Laboratory of Biophysics, Wageningen University & Research, Wageningen, The Netherlands; Department of Therapeutic Radiology, Yale University School of Medicine, New Haven, Connecticut, USA.
Department of Therapeutic Radiology, Yale University School of Medicine, New Haven, Connecticut, USA.
J Biol Chem. 2020 Jul 3;295(27):9012-9020. doi: 10.1074/jbc.RA120.013049. Epub 2020 May 8.
Eukaryotic DNA polymerase β (Pol β) plays an important role in cellular DNA repair, as it fills short gaps in dsDNA that result from removal of damaged bases. Since defects in DNA repair may lead to cancer and genetic instabilities, Pol β has been extensively studied, especially its mechanisms for substrate binding and a fidelity-related conformational change referred to as "fingers closing." Here, we applied single-molecule FRET to measure distance changes associated with DNA binding and prechemistry fingers movement of human Pol β. First, using a doubly labeled DNA construct, we show that Pol β bends the gapped DNA substrate less than indicated by previously reported crystal structures. Second, using acceptor-labeled Pol β and donor-labeled DNA, we visualized dynamic fingers closing in single Pol β-DNA complexes upon addition of complementary nucleotides and derived rates of conformational changes. We further found that, while incorrect nucleotides are quickly rejected, they nonetheless stabilize the polymerase-DNA complex, suggesting that Pol β, when bound to a lesion, has a strong commitment to nucleotide incorporation and thus repair. In summary, the observation and quantification of fingers movement in human Pol β reported here provide new insights into the delicate mechanisms of prechemistry nucleotide selection.
真核 DNA 聚合酶 β(Pol β)在细胞 DNA 修复中发挥着重要作用,因为它可以填补双链 DNA 中因去除受损碱基而产生的短缺口。由于 DNA 修复缺陷可能导致癌症和遗传不稳定性,因此 Pol β 已被广泛研究,尤其是其底物结合机制和与保真度相关的构象变化,称为“手指关闭”。在这里,我们应用单分子 FRET 测量与人类 Pol β 的 DNA 结合和预化学手指运动相关的距离变化。首先,使用双标记 DNA 构建体,我们表明 Pol β 使缺口 DNA 底物的弯曲程度小于先前报道的晶体结构所表明的程度。其次,使用带受体标记的 Pol β 和带供体标记的 DNA,我们在互补核苷酸加入时可视化了单个 Pol β-DNA 复合物中动态的手指关闭,并得出了构象变化的速率。我们进一步发现,尽管错误的核苷酸很快被拒绝,但它们仍然稳定了聚合酶-DNA 复合物,这表明 Pol β 结合到损伤部位时,强烈承诺进行核苷酸掺入,从而进行修复。总之,这里报道的人类 Pol β 中手指运动的观察和量化为预化学核苷酸选择的精细机制提供了新的见解。