Mobility capillary electrophoresis–native mass spectrometry reveals the dynamic conformational equilibrium of calmodulin and its complexes†

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analyst Pub Date : 2024-05-24 DOI:10.1039/D4AN00378K
Yi Zhao, Wenjing Zhang, Jie Hong, Lei Yang, Yuanyuan Wang, Feng Qu and Wei Xu
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Abstract

Benefitting from the rapid evolution of artificial intelligence and structural biology, an expanding collection of high-resolution protein structures has greatly improved our understanding of protein functions. Yet, proteins are inherently flexible, and these static structures can only offer limited snapshots of their true dynamic nature. The conformational and functional changes of calmodulin (CaM) induced by Ca2+ binding have always been a focus of research. In this study, the conformational dynamics of CaM and its complexes were investigated using a mobility capillary electrophoresis (MCE) and native mass spectrometry (native MS) based method. By analyzing the ellipsoidal geometries of CaM in the solution phase at different Ca2+ concentrations, it is interesting to discover that CaM molecules, whether bound to Ca2+ or not, possess both closed and open conformations. Moreover, each individual CaM molecule actively “jumps” (equilibrium exchange) between these two distinct conformations on a timescale ranging from milli- to micro-seconds. The binding of Ca2+ ions did not affect the structural dynamics of CaM, while the binding of a peptide ligand would stabilize CaM, leading to the observation of a single, compact conformation of the resulting protein complex. A target recognition mechanism was also proposed based on these new findings, suggesting that CaM's interaction with targets may favor a conformational selection model. This enriches our understanding of the binding principles between CaM and its numerous targets.

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移动毛细管电泳-原位质谱法揭示钙调蛋白及其复合物的动态构象平衡
得益于人工智能和结构生物学的快速发展,高分辨率蛋白质结构的收集范围不断扩大,大大提高了我们对蛋白质功能的认识。然而,蛋白质本身是灵活的,这些静态结构只能提供其真实动态性质的有限快照。钙调蛋白(CaM)在 Ca2+ 结合下的构象和功能变化一直是研究的重点。本研究采用基于迁移率毛细管电泳(MCE)和原生质谱(native MS)的方法研究了 CaM 及其复合物的构象动态。通过分析不同 Ca2+ 浓度下 CaM 在溶液相中的椭圆形几何结构,我们发现 CaM 分子无论是否与 Ca2+ 结合,都同时具有封闭和开放两种构象。此外,每个 CaM 分子都会在这两种不同构象之间主动 "跳跃"(平衡交换),时间尺度从毫秒到微秒不等。Ca2+ 离子的结合不会影响 CaM 的结构动态;而肽配体的结合则会稳定 CaM,从而观察到由此产生的蛋白质复合物具有单一、紧凑的构象。根据这些新发现还提出了一种目标识别机制,表明 CaM 与目标的相互作用可能有利于构象选择模型。这丰富了我们对 CaM 与其众多靶标之间结合原理的理解。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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