G蛋白偶联受体质子感应的分子基础

IF 45.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Pub Date : 2025-01-02 DOI:10.1016/j.cell.2024.11.036
Matthew K. Howard, Nicholas Hoppe, Xi-Ping Huang, Darko Mitrovic, Christian B. Billesbølle, Christian B. Macdonald, Eshan Mehrotra, Patrick Rockefeller Grimes, Donovan D. Trinidad, Lucie Delemotte, Justin G. English, Willow Coyote-Maestas, Aashish Manglik
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引用次数: 0

摘要

三种质子传感G蛋白偶联受体(gpr4, GPR65和gpr68)响应细胞外pH调节多种生理。人们对质子如何激活这些受体知之甚少。我们测定了每个受体的低温电子显微镜(cryo-EM)结构,以了解质子感应残基的空间排列。使用深度突变扫描(DMS),我们通过产生约9,500个突变体并测量它们对信号传导和表面表达的影响,确定了GPR68激活中每个残基的功能重要性。恒定ph的分子动力学模拟提供了对关键残基的构象景观和质子化模式的见解。这种无偏倚的方法表明,与其他质子敏感通道和受体不同,没有单个位点对质子识别至关重要。相反,一个可滴定残基网络从细胞外表面延伸到跨膜区域,聚集在典型基序上以激活质子感应gpcr。我们的方法集成了结构、模拟和无偏见的功能询问,为理解GPCR信号复杂性提供了框架。
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Molecular basis of proton sensing by G protein-coupled receptors
Three proton-sensing G protein-coupled receptors (GPCRs)—GPR4, GPR65, and GPR68—respond to extracellular pH to regulate diverse physiology. How protons activate these receptors is poorly understood. We determined cryogenic-electron microscopy (cryo-EM) structures of each receptor to understand the spatial arrangement of proton-sensing residues. Using deep mutational scanning (DMS), we determined the functional importance of every residue in GPR68 activation by generating ∼9,500 mutants and measuring their effects on signaling and surface expression. Constant-pH molecular dynamics simulations provided insights into the conformational landscape and protonation patterns of key residues. This unbiased approach revealed that, unlike other proton-sensitive channels and receptors, no single site is critical for proton recognition. Instead, a network of titratable residues extends from the extracellular surface to the transmembrane region, converging on canonical motifs to activate proton-sensing GPCRs. Our approach integrating structure, simulations, and unbiased functional interrogation provides a framework for understanding GPCR signaling complexity.
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来源期刊
Cell
Cell 生物-生化与分子生物学
CiteScore
110.00
自引率
0.80%
发文量
396
审稿时长
2 months
期刊介绍: Cells is an international, peer-reviewed, open access journal that focuses on cell biology, molecular biology, and biophysics. It is affiliated with several societies, including the Spanish Society for Biochemistry and Molecular Biology (SEBBM), Nordic Autophagy Society (NAS), Spanish Society of Hematology and Hemotherapy (SEHH), and Society for Regenerative Medicine (Russian Federation) (RPO). The journal publishes research findings of significant importance in various areas of experimental biology, such as cell biology, molecular biology, neuroscience, immunology, virology, microbiology, cancer, human genetics, systems biology, signaling, and disease mechanisms and therapeutics. The primary criterion for considering papers is whether the results contribute to significant conceptual advances or raise thought-provoking questions and hypotheses related to interesting and important biological inquiries. In addition to primary research articles presented in four formats, Cells also features review and opinion articles in its "leading edge" section, discussing recent research advancements and topics of interest to its wide readership.
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