分区(防火)
糖蛋白
功能多样性
细胞生物学
信号转导
包络线(雷达)
计算生物学
内生
病毒包膜
疾病
生物
化学
受体
多样性(政治)
G蛋白偶联受体
信号蛋白
细胞信号
蛋白质-蛋白质相互作用
膜糖蛋白
神经科学
人类免疫缺陷病毒(HIV)
蛋白质折叠
内源性逆转录病毒
血浆蛋白结合
作者
Romain Gasser,Philippe Colin,Célien Jacquemard,Théo Montagné,Zhicheng Zhou,Véronique Pons,Evi Kostenis,Céline Galès,Esther Kellenberger,Bernard Lagane
标识
DOI:10.1186/s12964-025-02508-1
摘要
BACKGROUND: CCR5 is a critical receptor for anti-infectious immunity. It acts by binding chemokines, which activate Gαβγ protein-dependent signaling and ultimately regulate leukocyte recruitment. However, CCR5 is also implicated in numerous pathological conditions, raising interest in its potential as a therapeutic target. Notably, CCR5 serves as a coreceptor for HIV-1 envelope glycoproteins (Envs), allowing viral entry into host cells and initiating infection. Whether and how Envs trigger CCR5 signaling remains debated, with conflicting evidence regarding their ability to mimic chemokine-induced activation of the receptor. This study aims to clarify the nature of Env-induced CCR5 signaling. METHODS: flux and cAMP inhibition assays. Molecular dynamics simulations were performed to investigate differences in ligand-induced conformational changes in CCR5. The role of membrane cholesterol in ligand engagement was studied using methyl-β-cyclodextrin treatments and binding assays. RESULTS: HIV Envs act as biased agonists at CCR5, selectively activating distinct G protein families compared to chemokines. Notably, Env-induced signaling, but not chemokine signaling, was strictly dependent on specific Gα subunit abundance and CCR5/G protein stoichiometry. This dependency likely explains the conflicting data in the literature regarding Env agonism. Molecular modeling revealed that Envs and chemokines stabilize distinct active conformations of CCR5, particularly at the G protein interaction site, likely accounting for their differential signaling behaviors. Additionally, cholesterol depletion impaired chemokine, but not HIV-1 Env, binding to CCR5, suggesting that the two ligand types engage the receptor within distinct membrane microenvironments. CONCLUSIONS: These findings reveal that CCR5 exists in a mosaic of distinct membrane-associated functional states, differentially accessed by viral and endogenous ligands. This spatial and signaling compartmentalization provides a mechanistic framework to understand CCR5's functional diversity in health and disease and highlights the potential for developing context-specific CCR5-targeted therapeutic strategies.
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