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Mechanism of Epac Activation: STRUCTURAL AND FUNCTIONAL ANALYSES OF Epac2 HINGE MUTANTS WITH CONSTITUTIVE AND REDUCED ACTIVITIES*

机译:Epac激活机制:具有本构和还原活性的Epac2铰链突变体的结构和功能分析*

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摘要

Epac2 is a member of the family of exchange proteins directly activated by cAMP (Epac). Our previous studies suggest a model of Epac activation in which cAMP binding to the enzyme induces a localized “hinge” motion that reorients the regulatory lobe relative to the catalytic lobe without inducing large conformational changes within individual lobes. In this study, we identified the location of the major hinge in Epac2 by normal mode motion correlation and structural alignment analyses. Targeted mutagenesis was then performed to test the functional importance of hinge bending for Epac activation. We show that substitution of the conserved residue phenylalanine 435 with glycine (F435G) facilitates the hinge bending and leads to a constitutively active Epac2 capable of stimulating nucleotide exchange in the absence of cAMP. In contrast, substitution of the same residue with a bulkier side chain, tryptophan (F435W), impedes the hinge motion and results in a dramatic decrease in Epac2 catalytic activity. Structural parameters determined by small angle x-ray scattering further reveal that whereas the F435G mutant assumes a more extended conformation in the absence of cAMP, the F435W mutant is incapable of adopting the fully extended and active conformation in the presence of cAMP. These findings demonstrate the importance of hinge motion in Epac activation. Our study also suggests that phenylalanine at position 435 is the optimal size side chain to keep Epac closed and inactive in the absence of cAMP while still allowing the proper hinge motion for full Epac extension and activation in the presence of cAMP.
机译:Epac2是直接由cAMP(Epac)激活的交换蛋白家族的成员。我们以前的研究提出了一种Epac激活模型,其中cAMP与酶的结合诱导了局部“铰链”运动,该运动使调节叶相对于催化叶重新定向,而不会在单个叶内引起大的构象变化。在这项研究中,我们通过正常模式运动相关性和结构对齐分析确定了Epac2中主要铰链的位置。然后进行定向诱变以测试铰链弯曲对于Epac激活的功能重要性。我们表明,用甘氨酸(F435G)取代保守残基苯丙氨酸435有助于铰链弯曲,并导致能够在不存在cAMP的情况下刺激核苷酸交换的组成型活性Epac2。相反,用更大的侧链色氨酸(F435W)取代相同残基会阻碍铰链运动,并导致Epac2催化活性急剧下降。通过小角度X射线散射确定的结构参数进一步揭示,尽管F435G突变体在不存在cAMP的情况下呈现出更广泛的构象,但F435W突变体在cAMP存在的情况下无法采用完全扩展的活性构象。这些发现证明了铰链运动在Epac激活中的重要性。我们的研究还表明,第435位的苯丙氨酸是最佳大小的侧链,可在没有cAMP的情况下保持Epac闭合和失活,同时在存在cAMP的情况下仍允许适当的铰链运动以使Epac完全伸展和活化。

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