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Coherent Microscopic Picture for Urea-Induced Denaturation of Proteins

机译:尿素诱导蛋白质变性的相干显微照片

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In a previous study, we explored the mechanism of urea-induced denaturation of proteins by performing molecular dynamics (MD) simulations of hen lysozyme in 8 M urea and supported the "direct interaction mechanism" whereby urea denatures protein via dispersion interaction (Hua, L.; Zhou, R. H.; Thirumalai, D.; Berne, B. J. Proc. Natl Acad. Sci. USA. 2008, 105, 16928). Here we perform large scale MD simulations of five representative protein/peptide systems in aqueous urea to investigate if the above mechanism is common to other proteins. In all cases, accumulations of urea around proteins/peptide are observed, suggesting that urea denatures proteins by directly attacking protein backbones and side chains rather than indirectly disrupting water structure as a "water breaker". Consistent with our previous case study of lysozyme, the current energetic analyses with five protein/peptide systems reveal that urea's preferential binding to proteins mainly comes from urea's stronger dispersion interactions with proteins than with bulk solution, whereas the electrostatic (hydrogen-bonded) interactions only play a relatively minor (even negative) role during this denaturation process. Furthermore, the simulations of the peptide system at different urea concentrations (8 and 4.5 M), and with different force fields (CHARMM and OPLSAA) suggest that the above mechanism is robust, independent of the urea concentration and force field used. Last, we emphasize the importance of periodic boundary conditions in pairwise energetic analyses, This article provides a comprehensive study on the physical mechanism of urea-induced protein denaturation and suggests that the "dispersion-interaction-driven" mechanism should be general.
机译:在先前的研究中,我们通过对8 M尿素中的鸡溶菌酶进行分子动力学(MD)模拟,探索了尿素诱导的蛋白质变性机制,并支持“直接相互作用机制”,其中尿素通过分散相互作用使蛋白质变性(Hua,L 。; Zhou,RH; Thirumalai,D .; B.Berne,BJ Proc.Natl Acad.Sci.USA.2008,105,16928)。在这里,我们对尿素水溶液中的五个代表性蛋白质/肽系统进行大规模MD模拟,以研究上述机制是否与其他蛋白质相同。在所有情况下,观察到尿素在蛋白质/肽周围的积累,表明尿素通过直接攻击蛋白质主链和侧链而不是间接破坏水结构作为“破水剂”使蛋白质变性。与我们之前对溶菌酶的案例研究一致,目前对五个蛋白质/肽系统的能量分析表明,尿素与蛋白质的优先结合主要是由于尿素与蛋白质的分散作用比本体溶液更强,而静电作用(氢键作用)在变性过程中起相对较小的作用(甚至是负面作用)。此外,在不同尿素浓度(8和4.5 M)下以及在不同力场(CHARMM和OPLSAA)下对肽系统的仿真表明,以上机制是可靠的,与尿素浓度和所用力场无关。最后,我们强调周期性边界条件在成对能量分析中的重要性。本文对尿素诱导的蛋白质变性的物理机理进行了全面的研究,并提出了“分散相互作用驱动”机理应该是通用的。

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