Drake S K, Zimmer M A, Kundrot C, Falke J J
Department of Chemistry and Biochemistry, University of Colorado, Boulder, Colorado 80309-0215, USA.
J Gen Physiol. 1997 Aug;110(2):173-84. doi: 10.1085/jgp.110.2.173.
Calcium binding and signaling orchestrate a wide variety of essential cellular functions, many of which employ the EF-hand Ca2+ binding motif. The ion binding parameters of this motif are controlled, in part, by the structure of its Ca2+ binding loop, termed the EF-loop. The EF-loops of different proteins are carefully specialized, or fine-tuned, to yield optimized Ca2+ binding parameters for their unique cellular roles. The present study uses a structurally homologous Ca2+ binding loop, that of the Escherichia coli galactose binding protein, as a model for the EF-loop in studies examining the contribution of the third loop position to intramolecular tuning. 10 different side chains are compared at the third position of the model EF-loop with respect to their effects on protein stability, sugar binding, and metal binding equilibria and kinetics. Substitution of an acidic Asp side chain for the native Asn is found to generate a 6,000-fold increase in the ion selectivity for trivalent over divalent cations, providing strong support for the electrostatic repulsion model of divalent cation charge selectivity. Replacement of Asn by neutral side chains differing in size and shape each alter the ionic size selectivity in a similar manner, supporting a model in which large-ion size selectivity is controlled by complex interactions between multiple side chains rather than by the dimensions of a single coordinating side chain. Finally, the pattern of perturbations generated by side chain substitutions helps to explain the prevalence of Asn and Asp at the third position of natural EF-loops and provides further evidence supporting the unique kinetic tuning role of the gateway side chain at the ninth EF-loop position.
钙结合与信号传导协调着多种重要的细胞功能,其中许多功能都利用了EF手型Ca2+结合基序。该基序的离子结合参数部分受其Ca2+结合环(称为EF环)结构的控制。不同蛋白质的EF环经过精心特化或微调,以产生适合其独特细胞作用的优化Ca2+结合参数。本研究使用结构同源的Ca2+结合环,即大肠杆菌半乳糖结合蛋白的结合环,作为EF环的模型,研究第三环位置对分子内调节的贡献。在模型EF环的第三个位置比较了10种不同的侧链,研究它们对蛋白质稳定性、糖结合以及金属结合平衡和动力学的影响。发现用酸性天冬氨酸侧链取代天然的天冬酰胺会使三价阳离子对二价阳离子的离子选择性提高6000倍,这为二价阳离子电荷选择性的静电排斥模型提供了有力支持。用大小和形状不同的中性侧链取代天冬酰胺,每种都会以类似的方式改变离子大小选择性,这支持了一种模型,即大离子大小选择性是由多个侧链之间的复杂相互作用控制的,而不是由单个配位侧链的尺寸控制的。最后,侧链取代产生的扰动模式有助于解释天然EF环第三个位置上天冬酰胺和天冬氨酸的普遍存在,并提供了进一步的证据,支持第九个EF环位置上的通道侧链具有独特的动力学调节作用。