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Updated: May 27, 2025

Author Spotlight: Unveiling the Role of SNF2L in Replication Fork Stability and Genome Duplication
Published on: August 23, 2024
Mechanism for local attenuation of DNA replication at double-strand breaks
Robin Sebastian1, Eric G Sun1,2, Michael Fedkenheuer3
1Developmental Therapeutics Branch, National Cancer Institute, National Institutes of Health, Bethesda, MD, USA.
Abstract:
DNA double-strand breaks (DSBs) disrupt the continuity of the genome, with consequences for malignant transformation. Massive DNA damage can elicit a cellular checkpoint response that prevents cell proliferation1,2. However, how highly aggressive cancer cells, which can tolerate widespread DNA damage, respond to DSBs alongside continuous chromosome duplication is unknown. Here we show that DSBs induce a local genome maintenance mechanism that inhibits replication initiation in DSB-containing topologically associating domains (TADs) without affecting DNA synthesis at other genomic locations. This process is facilitated by mediators of replication and DSBs (MRDs). In normal and cancer cells, MRDs include the TIMELESS-TIPIN complex and the WEE1 kinase, which actively dislodges the TIMELESS-TIPIN complex from replication origins adjacent to DSBs and prevents initiation of DNA synthesis at DSB-containing TADs. Dysregulation of MRDs, or disruption of 3D chromatin architecture by dissolving TADs, results in inadvertent replication in damaged chromatin and increased DNA damage in cancer cells. We propose that the intact MRD cascade precedes DSB repair to prevent genomic instability, which is otherwise observed when replication is forced, or when genome architecture is challenged, in the presence of DSBs3-5. These observations reveal a previously unknown vulnerability in the DNA replication machinery that may be exploited to therapeutically target cancer cells.
Insights
DNA double-strand breaks (DSBs) trigger a local genome maintenance mechanism that halts replication initiation in damaged DNA regions. This process, mediated by mediators of replication and DSBs (MRDs), prevents further DNA damage in cancer cells.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA double-strand breaks (DSBs) are critical genomic alterations with implications for cancer development.
- Aggressive cancer cells exhibit tolerance to extensive DNA damage, yet their response to DSBs during replication remains unclear.
Purpose of the Study:
- To investigate the cellular response to DNA double-strand breaks (DSBs) in the context of ongoing chromosome duplication.
- To elucidate the mechanisms that prevent replication in damaged chromatin.
Main Methods:
- Investigated the impact of DSBs on replication initiation within topologically associating domains (TADs).
- Identified and characterized the role of mediators of replication and DSBs (MRDs), including the TIMELESS-TIPIN complex and WEE1 kinase.
- Assessed the consequences of MRD dysregulation and disrupted 3D chromatin architecture on DNA replication and damage.
Main Results:
- DSBs induce a localized mechanism inhibiting replication initiation within DSB-containing TADs, preserving replication elsewhere.
- MRDs, comprising TIMELESS-TIPIN and WEE1, actively prevent replication origin firing near DSBs.
- Disruption of MRDs or TADs leads to replication in damaged DNA, increasing genomic instability in cancer cells.
Conclusions:
- An intact MRD cascade acts as a crucial safeguard, preceding DSB repair to maintain genomic stability.
- This study reveals a novel vulnerability in DNA replication associated with DSBs, potentially targetable for cancer therapy.
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