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环腺苷酸感应器 Epac2 的激活机制:酰胺氢/氘交换质谱法(DXMS)鉴定的 cAMP 诱导构象变化。

Mechanism of intracellular cAMP sensor Epac2 activation: cAMP-induced conformational changes identified by amide hydrogen/deuterium exchange mass spectrometry (DXMS).

机构信息

Department of Medicine and Biomedical Sciences Graduate program, University of California, San Diego, La Jolla, California 92093-0656, USA.

出版信息

J Biol Chem. 2011 May 20;286(20):17889-97. doi: 10.1074/jbc.M111.224535. Epub 2011 Mar 17.

Abstract

Epac2, a guanine nucleotide exchange factor, regulates a wide variety of intracellular processes in response to second messenger cAMP. In this study, we have used peptide amide hydrogen/deuterium exchange mass spectrometry to probe the solution structural and conformational dynamics of full-length Epac2 in the presence and absence of cAMP. The results support a mechanism in which cAMP-induced Epac2 activation is mediated by a major hinge motion centered on the C terminus of the second cAMP binding domain. This conformational change realigns the regulatory components of Epac2 away from the catalytic core, making the later available for effector binding. Furthermore, the interface between the first and second cAMP binding domains is highly dynamic, providing an explanation of how cAMP gains access to the ligand binding sites that, in the crystal structure, are seen to be mutually occluded by the other cAMP binding domain. Moreover, cAMP also induces conformational changes at the ionic latch/hairpin structure, which is directly involved in RAP1 binding. These results suggest that in addition to relieving the steric hindrance imposed upon the catalytic lobe by the regulatory lobe, cAMP may also be an allosteric modulator directly affecting the interaction between Epac2 and RAP1. Finally, cAMP binding also induces significant conformational changes in the dishevelled/Egl/pleckstrin (DEP) domain, a conserved structural motif that, although missing from the active Epac2 crystal structure, is important for Epac subcellular targeting and in vivo functions.

摘要

Epac2 是一种鸟嘌呤核苷酸交换因子,可响应第二信使 cAMP 调节多种细胞内过程。在本研究中,我们使用肽酰胺氘氢交换质谱法探测全长 Epac2 在 cAMP 存在和不存在的情况下的溶液结构和构象动力学。结果支持这样一种机制,即 cAMP 诱导的 Epac2 激活是通过以第二个 cAMP 结合域的 C 末端为中心的主要铰链运动介导的。这种构象变化使 Epac2 的调节成分重新定向远离催化核心,从而使后者可用于效应子结合。此外,第一和第二 cAMP 结合域之间的界面具有高度动态性,解释了 cAMP 如何获得配体结合位点的访问权限,在晶体结构中,这些配体结合位点被另一个 cAMP 结合域相互阻塞。此外,cAMP 还诱导离子闩锁/发夹结构发生构象变化,该结构直接参与 RAP1 结合。这些结果表明,除了缓解由调节域对催化域施加的空间位阻外,cAMP 还可能是一种直接影响 Epac2 和 RAP1 相互作用的别构调节剂。最后,cAMP 结合还会引起 Dbl 同源物(DOCK)结构域、埃格/pleckstrin(Egl/PLEK)结构域和富含脯氨酸的结构域的显著构象变化,尽管 Dbl 同源物(DOCK)结构域缺失于活性 Epac2 晶体结构中,但对于 Epac2 亚细胞定位和体内功能非常重要。

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