Biotech Research and Innovation Centre (BRIC), University of Copenhagen, Ole Maaløesvej 5, Copenhagen N 2200, Denmark; Department of Biotechnology and Biomedicine, Technical University of Denmark, Søltofts Plads, Kongens Lyngby 2800, Denmark.
Biotech Research and Innovation Centre (BRIC), University of Copenhagen, Ole Maaløesvej 5, Copenhagen N 2200, Denmark.
Cell Rep. 2022 Jan 18;38(3):110261. doi: 10.1016/j.celrep.2021.110261.
Cellular feedback systems ensure genome maintenance during DNA replication. When replication forks stall, newly replicated DNA is protected by pathways that limit excessive DNA nuclease attacks. Here we show that WEE1 activity guards against nascent DNA degradation at stalled forks. Furthermore, we identify WEE1-dependent suppression of cyclin-dependent kinase 2 (CDK2) as a major activity counteracting fork degradation. We establish DNA2 as the nuclease responsible for excessive fork degradation in WEE1-inhibited cells. In addition, WEE1 appears to be unique among CDK activity suppressors in S phase because neither CHK1 nor p21 promote fork protection as WEE1 does. Our results identify a key role of WEE1 in protecting stalled forks, which is separate from its established role in safeguarding DNA replication initiation. Our findings highlight how WEE1 inhibition evokes massive genome challenges during DNA replication, and this knowledge may improve therapeutic strategies to specifically eradicate cancer cells that frequently harbor elevated DNA replication stress.
细胞反馈系统可确保 DNA 复制过程中的基因组稳定。当复制叉停滞时,新复制的 DNA 会受到限制过度 DNA 核酸酶攻击的途径的保护。在这里,我们表明 WEE1 活性可防止停滞的复制叉处新生 DNA 的降解。此外,我们发现 WEE1 依赖性抑制细胞周期蛋白依赖性激酶 2(CDK2)是主要的活性,可抵抗叉降解。我们确定 DNA2 是 WEE1 抑制细胞中过度叉降解的核酸酶。此外,WEE1 似乎在 S 期的 CDK 活性抑制剂中是独特的,因为 CHK1 和 p21 都不像 WEE1 那样促进叉保护。我们的研究结果确定了 WEE1 在保护停滞叉方面的关键作用,这与它在保护 DNA 复制起始方面的既定作用是分开的。我们的研究结果强调了 WEE1 抑制如何在 DNA 复制过程中引发大规模的基因组挑战,而这方面的知识可能会改进治疗策略,以特异性根除经常存在高 DNA 复制应激的癌细胞。