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Protonated nucleobases are not fully ionized in their chloride salt crystals and form metastable base pairs further stabilized by the surrounding anions

机译:质子化核碱基在其氯化物晶体中没有完全电离,并通过周围阴离子进一步稳定的亚稳基碱基对

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摘要

This paper presents experimental charge-density studies of cytosinium chloride, adeninium chloride hemihydrate and guaninium dichloride crystals based on ultra-high-resolution X-ray diffraction data and extensive theoretical calculations. The results confirm that the cohesive energies of the studied systems are dominated by contributions from intermolecular electrostatic interactions, as expected for ionic crystals. Electrostatic interaction energies (Ees) usually constitute 95% of the total interaction energy. The Ees energies in this study were several times larger in absolute value when compared, for example, with dimers of neutral nucleobases. However, they were not as large as some theoretical calculations have predicted. This was because the molecules appeared not to be fully ionized in the studied crystals. Apart from charge transfer from chlorine to the protonated nucleobases, small but visible charge redistribution within the nucleobase cations was observed. Some dimers of singly protonated bases in the studied crystals, namely a cytosinium–cytosinium trans sugar/sugar edge pair and an adeninium–adeninium trans Hoogsteen/Hoogsteen edge pair, exhibited attractive interactions (negative values of Ees) or unusually low repulsion despite identical molecular charges. The pairs are metastable as a result of strong hydrogen bonding between bases which overcompensates the overall cation–cation repulsion, the latter being weakened due to charge transfer and molecular charge-density polarization.
机译:本文介绍了基于超高分辨率X射线衍射数据和广泛理论计算的氯化氯化氯化氯化钠,氯化氨酸氯化物半水合物和胍二氯化物晶体的实验荷密度研究。结果证实研究的系统的粘性能量是由分子间静电相互作用的贡献为主,如离子晶体所预期的。静电相互作用能量(EES)通常构成总相互作用能量的95%。比较该研究中的EES能量在例如中性核碱基的二聚体的绝对值中的绝对值较大了几倍。然而,它们并不像一些理论计算一样大。这是因为在研究的晶体中出现不完全电离。除了从氯转移到质子核酸核碱的电荷转移,观察到核碱基阳离子内的小但可见的电荷再分配。在研究的晶体中单个质子化碱基的一些二聚体,即胞嘧啶 - 胞嘧啶反式糖/糖缘对和腺嘌呤 - 腺嘌呤反向heogsteen / hoogsteen边缘对,尽管分子相​​同,但仍表现出具有吸引人的相互作用(EES负值)或异常低的排斥收费。由于碱之间的碱基之间的氢键合而导致的对成对,其由于电荷转移和分子电荷密度极化而被削弱。

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