Bandyopadhyay Sanjoy, Chakraborty Sudip, Bagchi Biman
Molecular Modeling Laboratory, Department of Chemistry, Indian Institute of Technology, Kharagpur 721302, India.
J Chem Phys. 2006 Aug 28;125(8):084912. doi: 10.1063/1.2335451.
We have performed atomistic molecular dynamics simulations of aqueous solutions of HP-36 at 300 K in its native state, as well as at high temperatures to explore the unfolding dynamics of the protein and its correlation with the motion of water around it. On increasing the temperature a partially unfolded molten globule state is formed where the smallest alpha helix (helix 2) unfolds into a coil. It is observed that the unfolding is initiated around the residue Phe-18 which shows a sharp displacement during unfolding. We have noticed that the unfolding of the protein affects the density of water near the protein surface. Besides, the dynamics of water in the protein hydration layer has been found to be strongly correlated with the time evolution of the unfolding process. We have introduced and calculated a displacement time correlation function to monitor the change in water motion relative to the protein backbone during unfolding. We find that the unfolding of helix 2 is associated with an increase in mobility of water around it as compared to water around the other two helices. We have also explored the microscopic aspects of secondary structure specific and site specific solvation dynamics of the protein. The calculations reveal that unfolding influences the solvation dynamics of the protein molecule in a heterogeneous manner depending on the location of the polar probe residues. This seems to be in agreement with recent experimental findings.
我们对处于天然状态的HP - 36水溶液在300 K下以及在高温下进行了原子分子动力学模拟,以探究该蛋白质的解折叠动力学及其与周围水分子运动的相关性。随着温度升高,形成了一种部分解折叠的熔球态,其中最小的α螺旋(螺旋2)解折叠成无规卷曲。据观察,解折叠始于残基Phe - 18附近,该残基在解折叠过程中出现急剧位移。我们注意到蛋白质的解折叠会影响蛋白质表面附近水的密度。此外,已发现蛋白质水化层中的水动力学与解折叠过程的时间演化密切相关。我们引入并计算了一个位移时间关联函数,以监测解折叠过程中水分子相对于蛋白质主链运动的变化。我们发现,与其他两个螺旋周围的水相比,螺旋2的解折叠与其周围水的流动性增加有关。我们还探究了该蛋白质二级结构特异性和位点特异性溶剂化动力学的微观方面。计算结果表明,解折叠根据极性探针残基的位置以非均匀方式影响蛋白质分子的溶剂化动力学。这似乎与最近的实验结果一致。