Laboratory of Protein Structure, International Institute of Molecular and Cell Biology, 4 Trojdena St., 02-109, Warsaw, Poland.
Institute of Biophysics of the Czech Academy of Sciences, Kralovopolska 135, 612 65, Brno, Czech Republic.
Nat Commun. 2019 Sep 10;10(1):4102. doi: 10.1038/s41467-019-11900-8.
Holliday junctions (HJs) are four-way DNA structures that occur in DNA repair by homologous recombination. Specialized nucleases, termed resolvases, remove (i.e., resolve) HJs. The bacterial protein RuvC is a canonical resolvase that introduces two symmetric cuts into the HJ. For complete resolution of the HJ, the two cuts need to be tightly coordinated. They are also specific for cognate DNA sequences. Using a combination of structural biology, biochemistry, and a computational approach, here we show that correct positioning of the substrate for cleavage requires conformational changes within the bound DNA. These changes involve rare high-energy states with protein-assisted base flipping that are readily accessible for the cognate DNA sequence but not for non-cognate sequences. These conformational changes and the relief of protein-induced structural tension of the DNA facilitate coordination between the two cuts. The unique DNA cleavage mechanism of RuvC demonstrates the importance of high-energy conformational states in nucleic acid readouts.
霍利迪连接点(HJs)是在同源重组过程中发生的四链 DNA 结构。专门的核酸内切酶,称为核酸酶,可切除(即解析)HJs。细菌蛋白 RuvC 是一种典型的核酸酶,它在 HJ 上引入两个对称的切口。为了完全解析 HJ,两个切口需要紧密协调。它们也与同源 DNA 序列特异性结合。本研究结合结构生物学、生物化学和计算方法,表明底物的正确切割位置需要结合 DNA 内的构象变化。这些变化涉及罕见的高能状态,涉及蛋白辅助的碱基翻转,这种状态很容易被同源 DNA 序列获得,但不能被非同源序列获得。这些构象变化和 DNA 中蛋白诱导的结构张力的释放促进了两个切口之间的协调。RuvC 独特的 DNA 切割机制表明高能构象状态在核酸读取中的重要性。