Erwin Nelli, Patra Satyajit, Winter Roland
Physical Chemistry I - Biophysical Chemistry, Faculty of Chemistry and Chemical Biology, TU Dortmund University, Otto-Hahn-Strasse 4a, D-44227 Dortmund, Germany.
Phys Chem Chem Phys. 2016 Nov 21;18(43):30020-30028. doi: 10.1039/c6cp06553h. Epub 2016 Oct 24.
The ubiquitous Ca-sensing protein calmodulin (CaM) interacts with more than 300 diverse target proteins that are involved in numerous signaling pathways in eukaryotic cells. This unique promiscuous target binding behavior and the underlying functional versatility of CaM is a result of its structural flexibility. CaM spans multiple conformational substates in solution providing adaptable binding surfaces for different target proteins. The conformational space of this protein needs to be explored to shed more light on the mechanism of target recognition and protein function. Here, we used pressure modulation in combination with FTIR spectroscopy to populate and probe otherwise transient low-lying excited conformational substates of CaM close in energy to its ground state, which are supposed to be functionally relevant in recognition and ligand binding events. The pressure-induced conformational changes of CaM were studied in its Ca-free and Ca-bound state and in the presence of the hypervariable region (HVR) of the signaling peptide K-Ras4B as a binding partner. We demonstrate that the conformational dynamics of CaM is vastly affected by binding of both Ca ions and the lipidated signaling peptide K-Ras4B. Moreover, we could uncover conformational substates of CaM by pressure perturbation that are partially unfolded and more solvated and conceivably facilitate target recognition by exposing the required binding surfaces.
普遍存在的钙传感蛋白钙调蛋白(CaM)与300多种不同的靶蛋白相互作用,这些靶蛋白参与真核细胞中的众多信号通路。CaM这种独特的多靶点结合行为及其潜在的功能多样性是其结构灵活性的结果。CaM在溶液中跨越多个构象亚态,为不同的靶蛋白提供适应性结合表面。需要探索这种蛋白质的构象空间,以更深入地了解靶标识别机制和蛋白质功能。在这里,我们结合使用压力调制和傅里叶变换红外光谱(FTIR)来填充和探测CaM能量上接近其基态的其他瞬态低激发构象亚态,这些亚态被认为在识别和配体结合事件中具有功能相关性。在无钙和钙结合状态下,以及在作为结合伙伴的信号肽K-Ras4B的高变区(HVR)存在的情况下,研究了压力诱导的CaM构象变化。我们证明,CaM的构象动力学受到钙离子和脂化信号肽K-Ras4B结合的极大影响。此外,我们可以通过压力扰动揭示CaM的构象亚态,这些亚态部分展开且溶剂化程度更高,并且可以通过暴露所需的结合表面促进靶标识别。