화학공학소재연구정보센터
Journal of the American Chemical Society, Vol.134, No.22, 9335-9342, 2012
Effect of Backbone Flexibility on Charge Transfer Rates in Peptide Nucleic Acid Duplexes
Charge transfer (CT) properties are compared between peptide nucleic acid structures with an aminoethylglycine backbone (aeg-PNA) and those with a gamma-methylated backbone (gamma-PNA). The common aeg-PNA is an achiral molecule with a flexible structure, whereas gamma-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 gamma-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 gamma-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 gamma-PNA.