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Updated: Jul 13, 2025

Author Spotlight: Unveiling the Role of SNF2L in Replication Fork Stability and Genome Duplication
Published on: August 23, 2024
The cancer testes antigen, HORMAD1, limits genomic instability in cancer cells by protecting stalled replication
Luis Reza Herrera1, Ronnesha A Johnson1, Kathleen McGlynn1
1Department of Pharmacology, UT Southwestern Medical Center, Dallas, Texas, USA.
Abstract:
Tumors anomalously induce the expression of meiotic genes, which are otherwise restricted only to developing gametes. If and how these aberrantly expressed meiotic proteins influence DNA metabolism is not clear, but could have important implications for how tumors acquire and mitigate genomic instability. HORMAD1 is a highly conserved meiotic protein that is frequently expressed in lung adenocarincoma where its expression correlates with reduced patient survival and increased mutation burden. Here, we find that HORMAD1 associates with the replisome and is critical for protecting stalled DNA replication forks. Loss of HORMAD1 leads to nascent DNA strand degradation, an event which is mediated by the MRE11-DNA2-BLM pathway. We find that these phenotypes are due to limited RAD51 loading onto stalled replication forks in the absence of HORMAD1. Ultimately, loss of HORMAD1 leads to increased DNA breaks and chromosomal defects, which is exacerbated dramatically by induction of replication stress. Tumor cells proliferate despite encountering chronic replication stress, placing them on the precipice of catastrophic genomic damage. Our data support the hypothesis that the aberrant expression of HORMAD1 is engaged to attenuate the accumulation of excessive DNA damage due to chronic replication stress, which may otherwise lead to accumulation of toxic levels of genomic instability.
Insights
Tumor cells express meiotic protein HORMAD1 to protect stalled DNA replication forks from degradation. Loss of HORMAD1 increases DNA breaks and chromosomal defects, especially under replication stress.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Tumors aberrantly express meiotic genes, impacting DNA metabolism and genomic instability.
- HORMAD1, a meiotic protein, is upregulated in lung adenocarcinoma, correlating with poor prognosis and higher mutation burden.
Purpose of the Study:
- Investigate the role of HORMAD1 in DNA replication and repair in cancer cells.
- Determine how HORMAD1 influences genomic stability under replication stress.
Main Methods:
- Assessed HORMAD1's association with the replisome.
- Studied the consequences of HORMAD1 loss on DNA replication forks and DNA damage.
- Investigated the role of the MRE11-DNA2-BLM pathway and RAD51 loading.
Main Results:
- HORMAD1 associates with the replisome and protects stalled replication forks.
- HORMAD1 deficiency causes nascent DNA strand degradation via the MRE11-DNA2-BLM pathway.
- Loss of HORMAD1 results in reduced RAD51 loading, increased DNA breaks, and chromosomal defects, exacerbated by replication stress.
Conclusions:
- Aberrant HORMAD1 expression in tumors may serve to mitigate DNA damage from chronic replication stress.
- HORMAD1 plays a critical role in maintaining genomic stability in cancer cells facing replication stress.
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