Negi Sunita
Cluster Innovation Centre (CIC), University of Delhi, Delhi 110007, India.
J Biophys. 2014;2014:329703. doi: 10.1155/2014/329703. Epub 2014 Dec 9.
The response of the calmodulin (CaM) protein as a function of calcium ion removal, ionic strength, and temperature at physiological pH condition was investigated using classical molecular dynamics simulations. Changing the ionic strength and temperature came out to be two of the possible routes for observing a conformation change in the protein. This behavior is similar to the conformation change observed in our previous study where a change in the pH was observed to trigger a conformation change in this protein. In the present study, as the calcium ions are removed from the protein, the protein is observed to acquire more flexibility. This flexibility is observed to be more prominent at a higher ionic strength. At a lower ionic strength of 150 mM with all the four calcium ions intact, the N- and C-lobes are observed to come close to a distance of 30 Å starting from an initial separation distance of 48 Å. This conformation change is observed to take place around 50 ns in a simulation of 100 ns. As a second parameter, temperature is observed to play a key role in the conformation change of the protein. With an increase in the temperature, the protein is observed to acquire a more compact form with the formation of different salt bridges between the residues of the N- and the C-lobes. The salt bridge formation leads to an overall lowering of the energy of the protein thus favoring the bending of the two lobes towards each other. The improper and dihedral terms show a significant shift thus leading to a more compact form on increasing the temperature. Another set of simulations is also performed at an increased temperature of 500 K to verify the reproducibility of the results. Thus a set of three possible alterations in the environmental conditions of the protein CaM are studied, with two of them giving rise to a conformation change and one adding flexibility to the protein.
在生理pH条件下,利用经典分子动力学模拟研究了钙调蛋白(CaM)蛋白作为钙离子去除、离子强度和温度函数的响应。改变离子强度和温度是观察该蛋白构象变化的两种可能途径。这种行为类似于我们之前研究中观察到的构象变化,在该研究中观察到pH值的变化会触发该蛋白的构象变化。在本研究中,随着钙离子从蛋白中去除,观察到蛋白获得了更大的柔韧性。在较高的离子强度下,这种柔韧性更为明显。在150 mM的较低离子强度下,所有四个钙离子都完整时,观察到N叶和C叶从初始分离距离48 Å开始接近到30 Å的距离。在100 ns的模拟中,这种构象变化在大约50 ns时发生。作为第二个参数,观察到温度在蛋白的构象变化中起关键作用。随着温度升高,观察到蛋白形成更紧凑的形式,在N叶和C叶的残基之间形成不同的盐桥。盐桥的形成导致蛋白能量总体降低,从而有利于两个叶向彼此弯曲。非键合项和二面角项显示出显著变化,因此随着温度升高导致形成更紧凑的形式。还在500 K的升高温度下进行了另一组模拟,以验证结果的可重复性。因此,研究了蛋白CaM环境条件的一组三种可能变化,其中两种导致构象变化,一种增加了蛋白的柔韧性。