Jackson M B
Biophys J. 1987 Feb;51(2):313-21. doi: 10.1016/S0006-3495(87)83337-4.
The question of how specific contacts within a protein influence its stability and structure is examined within a formal theoretical framework. A mathematical model is developed in which the potential energy of a protein is taken as a harmonic expansion of all of its internal or normal coordinates. With classical statistical mechanics the properties of the system can be derived from this potential energy function. A few new contacts are then introduced as additional energy terms, each having a quadratic dependence on a single internal coordinate. These terms are added as perturbations to the original potential energy, and the attendant changes in the properties of the system are obtained. Exact expressions can be derived for changes in the enthalpy, entropy, and for any arbitrary internal degree of freedom. These quantities are expressed in terms of the parameters of the potential energy functions of the new contacts, and the mean square displacements and positional correlation functions of the internal coordinates. These results provide qualitative insights into the role of contacts in stabilizing a particular conformation. Estimates are given for the entropy of formation of a hydrogen bond in a protein. A criterion is proposed for determining whether a contact is essential to the stability of a protein conformation. This model may be applicable to many experimental systems in which mutant or modified proteins are available that differ by one or a few amino acids. The results may also be useful in thermodynamic analyses of computer simulations.
在一个正式的理论框架内,研究了蛋白质内特定接触如何影响其稳定性和结构的问题。建立了一个数学模型,其中蛋白质的势能被视为其所有内部或正常坐标的谐波展开。利用经典统计力学,可以从这个势能函数推导出系统的性质。然后引入一些新的接触作为额外的能量项,每个能量项对单个内部坐标具有二次依赖性。这些项作为对原始势能的微扰加入,从而得到系统性质随之发生的变化。可以推导出焓、熵以及任何任意内部自由度变化的精确表达式。这些量用新接触的势能函数参数、内部坐标的均方位移和位置相关函数来表示。这些结果为接触在稳定特定构象中的作用提供了定性的见解。给出了蛋白质中氢键形成熵的估计值。提出了一个标准来确定一个接触对蛋白质构象的稳定性是否至关重要。该模型可能适用于许多实验系统,在这些系统中可以获得相差一个或几个氨基酸的突变或修饰蛋白质。这些结果在计算机模拟的热力学分析中也可能有用。