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错义突变影响 GCAP1 中的钙配位,通过改变蛋白质的结构和功能特性导致视锥-视杆营养不良。

Missense mutations affecting Ca-coordination in GCAP1 lead to cone-rod dystrophies by altering protein structural and functional properties.

机构信息

Department of Neurosciences, Biomedicine and Movement Sciences, Section of Biological Chemistry, University of Verona, I-37134 Verona, Italy.

CNR-IBF, Istituto di Biofisica, Via Celoria 26, I-20133 Milano, Italy; Dipartimento di Bioscienze, Università di Milano, Via Celoria 26, I-20133 Milano, Italy.

出版信息

Biochim Biophys Acta Mol Cell Res. 2020 Oct;1867(10):118794. doi: 10.1016/j.bbamcr.2020.118794. Epub 2020 Jul 7.

Abstract

Guanylate cyclase activating protein 1 (GCAP1) is a neuronal calcium sensor (NCS) involved in the early biochemical steps underlying the phototransduction cascade. By switching from a Ca-bound form in the dark to a Mg-bound state following light activation of the cascade, GCAP1 triggers the activation of the retinal guanylate cyclase (GC), thus replenishing the levels of 3',5'-cyclic monophosphate (cGMP) necessary to re-open CNG channels. Here, we investigated the structural and functional effects of three missense mutations in GCAP1 associated with cone-rod dystrophy, which severely perturb the homeostasis of cGMP and Ca. Substitutions affect residues directly involved in Ca coordination in either EF3 (D100G) or EF4 (E155A and E155G) Ca binding motifs. We found that all GCAP1 variants form relatively stable dimers showing decreased apparent affinity for Ca and blocking the enzyme in a constitutively active state at physiological levels of Ca. Interestingly, by corroborating spectroscopic experiments with molecular dynamics simulations we show that beside local structural effects, mutation of the bidentate glutamate in an EF-hand calcium binding motif can profoundly perturb the flexibility of the adjacent EF-hand as well, ultimately destabilizing the whole domain. Therefore, while Ca-binding to GCAP1 per se occurs sequentially, allosteric effects may connect EF hand motifs, which appear to be essential for the integrity of the structural switch mechanism in GCAP1, and perhaps in other NCS proteins.

摘要

鸟苷酸环化酶激活蛋白 1(GCAP1)是一种神经元钙传感器(NCS),参与光转化级联反应的早期生化步骤。通过在级联反应的光激活后从黑暗中的 Ca 结合形式转变为 Mg 结合状态,GCAP1 触发视网膜鸟苷酸环化酶(GC)的激活,从而补充 3',5'-环单磷酸(cGMP)的水平,这是重新打开 CNG 通道所必需的。在这里,我们研究了与 Cone-Rod 营养不良相关的 GCAP1 中的三种错义突变的结构和功能影响,这些突变严重扰乱了 cGMP 和 Ca 的动态平衡。取代影响直接参与 EF3(D100G)或 EF4(E155A 和 E155G)Ca 结合基序中的 Ca 协调的残基。我们发现,所有 GCAP1 变体都形成相对稳定的二聚体,显示出对 Ca 的表观亲和力降低,并在生理 Ca 水平下以组成性激活状态阻断酶。有趣的是,通过用分子动力学模拟来证实光谱实验,我们表明,除了局部结构效应之外,双齿谷氨酸在 EF 手钙结合基序中的突变也可以深刻地扰乱相邻 EF 手的灵活性,最终使整个结构域不稳定。因此,虽然 GCAP1 本身的 Ca 结合是顺序发生的,但变构效应可能会连接 EF 手基序,这对于 GCAP1 中的结构转换机制的完整性以及其他 NCS 蛋白的完整性可能是必要的。

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