Center for Biological Research Margarita Salas (CIB-CSIC), Spanish National Research Council, Madrid, Spain.
Department of Pharmacological Sciences, Stony Brook University, Stony Brook, NY, USA.
Mol Cell. 2021 Jul 1;81(13):2778-2792.e4. doi: 10.1016/j.molcel.2021.04.006. Epub 2021 Apr 30.
DNA polymerase ε (Polε) carries out high-fidelity leading strand synthesis owing to its exonuclease activity. Polε polymerase and exonuclease activities are balanced, because of partitioning of nascent DNA strands between catalytic sites, so that net resection occurs when synthesis is impaired. In vivo, DNA synthesis stalling activates replication checkpoint kinases, which act to preserve the functional integrity of replication forks. We show that stalled Polε drives nascent strand resection causing fork functional collapse, averted via checkpoint-dependent phosphorylation. Polε catalytic subunit Pol2 is phosphorylated on serine 430, influencing partitioning between polymerase and exonuclease active sites. A phosphormimetic S430D change reduces exonucleolysis in vitro and counteracts fork collapse. Conversely, non-phosphorylatable pol2-S430A expression causes resection-driven stressed fork defects. Our findings reveal that checkpoint kinases switch Polε to an exonuclease-safe mode preventing nascent strand resection and stabilizing stalled replication forks. Elective partitioning suppression has implications for the diverse Polε roles in genome integrity maintenance.
DNA 聚合酶 ε(Polε)因其具有核酸外切酶活性而进行高保真的前导链合成。由于新生 DNA 链在催化位点之间的分配,Polε 的聚合酶和核酸外切酶活性达到平衡,因此当合成受到干扰时,净切除就会发生。在体内,DNA 合成停滞会激活复制检查点激酶,这些激酶的作用是保持复制叉的功能完整性。我们发现,停滞的 Polε 驱动新生链的切除,导致叉功能崩溃,通过检查点依赖性磷酸化来避免。Polε 的催化亚基 Pol2 丝氨酸 430 发生磷酸化,影响聚合酶和核酸外切酶活性位点之间的分配。体外实验中,磷酸模拟 S430D 突变减少核酸外切酶活性,从而阻止叉崩溃。相反,不可磷酸化的 pol2-S430A 表达导致切除驱动的有压力的叉缺陷。我们的研究结果表明,检查点激酶将 Polε 切换到核酸外切酶安全模式,防止新生链的切除并稳定停滞的复制叉。选择性分配抑制对 Polε 在维持基因组完整性方面的多种作用具有重要意义。