Mishra Sumita, Chander Vivek, Kass David A
Center for Exercise Medicine Research, Fralin Biomedical Research Institute, (S.M., V.C.), Virginia Tech, Blacksburg, VA.
Center for Vascular and Heart Research, Fralin Biomedical Research Institute, (S.M.), Virginia Tech, Blacksburg, VA.
Hypertension. 2025 Feb;82(2):185-196. doi: 10.1161/HYPERTENSIONAHA.124.21709. Epub 2024 Dec 11.
cGMP plays a central role in cardiovascular regulation in health and disease. It is synthesized by NO or natriuretic peptide activated cyclases and hydrolyzed to 5'GMP by select members of the PDEs (phosphodiesterase) superfamily. The primary downstream effector is cGMP-dependent protein kinase, primarily cGK-1a (cyclic GMP-dependent protein kinase 1 alpha) also known as protein kinase G 1a in the heart and vasculature. cGMP signaling is controlled in intracellular nanodomains to regulate myocyte growth, survival, metabolism, protein homeostasis, G-protein-coupled receptor signaling, and other critical functions. The vascular effects of cGMP signaling have been dominated by its lowering of smooth muscle tone, but other cellular processes are also engaged. Localization of cyclases and corresponding PDEs within intracellular domains, along with their varying expression across different cell types, adds multiorgan complexity to cGMP signaling. This diversity can be leveraged therapeutically by targeting selective pathway components to impact some but not other cGMP signaling effects. Here, we review the generation and regulation of cGMP by PDEs and cyclases, focusing mainly on their role in cardiac physiology and pathophysiology. Current therapeutic uses of cGMP modulation and ongoing trials testing new potential applications are discussed.
环磷酸鸟苷(cGMP)在健康和疾病状态下的心血管调节中发挥着核心作用。它由一氧化氮(NO)或利钠肽激活的环化酶合成,并被磷酸二酯酶(PDE)超家族的特定成员水解为5'-鸟苷酸(5'GMP)。主要的下游效应器是cGMP依赖性蛋白激酶,主要是cGK-1α(环磷酸鸟苷依赖性蛋白激酶1α),在心脏和血管系统中也被称为蛋白激酶G 1α。cGMP信号传导在细胞内纳米域中受到调控,以调节心肌细胞的生长、存活、代谢、蛋白质稳态、G蛋白偶联受体信号传导以及其他关键功能。cGMP信号传导的血管效应主要表现为降低平滑肌张力,但也涉及其他细胞过程。环化酶和相应的磷酸二酯酶在细胞内结构域中的定位,以及它们在不同细胞类型中的不同表达,增加了cGMP信号传导在多器官水平的复杂性。通过靶向选择性途径成分来影响部分而非其他cGMP信号传导效应,可以在治疗上利用这种多样性。在这里,我们综述了磷酸二酯酶和环化酶对cGMP的生成和调控,主要关注它们在心脏生理学和病理生理学中的作用。还讨论了cGMP调节的当前治疗用途以及正在测试新潜在应用的临床试验。