Yadav Rahul, Zaccolo Manuela
Department of Physiology, Anatomy and Genetics, University of Oxford, Oxford, OX1 3PT, United Kingdom.
Biochem J. 2025 May 13;482(10):BCJ20253088. doi: 10.1042/BCJ20253088.
G protein-coupled receptors (GPCRs) are the largest family of cell surface receptors, mediating essential physiological responses through diverse intracellular signaling pathways. When coupled to Gs or Gi proteins, GPCR modulates the synthesis of 3'-5'-cyclic adenosine monophosphate (cAMP), which governs a wide array of processes, ranging from cellular growth and survival to metabolic regulation. Studies have highlighted that cAMP is not uniformly distributed within cells but instead is compartmentalized into highly localized nanodomains. These nanodomains, mostly regulated by phosphodiesterases (PDEs), play a critical role in enabling signal precision and functional effects that are specific to individual stimuli. GPCRs can initiate distinct cAMP responses based on their localization within the cell, with evidence showing that both receptors resident at the plasma membrane and intracellular receptors-including endosomal, Golgi, and nuclear GPCRs-elicit unique cAMP signaling profiles. This review examines the mechanisms underlying GPCR signaling through cAMP nanodomains. We focus on the role of PDE-mediated cAMP degradation in shaping local cAMP signals, the emerging views on mechanisms that may contribute to signal compartmentalization, and the role of intracellular membrane compartments. By exploring these aspects, we aim to highlight the complexity of GPCR signaling networks and illustrate some of the implications for the regulation of cellular function.
G蛋白偶联受体(GPCRs)是细胞表面受体中最大的家族,通过多种细胞内信号通路介导重要的生理反应。当与Gs或Gi蛋白偶联时,GPCR调节3'-5'-环磷酸腺苷(cAMP)的合成,cAMP控制着从细胞生长、存活到代谢调节等一系列广泛的过程。研究表明,cAMP在细胞内并非均匀分布,而是被分隔成高度局部化的纳米域。这些纳米域主要由磷酸二酯酶(PDEs)调节,在实现信号精确性和特定于个体刺激的功能效应方面发挥着关键作用。GPCRs可根据其在细胞内的定位引发不同的cAMP反应,有证据表明,位于质膜的受体和细胞内受体(包括内体、高尔基体和核GPCRs)均可引发独特的cAMP信号谱。本综述探讨了通过cAMP纳米域进行GPCR信号传导的潜在机制。我们重点关注PDE介导的cAMP降解在塑造局部cAMP信号中的作用、可能导致信号分隔的机制的新观点以及细胞内膜区室的作用。通过探讨这些方面,我们旨在强调GPCR信号网络的复杂性,并阐明其对细胞功能调节的一些影响。