Cates M Susan, Teodoro Miguel L, Phillips George N
Department of Biochemistry and Cell Biology, Rice University, Houston, Texas 77005, USA.
Biophys J. 2002 Mar;82(3):1133-46. doi: 10.1016/S0006-3495(02)75472-6.
Molecular dynamics simulations have been used to investigate the relationship between the coordinating residues of the EF-hand calcium binding loop of parvalbumin and the overall plasticity and flexibility of the protein. The first simulation modeled the transition from Ca(2+) to Mg(2+) coordination by varying the van der Waals parameters for the bound metal ions. The glutamate at position 12 could be accurately and reversibly seen to be a source of selective bidentate ligation of Ca(2+) in the simulations. A second simulation correlated well with the experimental observation that an E101D substitution at EF loop position 12 results in a dramatically less tightly bound monodentate Ca(2+) coordination by aspartate. A final set of simulations investigated Ca(2+) binding in the E101D mutant loop in the presence of applied external forces designed to impose bidentate coordination. The results of these simulations illustrate that the aspartate is capable of attaining a suitable orientation for bidentate coordination, thus implying that it is the inherent rigidity of the loop that prevents bidentate coordination in the parvalbumin E101D mutant.
分子动力学模拟已被用于研究小白蛋白EF手型钙结合环的配位残基与蛋白质整体可塑性和灵活性之间的关系。第一个模拟通过改变结合金属离子的范德华参数来模拟从Ca(2+)配位到Mg(2+)配位的转变。在模拟中,可以准确且可逆地看到第12位的谷氨酸是Ca(2+)选择性双齿配位的来源。第二个模拟与实验观察结果高度相关,即EF环第12位的E101D取代导致天冬氨酸与Ca(2+)的单齿配位显著变弱。最后一组模拟研究了在施加旨在实现双齿配位的外力情况下,E101D突变环中的Ca(2+)结合。这些模拟结果表明,天冬氨酸能够获得适合双齿配位的取向,因此意味着是环的固有刚性阻止了小白蛋白E101D突变体中的双齿配位。