Kim Jong-Soo, Heale Jason T, Zeng Weihua, Kong Xiangduo, Krasieva Tatiana B, Ball Alexander R, Yokomori Kyoko
Department of Biological Chemistry, School of Medicine, University of California, Irvine, California 92697, USA.
Methods Cell Biol. 2007;82:377-407. doi: 10.1016/S0091-679X(06)82013-3.
A proper response to DNA damage is critical for the maintenance of genome integrity. However, it is difficult to study the in vivo kinetics and factor requirements of the damage recognition process in mammalian cells. In order to address how the cell reacts to DNA damage, we utilized a second harmonic (532 nm) pulsed Nd:YAG laser to induce highly concentrated damage in a small area in interphase cell nuclei and cytologically analyzed both protein recruitment and modification. Our results revealed for the first time the sequential recruitment of factors involved in two major DNA double-strand break (DSB) repair pathways, non-homologous end-joining (NHEJ) and homologous recombination (HR), and the cell cycle-specific recruitment of the sister chromatid cohesion complex cohesin to the damage site. In this chapter, the strategy developed to study the DNA damage response using the 532-nm Nd:YAG laser will be summarized.
对DNA损伤作出恰当反应对于维持基因组完整性至关重要。然而,研究哺乳动物细胞中损伤识别过程的体内动力学和因子需求颇具难度。为了探究细胞如何对DNA损伤作出反应,我们利用二次谐波(532纳米)脉冲Nd:YAG激光在间期细胞核的小区域内诱导高度集中的损伤,并对蛋白质募集和修饰进行了细胞学分析。我们的结果首次揭示了参与两条主要DNA双链断裂(DSB)修复途径,即非同源末端连接(NHEJ)和同源重组(HR)的因子的顺序募集,以及姐妹染色单体黏连复合体黏连蛋白在损伤位点的细胞周期特异性募集。在本章中,将总结利用532纳米Nd:YAG激光研究DNA损伤反应所开发的策略。