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Nano-modeling of insulin-like growth factor 1 (IGF-1) by computational methods

机译:计算方法纳米型胰岛素样生长因子1(IGF-1)建模

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The empirical force fields have great difficulty in simulating folding of insulin-like growth factor 1 (IGF-1). In an effort to understand the conformational preferences that may be attributed to stereoelectronic effects, a number of computational studies are carried out. Monte Carlo, molecular dynamics and Langevin simulation methods by MM+, amber andoptimized potential for liquid simulations?(OPLS) force fields of calculations have been performed on IGF-1 as growth factor. The parameters of minimized structure of IGF-1, calculated potential energy for important dihedral angles and the effect of temperature on geometry of optimized structure have been calculated. In this work, we have used different temperatures at gas and water media and we have seen that in simulation approaches, scaling up the interaction energy has a similar effect to lowering temperature. This study has demonstrated that the simple model including an approximate average solvent effect can simulate the qualitative feature of the IGF-1. The key research was to find dynamics of biomolecular structure and an appropriate effective stabilized energy.
机译:在模拟胰岛素样生长因子1(IGF-1)的折叠方面具有很大的困难。为了了解可能归因于立体电子效应的构象偏好,执行了许多计算研究。 MM +的蒙特卡罗,分子动力学和Langevin模拟方法,琥珀色和优化的液体模拟电位?(OPLS)势力计算的势力田地为生长因子进行了IGF-1。计算了IGF-1的最小结构的参数,计算了重要的二面角的势能以及温度对优化结构几何形状的影响。在这项工作中,我们在天然气和水媒体上使用了不同的温度,我们已经看到,在仿真方法中,缩放相互作用能量对降低温度具有类似的效果。该研究表明,包括近似平均溶剂效应的简单模型可以模拟IGF-1的定性特征。关键研究是寻找生物分子结构的动态和适当的有效稳定能量。

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