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PNKP在复制应激期间保护停滞的复制叉免受核酸酶依赖性降解。

PNKP safeguards stalled replication forks from nuclease-dependent degradation during replication stress.

作者信息

Mashayekhi Fatemeh, Ganje Cassandra, Caron Marie-Christine, Heyza Joshua R, Gao Yuandi, Zeinali Elham, Fanta Mesfin, Li Lei, Ali Jana, Mersaoui Sofiane Yacine, Schmidt Jens C, Godbout Roseline, Masson Jean-Yves, Weinfeld Michael, Ismail Ismail Hassan

机构信息

Department of Oncology, Faculty of Medicine & Dentistry, University of Alberta, 11560 University Avenue, Edmonton, AB T6G 1Z2, Canada.

Department of Molecular Biology, Medical Biochemistry and Pathology, Laval University, 9 McMahon, Québec City, QC G1R 3S3, Canada.

出版信息

Cell Rep. 2024 Dec 24;43(12):115066. doi: 10.1016/j.celrep.2024.115066. Epub 2024 Dec 12.

Abstract

Uncontrolled degradation and collapse of stalled replication forks (RFs) are primary sources of genomic instability, yet the molecular mechanisms for protecting forks from degradation/collapse remain to be fully elaborated. Here, we show that polynucleotide kinase-phosphatase (PNKP) localizes at stalled forks and protects stalled forks from excessive degradation. The loss of PNKP results in nucleolytic degradation of nascent DNA at stalled RFs. This mechanism is different from the BRCA2-dependent fork protection pathway, which protects stalled forks from excessive MRE11-dependent nucleolytic degradation. Our research shows that hydroxyurea treatment leads to increased misincorporation of ribonucleotides in DNA, which in turn traps TOP1 on stalled RFs. We have also found that reducing the levels of TOP1 or TDP1 in cells can reverse the degradation of nascent DNA observed in PNKP-deficient cells. In summary, our data suggest that PNKP plays a role in maintaining the stability of stalled RFs.

摘要

停滞的复制叉(RFs)的失控降解和崩溃是基因组不稳定的主要来源,然而保护复制叉免受降解/崩溃的分子机制仍有待充分阐明。在此,我们表明多核苷酸激酶-磷酸酶(PNKP)定位于停滞的复制叉处,并保护停滞的复制叉免于过度降解。PNKP的缺失导致停滞的RFs处新生DNA的核酸酶降解。这种机制不同于依赖BRCA2的复制叉保护途径,后者保护停滞的复制叉免于过度的依赖MRE11的核酸酶降解。我们的研究表明,羟基脲处理导致DNA中核糖核苷酸错掺入增加,进而使TOP1被困在停滞的RFs上。我们还发现,降低细胞中TOP1或TDP1的水平可以逆转在PNKP缺陷细胞中观察到的新生DNA降解。总之,我们的数据表明PNKP在维持停滞的RFs的稳定性中起作用。

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