Chong Song-Ho, Ham Sihyun
Department of Chemistry, Sookmyung Women's University , Cheongpa-ro 47-gil 100, Yongsan-Ku, Seoul 140-742, Korea.
J Phys Chem B. 2015 Oct 1;119(39):12623-31. doi: 10.1021/acs.jpcb.5b07060. Epub 2015 Sep 16.
Quantifying how the rugged nature of the underlying free-energy landscape determines the entropic cost a protein must incur upon folding and ligand binding is a challenging problem. Here, we present a novel computational approach that dissects the protein configurational entropy on the basis of the classification of protein dynamics on the landscape into two separate components: short-term vibrational dynamics related to individual free-energy wells and long-term conformational dynamics associated with transitions between wells. We apply this method to separate the configurational entropy of the protein villin headpiece subdomain into its conformational and vibrational components. We find that the change in configurational entropy upon folding is dominated by the conformational entropy despite the fact that the magnitude of the vibrational entropy is the significantly larger component in each of the folded and unfolded states, which is in accord with the previous empirical estimations. The straightforward applicability of our method to unfolded proteins promises a wide range of applications, including those related to intrinsically disordered proteins.
量化潜在自由能景观的崎岖性质如何决定蛋白质在折叠和配体结合时必须付出的熵成本是一个具有挑战性的问题。在这里,我们提出了一种新颖的计算方法,该方法基于将景观上的蛋白质动力学分类为两个独立的组件来剖析蛋白质构型熵:与单个自由能阱相关的短期振动动力学和与阱之间的转变相关的长期构象动力学。我们应用此方法将蛋白质绒毛蛋白头部结构域的构型熵分离为其构象和振动成分。我们发现,尽管振动熵的大小在折叠态和未折叠态中都是明显更大的成分,但折叠时构型熵的变化主要由构象熵主导,这与先前的经验估计一致。我们的方法对未折叠蛋白质的直接适用性有望带来广泛的应用,包括与内在无序蛋白质相关的应用。