Cyclic nucleotide phosphodiesterases as drug targets

磷酸二酯酶 核苷酸 药品 环核苷酸 环核苷酸磷酸二酯酶 化学 药理学 计算生物学 生物化学 细胞生物学 生物 基因
作者
Michy P. Kelly,Viacheslav O. Nikolaev,Leila Gobejishvili,Claire Lugnier,Christian Heßlinger,Peter Nickolaus,David A. Kass,W. Pereira De Vasconcelos,Rodolphe Fischmeister,Stefan Brocke,Paul M. Epstein,Gary A. Piazza,Adam B. Keeton,Gang Zhou,Mohammad Abdel‐Halim,Alireza Abadi,George S. Baillie,Mark A. Giembycz,Graeme B. Bolger,Gretchen L. Snyder
出处
期刊:Pharmacological Reviews [American Society for Pharmacology & Experimental Therapeutics]
卷期号:77 (3): 100042-100042
标识
DOI:10.1016/j.pharmr.2025.100042
摘要

Cyclic nucleotides are synthesized by adenylyl and/or guanylyl cyclase, and downstream of this synthesis, the cyclic nucleotide phosphodiesterase families (PDEs) specifically hydrolyze cyclic nucleotides. PDEs control cyclic adenosine-3',5'monophosphate (cAMP) and cyclic guanosine-3',5'-monophosphate (cGMP) intracellular levels by mediating their quick return to the basal steady state levels. This often takes place in subcellular nanodomains. Thus, PDEs govern short-term protein phosphorylation, long-term protein expression, and even epigenetic mechanisms by modulating cyclic nucleotide levels. Consequently, their involvement in both health and disease is extensively investigated. PDE inhibition has emerged as a promising clinical intervention method, with ongoing developments aiming to enhance its efficacy and applicability. In this comprehensive review, we extensively look into the intricate landscape of PDEs biochemistry, exploring their diverse roles in various tissues. Furthermore, we outline the underlying mechanisms of PDEs in different pathophysiological conditions. Additionally, we review the application of PDE inhibition in related diseases, shedding light on current advancements and future prospects for clinical intervention. SIGNIFICANCE STATEMENT: Regulating PDEs is a critical checkpoint for numerous (patho)physiological conditions. However, despite the development of several PDE inhibitors aimed at controlling overactivated PDEs, their applicability in clinical settings poses challenges. In this context, our focus is on pharmacodynamics and the structure activity of PDEs, aiming to illustrate how selectivity and efficacy can be optimized. Additionally, this review points to current preclinical and clinical evidence that depicts various optimization efforts and indications.

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