, University of Copenhagen, Ole Maaløes Vej 5, DK-2200 Copenhagen, Denmark.
Structural Biology and NMR Laboratory, The Linderstrøm-Lang Centre for Protein Science, Department of Biology, University of Copenhagen, Ole Maaløes Vej 5, DK-2200 Copenhagen, Denmark.
Curr Opin Struct Biol. 2018 Feb;48:74-82. doi: 10.1016/j.sbi.2017.10.017. Epub 2017 Nov 11.
Cells are dependent on transmembrane receptors to communicate and transform chemical and physical signals into intracellular responses. Because receptors transport 'information', conformational changes and protein dynamics play a key mechanistic role. We here review examples where experiment and computation have been used to study receptor dynamics. Recent studies on three distinct classes of receptors (G-protein coupled receptors, ligand-gated ion-channels and single-pass receptors) are highlighted to show that conformational changes across a range of time-scales and length-scales are central to function. Because the receptors function in a heterogeneous environment and need to be able to switch between distinct functional states, they may be particularly sensitive to small perturbations that complicate studies linking dynamics to function.
细胞依赖于跨膜受体来传递信息,将化学和物理信号转化为细胞内响应。由于受体传输“信息”,构象变化和蛋白质动力学起着关键的机械作用。在这里,我们回顾了一些使用实验和计算来研究受体动力学的例子。重点介绍了三类不同受体(G 蛋白偶联受体、配体门控离子通道和单次跨膜受体)的最新研究,表明在不同时间尺度和长度尺度上的构象变化是功能的核心。由于受体在异质环境中发挥作用,并且需要能够在不同的功能状态之间切换,因此它们可能对复杂的将动力学与功能联系起来的小扰动特别敏感。