Mullershausen Florian, Russwurm Michael, Koesling Doris, Friebe Andreas
Institut für Pharmakologie und Toxikologie, Medizinische Fakultät, Ruhr-Universität Bochum, Bochum, Germany.
Mol Biol Cell. 2004 Sep;15(9):4023-30. doi: 10.1091/mbc.e03-12-0890. Epub 2004 Jul 7.
Most effects of the messenger molecule nitric oxide (NO) are mediated by cGMP, which is formed by NO-sensitive guanylyl cyclase (GC) and degraded by phosphodiesterases (PDEs). In platelets, NO elicits a spike-like cGMP response and causes a sustained desensitization. Both characteristics have been attributed to PDE5 activation caused by cGMP binding to its regulatory GAF domain. Activation is paralleled by phosphorylation whose precise function remains unknown. Here, we report reconstitution of all features of the NO-induced cGMP response in human embryonic kidney cells by coexpressing NO-sensitive GC and PDE5. The spike-like cGMP response was blunted when PDE5 phosphorylation was enhanced by additional overexpression of cGMP-dependent protein kinase. Analysis of PDE5 activation in vitro revealed a discrepancy between the cGMP concentrations required for activation (micromolar) and reversal of activation (nanomolar), indicating the conversion of a low-affinity state to a high-affinity state upon binding of cGMP. Phosphorylation even increased the high apparent affinity enabling PDE5 activation to persist at extremely low cGMP concentrations. Our data suggest that the spike-like shape and the desensitization of the cGMP response are potentially inherent to every GC- and PDE5-expressing cell. Phosphorylation of PDE5 seems to act as memory switch for activation leading to long-term desensitization of the signaling pathway.
信使分子一氧化氮(NO)的大多数作用是由环磷酸鸟苷(cGMP)介导的,cGMP由对NO敏感的鸟苷酸环化酶(GC)生成,并由磷酸二酯酶(PDEs)降解。在血小板中,NO引发类似尖峰的cGMP反应并导致持续脱敏。这两个特征都归因于cGMP与其调节性GAF结构域结合引起的PDE5激活。激活与磷酸化同时发生,其确切功能尚不清楚。在这里,我们报告通过共表达对NO敏感的GC和PDE5,在人胚肾细胞中重建了NO诱导的cGMP反应的所有特征。当通过额外过表达cGMP依赖性蛋白激酶增强PDE5磷酸化时,类似尖峰的cGMP反应减弱。体外对PDE5激活的分析揭示了激活所需的cGMP浓度(微摩尔)和激活逆转所需的浓度(纳摩尔)之间的差异,表明cGMP结合后低亲和力状态向高亲和力状态的转变。磷酸化甚至增加了高表观亲和力,使PDE5激活能够在极低的cGMP浓度下持续存在。我们的数据表明,cGMP反应的类似尖峰的形状和脱敏可能是每个表达GC和PDE5的细胞所固有的。PDE5的磷酸化似乎充当激活的记忆开关,导致信号通路的长期脱敏。