Nelson Melanie R, Thulin Eva, Fagan Patricia A, Forsén Sture, Chazin Walter J
Department of Molecular Biology, The Scripps Research Institute, La Jolla, California 92037, USA.
Protein Sci. 2002 Feb;11(2):198-205. doi: 10.1110/ps.33302.
EF-hand Ca(2+)-binding proteins participate in both modulation of Ca(2+) signals and direct transduction of the ionic signal into downstream biochemical events. The range of biochemical functions of these proteins is correlated with differences in the way in which they respond to the binding of Ca(2+). The EF-hand domains of calbindin D(9k) and calmodulin are homologous, yet they respond to the binding of calcium ions in a drastically different manner. A series of comparative analyses of their structures enabled the development of hypotheses about which residues in these proteins control the calcium-induced changes in conformation. To test our understanding of the relationship between protein sequence and structure, we specifically designed the F36G mutation of the EF-hand protein calbindin D(9k) to alter the packing of helices I and II in the apoprotein. The three-dimensional structure of apo F36G was determined in solution by nuclear magnetic resonance spectroscopy and showed that the design was successful. Surprisingly, significant structural perturbations also were found to extend far from the site of mutation. The observation of such long-range effects provides clear evidence that four-helix EF-hand domains should be treated as a single globally cooperative unit. A hypothetical mechanism for how the long-range effects are transmitted is described. Our results support the concept of energetic and structural coupling of the key residues that are crucial for a protein's fold and function.
EF 手型钙离子结合蛋白既参与钙离子信号的调节,又参与将离子信号直接转导至下游生化事件。这些蛋白的生化功能范围与它们对钙离子结合的响应方式差异相关。钙结合蛋白 D(9k) 和钙调蛋白的 EF 手型结构域具有同源性,但它们对钙离子结合的响应方式却截然不同。对它们结构的一系列比较分析使得能够提出关于这些蛋白中哪些残基控制钙诱导的构象变化的假说。为了检验我们对蛋白质序列与结构之间关系的理解,我们特意设计了 EF 手型蛋白钙结合蛋白 D(9k) 的 F36G 突变,以改变脱辅基蛋白中螺旋 I 和螺旋 II 的堆积。通过核磁共振光谱法在溶液中测定了脱辅基 F36G 的三维结构,结果表明设计是成功的。令人惊讶的是,还发现显著的结构扰动延伸到远离突变位点的区域。这种远程效应的观察提供了明确的证据,表明四螺旋 EF 手型结构域应被视为一个单一的全局协同单元。描述了一种关于远程效应如何传递的假说机制。我们的结果支持了对于蛋白质折叠和功能至关重要的关键残基的能量和结构耦合的概念。