Biological Research Centre, Szeged, Eotvos Loránd Research Network, The Institute of Genetics, Szeged, H-6726, Hungary.
Doctoral School of Biology, University of Szeged, Szeged, H-6720, Hungary.
G3 (Bethesda). 2021 Apr 15;11(4). doi: 10.1093/g3journal/jkab041.
DNA damages that hinder the movement of the replication complex can ultimately lead to cell death. To avoid that, cells possess several DNA damage bypass mechanisms. The Rad18 ubiquitin ligase controls error-free and mutagenic pathways that help the replication complex to bypass DNA lesions by monoubiquitylating PCNA at stalled replication forks. In Saccharomyces cerevisiae, two of the Rad18 governed pathways are activated by monoubiquitylated PCNA and they involve translesion synthesis polymerases, whereas a third pathway needs subsequent polyubiquitylation of the same PCNA residue by another ubiquitin ligase the Rad5 protein, and it employs template switching. The goal of this study was to dissect the regulatory role of the multidomain Rad18 in DNA damage bypass using a structure-function based approach. Investigating deletion and point mutant RAD18 variants in yeast genetic and yeast two-hybrid assays we show that the Zn-finger of Rad18 mediates its interaction with Rad5, and the N-terminal adjacent region is also necessary for Rad5 binding. Moreover, results of the yeast two-hybrid and in vivo ubiquitylation experiments raise the possibility that direct interaction between Rad18 and Rad5 might not be necessary for the function of the Rad5 dependent pathway. The presented data also reveal that yeast Rad18 uses different domains to mediate its association with itself and with Rad5. Our results contribute to better understanding of the complex machinery of DNA damage bypass pathways.
阻碍复制复合物运动的 DNA 损伤最终可能导致细胞死亡。为了避免这种情况,细胞拥有几种 DNA 损伤绕过机制。Rad18 泛素连接酶控制无差错和诱变途径,通过在停滞的复制叉处单泛素化 PCNA 来帮助复制复合物绕过 DNA 损伤。在酿酒酵母中,Rad18 控制的两种途径被单泛素化的 PCNA 激活,它们涉及跨损伤合成聚合酶,而第三种途径需要另一种泛素连接酶 Rad5 对同一 PCNA 残基进行后续多泛素化,并采用模板切换。本研究的目的是使用基于结构功能的方法剖析多结构域 Rad18 在 DNA 损伤绕过中的调节作用。在酵母遗传和酵母双杂交实验中研究删除和点突变 RAD18 变体,我们表明 Rad18 的锌指介导其与 Rad5 的相互作用,并且 N 端相邻区域也是 Rad5 结合所必需的。此外,酵母双杂交和体内泛素化实验的结果提出了一种可能性,即 Rad18 和 Rad5 之间的直接相互作用可能不是 Rad5 依赖途径功能所必需的。所呈现的数据还表明,酵母 Rad18 使用不同的结构域来介导其与自身和 Rad5 的结合。我们的研究结果有助于更好地理解 DNA 损伤绕过途径的复杂机制。