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为什么 A·T 和 G·C 会自我分类?作为碱基配对中电子互补驱动力的休克尔芳香性。

Why do A·T and G·C self-sort? Hückel aromaticity as a driving force for electronic complementarity in base pairing.

机构信息

Department of Chemistry, University of Houston, Houston, TX 77204, USA.

出版信息

Org Biomol Chem. 2019 Feb 13;17(7):1881-1885. doi: 10.1039/c8ob01669k.

Abstract

Density functional theory computations and block-localized wavefunction analyses for 57 hydrogen-bonded base pairs document excellent linear correlation between the gas-phase association energies and the degree of aromaticity gain of paired bases (r = 0.949), challenging prevailing views of factors that underlie the proposed electronic complementarity of A·T(U) and G·C base pairs. Base pairing interactions can polarize the π-electrons of interacting bases to increase (or decrease) cyclic 4n + 2π electron delocalization, resulting in aromaticity gain (or loss) in the paired bases, and become strengthened (or weakened). The potential implications of this reciprocal relationship for improving nucleic acid force-fields and for designing robust unnatural base pairs are discussed.

摘要

密度泛函理论计算和块局域波函数分析 57 个氢键碱基对,证明气相缔合能与配对碱基芳香度增益之间存在极好的线性相关性(r = 0.949),这对现有观点提出了挑战,即 A·T(U)和 G·C 碱基对所依据的电子互补性的基础。碱基对相互作用可以极化相互作用碱基的π电子,增加(或减少)环状 4n + 2π电子离域,导致配对碱基的芳香度增益(或损失),并变得更强(或更弱)。讨论了这种互惠关系对改进核酸力场和设计稳健的非天然碱基对的潜在意义。

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