Department of Chemistry, Indian Institute of Technology Tirupati, Yerpedu, Tirupati, Andhra Pradesh, India 517619.
J Phys Chem B. 2024 Feb 1;128(4):973-984. doi: 10.1021/acs.jpcb.3c07089. Epub 2024 Jan 18.
Metalloproteins make up a class of proteins that incorporate metal ions into their structures, enabling them to perform essential functions in biological systems, such as catalysis and electron transport. Azurin is one such metalloprotein with copper cofactor, having a β-barrel structure with exceptional thermal stability. The copper metal ion is coordinated at one end of the β-barrel structure, and there is a disulfide bond at the opposite end. In this study, we explore the effect of this disulfide bond in the high thermal stability of azurin by analyzing both the S-S bonded and S-S nonbonded () forms using temperature replica exchange molecular dynamics (REMD). Similar to experimental observations, we find a 35 K decrease in denaturation temperature for azurin compared to that of the form (420 K). As observed in the case of azurin, the unfolding process of the form also started with disruptions of the α-helix. The free energy surfaces of the unfolding process revealed that the denaturation event of the form progresses through different sets of conformational ensembles. Subsequently, we compared the stabilities of individual β-sheet strands of both the S-S bonded and the S-S nonbonded forms of azurin. Further, we examined the contacts between individual residues for the central structures from the free energy surfaces of the S-S nonbonded form. The microscopic origin of the lowering in the denaturation temperature is further supplemented by thermodynamic analysis.
金属蛋白是一类将金属离子纳入其结构的蛋白质,使它们能够在生物系统中发挥重要功能,如催化和电子传递。天青蛋白就是这样一种含有铜辅因子的金属蛋白,具有独特的热稳定性的β-桶结构。铜金属离子在β-桶结构的一端配位,在另一端有一个二硫键。在这项研究中,我们通过使用温度复制交换分子动力学(REMD)分析 S-S 键合和 S-S 非键合()形式,来探索二硫键对天青蛋白高热稳定性的影响。与实验观察结果相似,我们发现与 形式(420 K)相比, 形式的变性温度降低了 35 K(420 K)。与 形式的情况一样, 形式的展开过程也始于α-螺旋的破坏。展开过程的自由能表面表明, 形式的变性事件通过不同的构象集合进行。随后,我们比较了天青蛋白的 S-S 键合和 S-S 非键合形式的单个β-折叠链的稳定性。此外,我们从 S-S 非键合形式的自由能表面检查了中心结构中各个残基之间的接触。通过热力学分析进一步补充了降低变性温度的微观起源。