Zanetti-Polzi Laura, Corni Stefano, Daidone Isabella, Amadei Andrea
Department of Physical and Chemical Sciences, University of L'Aquila, via Vetoio (Coppito 1), 67010, L'Aquila, Italy.
Phys Chem Chem Phys. 2016 Jul 21;18(27):18450-9. doi: 10.1039/c6cp03394f. Epub 2016 Jun 24.
Here, a methodology is proposed to investigate the collective fluctuation modes of an arbitrary set of observables, maximally contributing to the fluctuation of another functionally relevant observable. The methodology, based on the analysis of fully classical molecular dynamics (MD) simulations, exploits the essential dynamics (ED) method, originally developed to analyse the collective motions in proteins. We apply this methodology to identify the residues that are more relevant for determining the reduction potential (E(0)) of a redox-active protein. To this aim, the fluctuation modes of the single-residue electrostatic potentials mostly contributing to the fluctuations of the total electrostatic potential (the main determinant of E(0)) are investigated for wild-type azurin and two of its mutants with a higher E(0). By comparing the results here obtained with a previous study on the same systems [Zanetti-Polzi et al., Org. Biomol. Chem., 2015, 13, 11003] we show that the proposed methodology is able to identify the key sites that determine E(0). This information can be used for a general deeper understanding of the molecular mechanisms on the basis of the redox properties of the proteins under investigation, as well as for the rational design of mutants with a higher or lower E(0). From the results of the present analysis we propose a new azurin mutant that, according to our calculations, shows a further increase of E(0).
本文提出了一种方法,用于研究任意一组可观测量的集体涨落模式,这些模式对另一个功能相关的可观测量的涨落贡献最大。该方法基于对完全经典分子动力学(MD)模拟的分析,利用了最初为分析蛋白质中的集体运动而开发的本质动力学(ED)方法。我们应用这种方法来确定对氧化还原活性蛋白的还原电位(E(0))更具相关性的残基。为此,研究了野生型天青蛋白及其两个具有较高E(0)的突变体中,单个残基静电势的涨落模式对总静电势(E(0)的主要决定因素)涨落的最大贡献。通过将此处获得的结果与之前对相同系统的研究[Zanetti-Polzi等人, Org. Biomol. Chem., 2015, 13, 11003]进行比较,我们表明所提出的方法能够识别决定E(0)的关键位点。这些信息可用于在更深入理解所研究蛋白质氧化还原特性的基础上,全面了解分子机制,也可用于合理设计具有更高或更低E(%)的突变体。根据本分析结果,我们提出了一种新的天青蛋白突变体,根据我们的计算,该突变体显示出E(0)的进一步增加。