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Thermal denaturing of mutant lysozyme with both the OPLSAA and the CHARMM force fields

机译:利用OPLSAA和CHARMM力场对突变型溶菌酶进行热变性

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Biomolecular simulations enabled by massively parallel supercomputers such as BlueGene/L promise to bridge the gap between the currently accessible simulation time scale and the experimental time scale for many important protein folding processes. In this study, molecular dynamics simulations were carried out for both the wild-type and the mutant hen lysozyme (TRP62GLY) to study the single mutation effect on lysozyme stability and misfolding. Our thermal denaturing simulations at 400-500 K with both the OPLSAA and the CHARMM force fields show that the mutant structure is indeed much less stable than the wild-type, which is consistent with the recent urea denaturing experiment (Dobson et al. Science 2002, 295, 1719-1722; Nature 2003, 424, 783-788). Detailed results also reveal that the single mutation TRP62GLY first induces the loss of native contacts in the beta-domain region of the lysozyme protein at high temperatures, and then the unfolding process spreads into the alpha-domain region through Helix C. Even though the OPLSAA force field in general shows a more stable protein structure than does the CHARMM force field at high temperatures, the two force fields examined here display qualitatively similar results for the misfolding process, indicating that the thermal denaturing of the single mutation is robust and reproducible with various modern force fields.
机译:大规模并行超级计算机(例如BlueGene / L)支持的生物分子模拟有望弥合当前可访问的模拟时间尺度与许多重要蛋白质折叠过程的实验时间尺度之间的差距。在这项研究中,对野生型和突变型鸡溶菌酶(TRP62GLY)均进行了分子动力学模拟,以研究单突变对溶菌酶稳定性和错折叠的影响。我们用OPLSAA和CHARMM力场在400-500 K下进行的热变性模拟表明,突变体的结构确实比野生型稳定得多,这与最近的尿素变性实验是一致的(Dobson等,Science 2002)。 ,295,1719-1722; Nature 2003,424,783-788)。详细的结果还表明,单个突变TRP62GLY会首先在高温下诱导溶菌酶蛋白的β结构域失去天然接触,然后展开过程通过Helix C扩散到α结构域。即使OPLSAA一般而言,高温下的力场显示出比CHARMM力场更稳定的蛋白质结构,此处检查的两个力场在错误折叠过程中显示出定性相似的结果,表明单个突变的热变性是稳健的,并且在各种条件下均可重现现代力场。

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