变构调节
信号转导
G蛋白偶联受体
机制(生物学)
受体
信号蛋白
细胞内
功能选择性
细胞外
细胞生物学
逮捕
G蛋白
化学
细胞信号
生物
生物物理学
生物化学
物理
量子力学
作者
Carl‐Mikael Suomivuori,Naomi R. Latorraca,Laura M. Wingler,Stephan Eismann,Matthew C. King,A.L.W. Kleinhenz,Meredith A. Skiba,Dean P. Staus,Andrew C. Kruse,Robert J. Lefkowitz,Ron O. Dror
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2020-02-21
卷期号:367 (6480): 881-887
被引量:222
标识
DOI:10.1126/science.aaz0326
摘要
Biased signaling, in which different ligands that bind to the same G protein-coupled receptor preferentially trigger distinct signaling pathways, holds great promise for the design of safer and more effective drugs. Its structural mechanism remains unclear, however, hampering efforts to design drugs with desired signaling profiles. Here, we use extensive atomic-level molecular dynamics simulations to determine how arrestin bias and G protein bias arise at the angiotensin II type 1 receptor. The receptor adopts two major signaling conformations, one of which couples almost exclusively to arrestin, whereas the other also couples effectively to a G protein. A long-range allosteric network allows ligands in the extracellular binding pocket to favor either of the two intracellular conformations. Guided by this computationally determined mechanism, we designed ligands with desired signaling profiles.
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