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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >One- and two-photon ionization of DNA single and double helices studied by laser flash photolysis at 266 nm
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One- and two-photon ionization of DNA single and double helices studied by laser flash photolysis at 266 nm

机译:通过266 nm激光闪光光解研究DNA单螺旋和双螺旋的单光子和双光子电离

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摘要

The ionization of the DNA single and double helices (dA)(20), (dT)(20), (dAdT)(10)(dAdT)(10) and (dA)(20)(dT)(20), induced by nanosecond pulses at 266 nm, is studied by time-resolved absorption spectroscopy. The variation of the hydrated electron concentration with the absorbed laser intensity shows that, in addition to two-photon ionization, one-photon ionization takes place for (dAdT)(10)(dAdT)(10), (dA)(20)(dT)(20) and (dA)(20) but not for (dT)(20). The spectra of all adenine-containing oligomers at the microsecond time-scale correspond to the adenine deprotonated radical formed in concentrations comparable to that of the hydrated electron. The quantum yield for one-photon ionization of the oligomers (ca. 10(-3)) is higher by at least 1 order of magnitude than that of dAMP, showing clearly that organization of the bases in single and double helices leads to an important lowering of the ionization potential. The propensity of (dAdT)(10)(dAdT)(10), containing alternating adenine-thymine sequences, to undergo one-photon ionization is lower than that of (dA)(20)(dT)(20) and (dA)(20), containing adenine runs. Pairing of the (dA)(20) with the complementary strand leads to a decrease of quantum yield for one photon ionization by about a factor of 2.
机译:DNA单螺旋和双螺旋(dA)(20),(dT)(20),(dAdT)(10)(dAdT)(10)和(dA)(20)(dT)(20)的电离时间分辨吸收光谱法研究了在266 nm处纳秒脉冲产生的光。水合电子浓度随吸收的激光强度的变化表明,除了(dAdT)(10)(dAdT)(10),(dA)(20)( dT)(20)和(dA)(20),但不适用于(dT)(20)。所有含腺嘌​​呤的低聚物的光谱在微秒时标上对应于以与水合电子相当的浓度形成的腺嘌呤去质子化的自由基。低聚物(约10(-3))的单光子电离的量子产率比dAMP高至少1个数量级,这清楚地表明单螺旋和双螺旋中碱基的组织导致重要的电离势的降低。包含交替的腺嘌呤-胸腺嘧啶序列的(dAdT)(10)(dAdT)(10)经历单光子电离的倾向低于(dA)(20)(dT)(20)和(dA) (20),含有腺嘌呤。 (dA)(20)与互补链配对会导致一个光子电离的量子产率降低约2倍。

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