School of Physics, Shandong University, Jinan 250100, China.
Phys Chem Chem Phys. 2020 May 7;22(17):9330-9338. doi: 10.1039/d0cp00473a. Epub 2020 Apr 20.
G protein-coupled receptors (GPCRs) are membrane proteins that play critical roles in transmembrane signaling. Intracellular arrestin can form a complex with GPCRs to block G protein binding or mediate independent signaling pathways. It is known that different extracellular stimuli lead to the recruitment of different downstream effectors through arrestin. How this selective signaling is achieved is a fascinating but unresolved question. One hypothesis is that different stimuli can lead to different phosphorylation patterns in the C-terminus loop of GPCR (C-loop), and arrestin then adopts different conformations according to the phosphorylation pattern, and then arrestin in turn can recruit various downstream signaling molecules. In this study, we conducted atomistic molecular dynamics (MD) simulations to investigate whether the conformation of arrestin is related to the phosphorylation pattern of the GPCR C-loop in the GPCR-arrestin complex. Our results showed that arrestin undergoes a significant conformational change when binding to the GPCR C-loop, and its specific holo conformation seems to be phosphorylation-dependent. Further analysis of the pairwise forces between the phosphorylated residues of the C-loop and the adjacent residues of arrestin showed that these forces vary to a large degree, depending on the phosphorylation pattern of the C-loop, which might direct arrestin into distinct conformations and result in the selective binding of downstream signaling molecules. These results shed light on the C-loop phosphorylation pattern dependent signaling through the GPCR-arrestin pathway.
G 蛋白偶联受体 (GPCRs) 是一种膜蛋白,在跨膜信号转导中发挥着关键作用。细胞内的 arrestin 可以与 GPCR 形成复合物,阻断 G 蛋白结合或介导独立的信号通路。已知不同的细胞外刺激会通过 arrestin 招募不同的下游效应物。这种选择性信号转导是如何实现的,是一个令人着迷但尚未解决的问题。一种假设是,不同的刺激可以导致 GPCR(C 环)的 C 端环中的不同磷酸化模式,然后 arrestin 根据磷酸化模式采用不同的构象,然后 arrestin 依次可以招募各种下游信号分子。在这项研究中,我们进行了原子分子动力学 (MD) 模拟,以研究 GPCR-arrestin 复合物中 arrestin 的构象是否与 GPCR C 环的磷酸化模式有关。我们的结果表明,arrestin 在与 GPCR C 环结合时会发生显著的构象变化,其特定的全酶构象似乎依赖于磷酸化。进一步分析 C 环磷酸化残基与 arrestin 相邻残基之间的成对力表明,这些力在很大程度上取决于 C 环的磷酸化模式,这可能指导 arrestin 进入不同的构象,并导致下游信号分子的选择性结合。这些结果揭示了 GPCR-arrestin 途径中 C 环磷酸化模式依赖的信号转导。