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Two wavelength femtosecond laser induced DNA-protein crosslinking.

机译:两波长飞秒激光诱导DNA-蛋白质交联。

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摘要

Nucleic acid-protein interactions are essential for storage, reproduction and expression of genetic information. Biochemical methods, such as dimethyl sulfate genomic footprinting, have been developed to study stable protein-DNA interactions in vivo and chemical crosslinking has been used for less stable interactions, but the chemical agents are slow, damage cells and perturb native equilibria. To avoid these perturbations, UV laser crosslinking offers an alternative, although the energies required for significant crosslinking cause extensive DNA damage. We find that a combination of femtosecond laser pulses at two different wavelengths, in the UV and the visible range, increases the crosslinking efficiency while minimizing DNA damage. This technique also allowed us to directly measure the singlet S1lifetime of native DNA (tauS1 = 3.2 +/- 0.2 ps), which is mainly determined by the lifetime of thymine [tauS1 = 2.8 +/- 0.4 ps for (dT)16], the photochemically most reactive base. Our results suggest that two wavelength femtosecond laser pulses are well suited for the identification of transcription factors interacting with defined sequences and for studying the kinetics of protein-nucleic acid interactions in intact cells.
机译:核酸-蛋白质相互作用对于遗传信息的存储,复制和表达至关重要。已经开发出生物化学方法,例如硫酸二甲酯基因组足迹法,以研究体内稳定的蛋白质-DNA相互作用,化学交联已用于不太稳定的相互作用,但化学试剂作用缓慢,破坏细胞并扰乱天然平衡。为了避免这些干扰,尽管进行重大交联所需的能量会导致DNA大量破坏,但UV激光交联提供了另一种方法。我们发现,在紫外线和可见光范围内,两个不同波长的飞秒激光脉冲的组合,可以提高交联效率,同时将DNA损伤降至最低。该技术还使我们能够直接测量天然DNA的单峰S1寿命(tauS1 = 3.2 +/- 0.2 ps),这主要由胸腺嘧啶的寿命决定[tauS1 =(dT)16的2.8 +/- 0.4 ps],光化学活性最高的碱。我们的结果表明,两个波长的飞秒激光脉冲非常适合用于识别与定义的序列相互作用的转录因子,以及用于研究完整细胞中蛋白质-核酸相互作用的动力学。

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