Department of Pharmacology, University of Cambridge, Tennis Court Road, Cambridge CB2 1PD, UK.
Biochem Soc Trans. 2012 Feb;40(1):246-50. doi: 10.1042/BST20110613.
Cross-talk between cAMP and Ca2+ signalling pathways plays a critical role in cellular homoeostasis. Several AC (adenylate cyclase) isoforms, catalysing the production of cAMP from ATP, display sensitivity to submicromolar changes in intracellular Ca2+ and, as a consequence, are key sites for Ca2+ and cAMP interplay. Interestingly, these Ca2+-regulated ACs are not equally responsive to equivalent Ca2+ rises within the cell, but display a remarkable selectivity for regulation by SOCE (store-operated Ca2+ entry). Over the years, considerable efforts at investigating this phenomenon have provided indirect evidence of an intimate association between Ca2+-sensitive AC isoforms and sites of SOCE. Now, recent identification of the molecular components of SOCE [namely STIM1 (stromal interaction molecule 1) and Orai1], coupled with significant advances in the generation of high-resolution targeted biosensors for Ca2+ and cAMP, have provided the first detailed insight into the organization of the cellular microdomains associated with Ca2+-regulated ACs. In the present review, I summarize the findings that have helped to provide our most definitive understanding of the selective regulation of cAMP signalling by SOCE.
细胞内钙信号和 cAMP 信号通路的串扰在细胞内稳态中起着关键作用。几种催化 ATP 生成 cAMP 的 AC(腺苷酸环化酶)同工型对细胞内 Ca2+的亚毫摩尔变化敏感,因此是 Ca2+和 cAMP 相互作用的关键部位。有趣的是,这些 Ca2+调节的 AC 对细胞内等效的 Ca2+升高的反应并不相同,而是对 SOCE(储存操作的 Ca2+进入)的调节表现出显著的选择性。多年来,对这一现象的大量研究提供了间接证据,表明 Ca2+敏感的 AC 同工型与 SOCE 位点之间存在密切联系。现在,最近对 SOCE 的分子成分[即 STIM1(基质相互作用分子 1)和 Orai1]的鉴定,以及钙和 cAMP 的高分辨率靶向生物传感器的显著发展,为 Ca2+调节的 AC 相关细胞微区室的组织提供了第一个详细的见解。在本综述中,我总结了有助于我们对 SOCE 对 cAMP 信号的选择性调节有最明确认识的发现。