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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Establishing Effective Simulation Protocols for beta- and alpha/beta-Mixed Peptides. I. QM and QM/MM Models
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Establishing Effective Simulation Protocols for beta- and alpha/beta-Mixed Peptides. I. QM and QM/MM Models

机译:建立有效的模拟协议,用于β和α/β混合肽。一。QM和QM / MM模型

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摘要

A quantum mechanical (QM) model for non-natural beta- and alpha/beta-mixed peptides is investigated using an approximate density functional method (called SCC-DFTB). In the gas phase the predictions of the model for cyclic and acyclic dipeptides and several acyclic heptapeptides are compared to ab initio B3LYP and LMP2 calculations. The SCC-DFTB reproduces the global minimum of the configurations with the root-mean-square (rms) error in the key dihedral angles of less than 14 degrees. The relative energies of different conformers are also well described in general, with the typical rms error of 2-3 kcal/mol relative to LMP2 energies at either B3LYP or LMP2 optimized structures. The dipole moments are reproduced with a systematic underestimate of less than 15%. The QM model is also used with a molecular mechanical (MM) model of the solvent. For a tetrameric alpha/beta-peptide in water, the SCC-DFTB/ MM energies are well correlated with B3LYP/6-31 +G*/MM single point energies for a wide range of structures sampled in 2 ns of SCC-DFTB/MM molecular dynamics. For an octameric alpha/beta-peptide in methanol the predicted structures are in qualitative agreement with experimental NOE data. These results suggest that the SCC-DFTB model provides a fairly accurate representation of the structure and thermodynamics of these peptides.
机译:使用近似密度泛函方法(称为SCC-DFTB)研究了非天然β-和α/β混合肽的量子力学(QM)模型。在气相中,将环状和无环二肽以及几种无环七肽的模型预测与从头算B3LYP和LMP2计算进行比较。 SCC-DFTB再现了配置的全局最小值,关键二面角的均方根(rms)误差小于14度。通常还很好地描述了不同构象异构体的相对能量,在B3LYP或LMP2优化结构下,相对于LMP2能量的典型均方根误差为2-3 kcal / mol。偶极矩的再现被系统地低估了不到15%。 QM模型也与溶剂的分子力学(MM)模型一起使用。对于水中的四聚体α/β肽,SCC-DFTB / MM能量与B3LYP / 6-31 + G * / MM单点能量具有良好的相关性,适用于在2 ns的SCC-DFTB / MM分子动力学。对于甲醇中的八聚体α/β-肽,预测的结构与实验性NOE数据在质量上一致。这些结果表明,SCC-DFTB模型可以相当准确地表示这些肽的结构和热力学。

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