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首页> 外文期刊>Journal of the American Society for Mass Spectrometry >A systematic and efficient method to estimate the vibrational frequencies of linear peptide and protein ions with any amino acid sequence for the calculation of Rice-Ramsperger-Kassel-Marcus rate constant
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A systematic and efficient method to estimate the vibrational frequencies of linear peptide and protein ions with any amino acid sequence for the calculation of Rice-Ramsperger-Kassel-Marcus rate constant

机译:一种系统有效的方法,用于估计任何氨基酸序列的线性肽和蛋白质离子的振动频率,以计算Rice-Ramsperger-Kassel-Marcus速率常数

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摘要

A systematic method to automatically estimate the vibrational frequency sets of linear peptide and protein ions with any amino acid sequence, which is needed in Rice-Ramsperger-Kassel-Marcus (RRKM) calculations for dissociation of these ions, has been developed. The method starts from the frequencies of free amino acids calculated quantum chemically at the DFT/B3LYP/6-31G** level. Some of these were systematically eliminated to get fictitious sets of frequencies for each amino acid at the C-terminus, N-terminus, and inside the chain. By collecting these sets as needed for a specified amino acid sequence and adding vibrations appearing upon peptide bond formation and protonation, a complete set of vibrational frequencies was obtained. Other conditions for RRKM calculations have also been systematically specified. RRKM calculations performed under various conditions have shown that the present method can be useful for an order of magnitude estimation of a statistical rate constant even at low internal energy region. The fact that arbitrariness involved in constructing an entire frequency set simply through spectral correlation can be avoided, and that any protein ion can be handled systematically and rapidly once its sequence and the number of protons attached are specified, are the main advantages of the present method.
机译:已开发出一种系统方法来自动估计具有任何氨基酸序列的线性肽和蛋白质离子的振动频率集,这是莱斯-兰斯珀格-卡塞尔-马库斯(RRKM)计算中解离这些离子所需要的。该方法从以DFT / B3LYP / 6-31G **水平进行量子化学计算的游离氨基酸频率开始。其中一些被系统地消除,以得到C端,N端和链内每个氨基酸的虚拟频率集。通过收集指定氨基酸序列所需的这些集合并添加在肽键形成和质子化时出现的振动,可以获得完整的振动频率。 RRKM计算的其他条件也已系统地指定。在各种条件下执行的RRKM计算表明,即使在内部能量较低的区域,本方法也可用于统计速率常数的数量级估计。本方法的主要优点是可以避免仅通过频谱相关来构造整个频率集的任意性,并且只要指定了蛋白质的序列和质子数,就可以系统快速地处理任何蛋白质离子。 。

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