Department of Physiology, Semmelweis University Medical School, POB 2, Budapest, 1428, Hungary.
MTA-SE Laboratory of Molecular Physiology, Semmelweis University, Hungarian Academy of Sciences, Budapest, Hungary.
Pflugers Arch. 2018 Aug;470(8):1141-1148. doi: 10.1007/s00424-018-2157-5. Epub 2018 Jun 6.
The biological effects of physiological stimuli of adrenocortical glomerulosa cells are predominantly mediated by the Ca and the cAMP signal transduction pathways. The complex interplay between these signalling systems fine-tunes aldosterone secretion. In addition to the well-known cytosolic interactions, a novel intramitochondrial Ca-cAMP interplay has been recently recognised. The cytosolic Ca signal is rapidly transferred into the mitochondrial matrix where it activates Ca-sensitive dehydrogenases, thus enhancing the formation of NADPH, a cofactor of steroid synthesis. Quite a few cell types, including H295R adrenocortical cells, express the soluble adenylyl cyclase within the mitochondria and the elevation of mitochondrial [Ca] activates the enzyme, thus resulting in the Ca-dependent formation of cAMP within the mitochondrial matrix. On the other hand, mitochondrial cAMP (mt-cAMP) potentiates the transfer of cytosolic Ca into the mitochondrial matrix. This cAMP-mediated positive feedback control of mitochondrial Ca uptake may facilitate the rapid hormonal response to emergency situations since knockdown of soluble adenylyl cyclase attenuates aldosterone production whereas overexpression of the enzyme facilitates steroidogenesis in vitro. Moreover, the mitochondrial Ca-mt-cAMP-Ca uptake feedback loop is not a unique feature of adrenocortical cells; a similar signalling system has been described in HeLa cells as well.
球状带细胞的肾上腺皮质的生理刺激的生物学效应主要通过 Ca 和 cAMP 信号转导途径介导。这些信号系统的复杂相互作用精细地调节醛固酮的分泌。除了众所周知的细胞质相互作用外,最近还认识到了一种新的线粒体 Ca-cAMP 相互作用。细胞质 Ca 信号迅速转移到线粒体基质中,在那里它激活 Ca 敏感的脱氢酶,从而增强 NADPH 的形成,NADPH 是类固醇合成的辅助因子。包括 H295R 肾上腺皮质细胞在内的许多细胞类型在线粒体中表达可溶性腺苷酸环化酶,线粒体 [Ca] 的升高激活酶,从而导致线粒体基质中 cAMP 的 Ca 依赖性形成。另一方面,线粒体 cAMP(mt-cAMP)增强细胞质 Ca 向线粒体基质的转移。这种 cAMP 介导的线粒体 Ca 摄取的正反馈控制可能有助于快速应对紧急情况的激素反应,因为敲低可溶性腺苷酸环化酶会减弱醛固酮的产生,而酶的过表达则有利于体外类固醇生成。此外,线粒体 Ca-mt-cAMP-Ca 摄取反馈环不是肾上腺皮质细胞的独特特征;在 HeLa 细胞中也描述了类似的信号系统。