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多肽核酸二聚体中主链柔韧性对电荷转移速率的影响。

Effect of backbone flexibility on charge transfer rates in peptide nucleic acid duplexes.

机构信息

Department of Chemistry, University of Pittsburgh, Pennsylvania 15260, United States.

出版信息

J Am Chem Soc. 2012 Jun 6;134(22):9335-42. doi: 10.1021/ja301677z. Epub 2012 May 21.

Abstract

Charge transfer (CT) properties are compared between peptide nucleic acid structures with an aminoethylglycine backbone (aeg-PNA) and those with a γ-methylated backbone (γ-PNA). The common aeg-PNA is an achiral molecule with a flexible structure, whereas γ-PNA is a chiral molecule with a significantly more rigid structure than aeg-PNA. Electrochemical measurements show that the CT rate constant through an aeg-PNA bridging unit is twice the CT rate constant through a γ-PNA bridging unit. Theoretical calculations of PNA electronic properties, which are based on a molecular dynamics structural ensemble, reveal that the difference in the CT rate constant results from the difference in the extent of backbone fluctuations of aeg- and γ-PNA. In particular, fluctuations of the backbone affect the local electric field that broadens the energy levels of the PNA nucleobases. The greater flexibility of the aeg-PNA gives rise to more broadening, and a more frequent appearance of high-CT rate conformations than in γ-PNA.

摘要

电荷转移(CT)性质在具有氨基乙基甘氨酸骨架(aeg-PNA)和γ-甲基化骨架(γ-PNA)的肽核酸结构之间进行了比较。常见的 aeg-PNA 是一种手性分子,具有灵活的结构,而 γ-PNA 是一种手性分子,其结构比 aeg-PNA 明显更僵硬。电化学测量表明,通过 aeg-PNA 桥接单元的 CT 速率常数是通过 γ-PNA 桥接单元的 CT 速率常数的两倍。基于分子动力学结构集合的 PNA 电子性质的理论计算表明,CT 速率常数的差异源于 aeg-PNA 和 γ-PNA 骨架波动程度的差异。特别是,骨架的波动会影响局部电场,从而拓宽 PNA 核碱基的能级。aeg-PNA 的更大灵活性导致更多的展宽,并且比 γ-PNA 更频繁地出现高 CT 率构象。

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