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Updated: Jul 29, 2026

Analysis of DNA Double-strand Break (DSB) Repair in Mammalian Cells
Published on: September 8, 2010
Importance of DNA repair in tumor suppression
Yisroel Brumer1, Eugene I Shakhnovich
1Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA.
Abstract:
The transition from a normal to cancerous cell requires a number of highly specific mutations that affect cell cycle regulation, apoptosis, differentiation, and many other cell functions. One hallmark of cancerous genomes is genomic instability, with mutation rates far greater than those of normal cells. In microsatellite instability (MIN tumors), these are often caused by damage to mismatch repair genes, allowing further mutation of the genome and tumor progression. These mutation rates may lie near the error catastrophe found in the quasispecies model of adaptive RNA genomes, suggesting that further increasing mutation rates will destroy cancerous genomes. However, recent results have demonstrated that DNA genomes exhibit an error threshold at mutation rates far lower than their conservative counterparts. Furthermore, while the maximum viable mutation rate in conservative systems increases indefinitely with increasing master sequence fitness, the semiconservative threshold plateaus at a relatively low value. This implies a paradox, wherein inaccessible mutation rates are found in viable tumor cells. In this paper, we address this paradox, demonstrating an isomorphism between the conservatively replicating (RNA) quasispecies model and the semiconservative (DNA) model with post-methylation DNA repair mechanisms impaired. Thus, as DNA repair becomes inactivated, the maximum viable mutation rate increases smoothly to that of a conservatively replicating system on a transformed landscape, with an upper bound that is dependent on replication rates. On a specific single fitness peak landscape, the repair-free semiconservative system is shown to mimic a conservative system exactly. We postulate that inactivation of post-methylation repair mechanisms is fundamental to the progression of a tumor cell and hence these mechanisms act as a method for the prevention and destruction of cancerous genomes.
Insights
Cancerous genomes exhibit high mutation rates, yet face an error threshold. Impaired DNA repair in tumors allows mutation rates to increase, potentially explaining cancer progression and offering therapeutic targets.
Area of Science:
- Genomics
- Cancer Biology
- Evolutionary Theory
Background:
- Cancer cells accumulate mutations, leading to genomic instability and altered cell functions.
- Microsatellite instability (MIN) tumors result from damaged mismatch repair genes, increasing mutation rates.
- High mutation rates in cancer approach 'error catastrophe,' yet DNA genomes have lower thresholds than RNA.
Purpose of the Study:
- To resolve the paradox of high mutation rates in viable tumor cells despite DNA's low error threshold.
- To explore the relationship between DNA repair mechanisms and viable mutation rates in cancer.
Main Methods:
- Modeled DNA replication with impaired post-methylation DNA repair mechanisms.
- Compared the semiconservative DNA model to the conservative quasispecies model (RNA genomes).
- Analyzed the effect of repair inactivation on maximum viable mutation rates.
Main Results:
- Demonstrated an isomorphism between RNA quasispecies and DNA models with impaired repair.
- Inactivated DNA repair increases maximum viable mutation rates, approaching those of conservative systems.
- Repair-free semiconservative systems mimic conservative systems on specific fitness landscapes.
Conclusions:
- Inactivation of post-methylation DNA repair is crucial for tumor cell progression.
- This inactivation mechanism allows cancer genomes to tolerate higher mutation rates.
- Targeting DNA repair pathways could offer strategies for cancer prevention and treatment.
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