Molecular Cancer Research, University Medical Center Utrecht, 3584 CG, Utrecht, The Netherlands.
Proc Natl Acad Sci U S A. 2012 Mar 6;109(10):3814-9. doi: 10.1073/pnas.1117599109. Epub 2012 Feb 16.
Epac1 is a cAMP-regulated guanine nucleotide exchange factor for the small G protein Rap. Upon cAMP binding, Epac1 undergoes a conformational change that results in its release from autoinhibition. In addition, cAMP induces the translocation of Epac1 from the cytosol to the plasma membrane. This relocalization of Epac1 is required for efficient activation of plasma membrane-located Rap and for cAMP-induced cell adhesion. This translocation requires the Dishevelled, Egl-10, Pleckstrin (DEP) domain, but the molecular entity that serves as the plasma membrane anchor and the possible mechanism of regulated binding remains elusive. Here we show that Epac1 binds directly to phosphatidic acid. Similar to the cAMP-induced Epac1 translocation, this binding is regulated by cAMP and requires the DEP domain. Furthermore, depletion of phosphatidic acid by inhibition of phospholipase D1 prevents cAMP-induced translocation of Epac1 as well as the subsequent activation of Rap at the plasma membrane. Finally, mutation of a single basic residue within a polybasic stretch of the DEP domain, which abolishes translocation, also prevents binding to phosphatidic acid. From these results we conclude that cAMP induces a conformational change in Epac1 that enables DEP domain-mediated binding to phosphatidic acid, resulting in the tethering of Epac1 at the plasma membrane and subsequent activation of Rap.
Epac1 是一种 cAMP 调节的鸟嘌呤核苷酸交换因子,作用于小分子 G 蛋白 Rap。cAMP 结合后,Epac1 发生构象变化,从而使其从自身抑制中释放出来。此外,cAMP 诱导 Epac1 从细胞质向质膜易位。Epac1 的这种重定位对于有效激活质膜定位的 Rap 和 cAMP 诱导的细胞黏附是必需的。这种易位需要 Dishevelled、Egl-10、Pleckstrin(DEP)结构域,但作为质膜锚定的分子实体和可能的调节结合机制仍不清楚。在这里,我们表明 Epac1 直接结合于磷酸脂酸。与 cAMP 诱导的 Epac1 易位类似,这种结合受 cAMP 调节,需要 DEP 结构域。此外,通过抑制磷脂酶 D1 耗竭磷酸脂酸可防止 cAMP 诱导的 Epac1 易位以及随后在质膜上 Rap 的激活。最后,DEP 结构域中多碱性片段内一个碱性残基的突变,可阻止易位,也可阻止与磷酸脂酸的结合。从这些结果我们得出结论,cAMP 诱导 Epac1 的构象变化,从而使 DEP 结构域介导与磷酸脂酸结合,导致 Epac1 在质膜上的固定以及随后 Rap 的激活。