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Updated: Jan 31, 2026

Direct Restart of a Replication Fork Stalled by a Head-On RNA Polymerase
Published on: April 29, 2010
Mitotic regulators TPX2 and Aurora A protect DNA forks during replication stress by counteracting 53BP1 function
Andrea K Byrum1, Denisse Carvajal-Maldonado2, Miranda C Mudge1
1Department of Pathology and Immunology, Washington University in St. Louis, St. Louis, MO.
Abstract:
53BP1 is a chromatin-associated protein that regulates the DNA damage response. In this study, we identify the TPX2/Aurora A heterodimer, nominally considered a mitotic kinase complex, as a novel binding partner of 53BP1. We find that TPX2/Aurora A plays a previously unrecognized role in DNA damage repair and replication fork stability by counteracting 53BP1 function. Loss of TPX2 or Aurora A compromises DNA end resection, BRCA1 and Rad51 recruitment, and homologous recombination. Furthermore, loss of TPX2 or Aurora A causes deprotection of stalled replication forks upon replication stress induction. This fork protection pathway counteracts MRE11 nuclease activity but functions in parallel to BRCA1. Strikingly, concurrent loss of 53BP1 rescues not only BRCA1/Rad51 recruitment but also the fork instability induced upon TPX2 loss. Our work suggests the presence of a feedback mechanism by which 53BP1 is regulated by a novel binding partner and uncovers a unique role for 53BP1 in replication fork stability.
Insights
The TPX2/Aurora A complex binds 53BP1, a protein involved in DNA damage repair. This complex unexpectedly regulates DNA repair and replication fork stability, revealing a new feedback mechanism for 53BP1.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- 53BP1 is crucial for the DNA damage response.
- TPX2/Aurora A is a known mitotic kinase complex.
Purpose of the Study:
- Identify novel binding partners of 53BP1.
- Investigate the role of TPX2/Aurora A in DNA repair and replication fork stability.
Main Methods:
- Co-immunoprecipitation to identify binding partners.
- Depletion studies using siRNA or CRISPR.
- Assessment of DNA repair markers (BRCA1, Rad51) and DNA end resection.
- Replication stress assays.
Main Results:
- TPX2/Aurora A directly binds to 53BP1.
- Loss of TPX2/Aurora A impairs DNA end resection, BRCA1/Rad51 recruitment, and homologous recombination.
- TPX2/Aurora A loss leads to deprotection of stalled replication forks.
- 53BP1 loss rescues defects caused by TPX2/Aurora A depletion.
Conclusions:
- TPX2/Aurora A has a novel role in DNA damage repair and replication fork stability, counteracting 53BP1.
- A feedback mechanism regulates 53BP1 via TPX2/Aurora A.
- 53BP1 is essential for replication fork stability.
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