首页> 外文期刊>Chemical Physics: A Journal Devoted to Experimental and Theoretical Research Involving Problems of Both a Chemical and Physical Nature >Calculation of absolute free energy of binding for theophylline and its analogs to RNA aptamer using nonequilibrium work values
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Calculation of absolute free energy of binding for theophylline and its analogs to RNA aptamer using nonequilibrium work values

机译:使用非平衡功值计算茶碱及其类似物与RNA适体结合的绝对自由能

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The massively parallel computation of absolute binding free energy with a well-equilibrated system (MP-CAFEE) has been developed [H. Fujitani, Y. Tanida, M. Ito, G. Jayachandran, C.D. Snow, MR. Shirts, E.J. Sorin, V.S. Pande, J. Chem. Phys. 123 (2005) 084108]. As an application, we perform the binding affinity calculations of six theophylline-related ligands with RNA aptamer. Basically, our method is applicable when using many compute nodes to accelerate simulations, thus a parallel computing system is also developed. To further reduce the computational cost, the adequate non-uniform intervals of coupling constant lambda, connecting two equilibrium states, namely bound and unbound, are determined. The absolute binding energies Delta G thus obtained have effective linear relation between the computed and experimental values. If the results of two other different methods are compared, thermodynamic integration (TI) and molecular mechanics Poisson-Boltzmann surface area (MM-PBSA) by the paper of Gouda et al. [H. Gouda, I.D. Kuntz, D.A. Case, P.A. Kollman, Biopolymers 68 (2003) 16], the predictive accuracy of the relative values Delta Delta G is almost comparable to that of TI: the correlation coefficients (R) obtained are 0.99 (this work), 0.97 (TI), and 0.78 (MM-PBSA). On absolute binding energies meanwhile, a constant energy shift of similar to-7 kcal/mol against the experimental values is evident. To solve this problem, several presumable reasons are investigated. (c) 2007 Elsevier B.V. All rights reserved.
机译:已经开发了使用均衡系统(MP-CAFEE)的大规模并行计算绝对结合自由能的方法[H. Fujitani,Y.Tanida,M.Ito,G.Jayachandran,C.D。雪先生。衬衫,E.J。索林(弗吉尼亚州)潘德,化学杂志。物理123(2005)084108]。作为应用,我们执行了六个茶碱相关配体与RNA适体的结合亲和力计算。基本上,我们的方法适用于使用许多计算节点来加速仿真的情况,因此也开发了并行计算系统。为了进一步降低计算成本,确定了连接两个平衡状态(即有界和无界)的耦合常数λ的适当非均匀间隔。由此获得的绝对结合能ΔG在计算值和实验值之间具有有效的线性关系。如果将其他两种不同方法的结果进行比较,Gouda等人的论文则将其热力学积分(TI)和分子力学泊松-玻尔兹曼表面积(MM-PBSA)进行了比较。 [H。豪达(美国)昆茨案例,P.A。 Kollman,Biopolymers 68(2003)16],相对值Delta Delta G的预测准确性几乎与TI相当:获得的相关系数(R)为0.99(这项工作),0.97(TI)和0.78( MM-PBSA)。同时,在绝对结合能上,相对于实验值的近似-7 kcal / mol的恒定能量位移是显而易见的。为了解决这个问题,研究了几种可能的原因。 (c)2007 Elsevier B.V.保留所有权利。

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