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Updated: Feb 14, 2026

Direct Restart of a Replication Fork Stalled by a Head-On RNA Polymerase
Published on: April 29, 2010
The RRM domains of PARP14 mediate replication fork degradation in BRCA2-deficient cells
Anastasia Hale1, Katie A Lynch1, Ashna Dhoonmoon1
1Department of Molecular and Precision Medicine, The Pennsylvania State University College of Medicine, Hershey, PA 17033, United States.
Abstract:
Degradation of reversed replication forks by nucleases has emerged as a major mechanism of chemosensitivity in BRCA-deficient cells. We previously showed that the mono-ADP-ribosyltransferase PARP14 regulates MRE11 recruitment to reversed replication forks to promote their degradation. This results in genomic instability in BRCA-deficient cells. While it has been shown that PARP14-mediated recruitment of MRE11 to reversed forks promotes their degradation and collapse, how PARP14 binds to nascent DNA is unknown. Here, we show that, in BRCA-deficient cells, PARP14 is recruited to nascent DNA at reversed replication forks via its RRM (RNA Recognition Motifs) domains. We reveal that the RRM domains are necessary for the recruitment of MRE11 to reversed forks to promote nascent strand degradation at stalled replication forks in BRCA2-deficient cells. We also show that these domains are essential for replication stress-induced double-strand break formation in these cells. Our work furthers the understanding of nuclease recruitment and engagement at stalled forks to regulate genomic stability.
Insights
PARP14
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- BRCA-deficient cells exhibit chemosensitivity due to nuclease-mediated degradation of reversed replication forks.
- PARP14 was previously identified as a regulator of MRE11 recruitment to reversed replication forks, promoting their degradation and genomic instability.
Purpose of the Study:
- To investigate the mechanism by which PARP14 binds to nascent DNA at reversed replication forks.
- To determine the role of PARP14's RNA Recognition Motifs (RRMs) in MRE11 recruitment and DNA degradation.
Main Methods:
- Recruitment assays to identify PARP14 binding to nascent DNA.
- Functional assays to assess the necessity of RRM domains for MRE11 recruitment and DNA degradation.
- Analysis of replication stress-induced double-strand break formation.
Main Results:
- PARP14 is recruited to nascent DNA at reversed replication forks via its RRM domains in BRCA-deficient cells.
- The RRM domains are essential for recruiting MRE11 to reversed forks, promoting nascent strand degradation at stalled replication forks in BRCA2-deficient cells.
- These RRM domains are critical for replication stress-induced double-strand break formation.
Conclusions:
- PARP14's RRM domains mediate its binding to nascent DNA at reversed replication forks.
- This interaction is crucial for MRE11 recruitment, nascent strand degradation, and subsequent double-strand break formation in BRCA-deficient cells.
- The findings enhance the understanding of nuclease engagement at stalled forks and its role in maintaining genomic stability.
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