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首页> 外文期刊>Journal of chemical information and modeling >All-Hydrocarbon Staples and Their Effect over Peptide Conformation under Different Force Fields
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All-Hydrocarbon Staples and Their Effect over Peptide Conformation under Different Force Fields

机译:全碳氢化合物钉书针及其对不同力场下肽构象的影响

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摘要

Olefinic staples enhance alpha-helical content and conformational stability in peptides, maintaining a structural scaffold that allows the emulation of specific regions of protein surfaces for therapeutical purposes. The ability to anticipate the efficacy of adding a staple to a peptide through computational simulations may contribute to lowering the costs associated with rational drug design. We evaluated the capabilities of different force fields to reproduce the effect of all-hydrocarbon staples in molecular dynamics simulations. Using the AMBER99SB-ILDN, CHARMM36, and GROMOS54A7 force fields and two distinct initial conformations, we compared our results to experimentally obtained circular dichroism data. The GROMOS54A7 united-atom force field seems to be more accurate compared with all-atom force fields, despite being unable to reproduce the effect of the staple in some of the simulated systems. With further force field enhancements, MD simulations may be used to anticipate conformational effects of all-hydrocarbon staples in peptides.
机译:烯烃钉提高肽中的α-螺旋含量和构象稳定性,保持结构支架,其允许仿真蛋白质表面的特定区域以用于治疗目的。通过计算模拟增加向肽添加钉钉的功效的能力可能有助于降低与理性药物设计相关的成本。我们评估了不同力场的能力,以再现分子动力学模拟中的全碳氢化合物钉的效果。使用amber99sb-ildn,charmm36和gromos54a7强制领域和两个不同的初始构象,我们将结果与实验获得的圆形二色性数据进行了比较。 Gromos54A7联合原子力领域似乎更准确,而与全原子力领域相比,尽管无法在一些模拟系统中重现钉的效果。通过进一步的力现场增强,MD模拟可用于预测肽中全烃钉的构象效应。

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