光离子化
部分
化学
光化学
寡核苷酸
电子转移
DNA
光谱学
电离
立体化学
离子
有机化学
生物化学
物理
量子力学
作者
Zheng Hu,Qian Zhou,Zeqing Jiao,Peixuan Qin,Fei Wang,Ye Xia,Tianfeng Zhang,Jialong Jie,Hongmei Su
标识
DOI:10.1021/acs.jpcb.2c05521
摘要
Phosphorothioate (PS) modified oligonucleotides (S-DNA) naturally exist in bacteria and archaea genome and are widely used as an antisense strategy in gene therapy. However, the introduction of PS as a redox active site may trigger distinct UV photoreactions. Herein, by time-resolved spectroscopy, we observe that 266 nm excitation of S-DNA d(Aps)20 and d(ApsA)10 leads to direct photoionization on the PS moiety to form hemi-bonded -P-S∴S-P- radicals, in addition to A base ionization to produce A+•/A(-H)•. Fluorescence spectroscopy and global analysis indicate that an unusual charge transfer state (CT) between the A and PS moiety might populate in competition with the common CT state among bases as key intermediate states responsible for S-DNA photoionization. Significantly, the photoionization bifurcating to PS and A moieties of S-DNA is discovered, suggesting that the PS moiety could capture the oxidized site and protect the remaining base against ionization lesion, shedding light on the understanding of its existence in living organisms.
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