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Relationship of hydrogen bonding energy with electrostatic and polarization energies and molecular electrostatic potentials for amino acids: An evaluation of the lock and key model

机译:氢键能与氨基酸的静电和极化能以及分子静电势的关系:锁模型和密钥模型的评估

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Hydrogen bonding, electrostatic, and polarization energies were computed for hydrogen-bonded complexes of HF with each of the 20 natural amino acids and also for certain complexes involving two amino acids each. The AM1 method was employed for the calculation of hydrogen bonding energies at the self-consistent field (SCF) level while atomic and hybridization displacement charges obtained by the same method were used to compute the electrostatic and polarization energies. It is found that hydrogen bonding, electrostatic, and polarization energies at different intermolecular distances vary with each other strongly linearly, and so the validity of the lock and key model of enzyme catalysis does not seem to be affected by electrical polarization of the enzyme and the substrate due to their hydrogen bonding. Lowest and highest surface molecular electrostatic potential (MEP) magnitudes near the hydrogen bond accepting and donating sites of the amino acids, respectively, are appreciably linearly related to the corresponding electrostatic interaction energies. Thus it is shown that MEP can be used as a reliable descriptor of hydrogen bonding. However, when more than one hydrogen bond is formed in a given region of a molecule, particularly when a cyclic structure is produced due to hydrogen bonding, only the MEP values near the hydrogen bond accepting and donating atoms would not be sufficient to describe hydrogen bonding reliably. (C) 2000 John Wiley & Sons, Inc. [References: 31]
机译:对于氢与20种天然氨基酸中的每一种的氢键合配合物,以及对于每一种涉及两个氨基酸的某些配合物,计算了氢键,静电和极化能。 AM1方法用于计算自洽场(SCF)级别的氢键能,而通过相同方法获得的原子和杂化位移电荷则用于计算静电和极化能。发现在不同的分子间距离,氢键,静电和极化能彼此之间线性地强烈变化,因此酶催化的锁定和关键模型的有效性似乎不受酶和电极的电极化的影响。底物由于它们的氢键作用。氨基酸的氢键接受和给予位点附近的最低和最高表面分子静电势(MEP)大小与相应的静电相互作用能线性相关。因此表明MEP可以用作氢键的可靠描述。但是,当在分子的给定区域中形成一个以上的氢键时,特别是当由于氢键而产生环状结构时,仅氢键附近的MEP值不能接受和给予原子,不足以描述氢键可靠地。 (C)2000 John Wiley&Sons,Inc. [参考:31]

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