The WRN and MUS81 proteins limit cell death and genome instability following oncogene activation
I Murfuni1, S Nicolai, S Baldari
1Section of Experimental and Computational Carcinogenesis, Istituto Superiore di Sanità, Rome, Italy.
Abstract:
Oncogene-induced replication stress is recognized as the primary cause of accumulation of DNA damage and genome instability in precancerous cells. Although the molecular mechanisms responding to such type of replication perturbation are not fully characterized, it has been speculated that their dysfunction may enhance genome instability and accelerate tumor progression. Here, we show that the WRN protein, a member of the human RecQ helicases, is necessary to sustain replication fork progression in response to oncogene-induced replication stress. Loss of WRN affects cell cycle progression and results in enhanced accumulation of double-strand breaks and instability at common fragile sites in cells experiencing oncogene-induced replication stress. Moreover, we demonstrate that double-strand breaks, observed upon oncogene over-expression, depend on the MUS81 endonuclease, which represents a parallel pathway collaborating with WRN to prevent cell death. Overall, our findings give insights into the mechanisms protecting replication forks in cells experiencing oncogene-induced replication stress, and identify factors that, when mutated or dysfunctional, may enhance genome instability in precancerous cells. In addition, because concomitant depletion of WRN and MUS81 causes synthetic sickness in cells growing under oncogene-induced replication stress, our results support the possibility of targeting cancer cells with an impaired replication fork recovery pathway by a specific inactivation of the other parallel pathway.
Insights
The WRN protein is crucial for maintaining replication fork stability during oncogene-induced stress. Its loss, along with MUS81 endonuclease, accelerates DNA damage and genome instability in precancerous cells.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Oncogene-induced replication stress drives DNA damage and genome instability in precancerous cells.
- Dysfunctional response mechanisms may accelerate tumor progression.
Purpose of the Study:
- Investigate the role of WRN protein in replication fork stability under oncogene-induced stress.
- Elucidate the mechanisms protecting replication forks and identify factors contributing to genome instability.
Main Methods:
- Studied WRN protein function in response to oncogene-induced replication stress.
- Assessed cell cycle progression, DNA double-strand breaks, and common fragile site instability.
- Investigated the role of MUS81 endonuclease in DNA damage response.
Main Results:
- WRN protein is essential for sustaining replication fork progression under oncogene-induced stress.
- Loss of WRN leads to increased double-strand breaks and instability at fragile sites.
- MUS81 endonuclease collaborates with WRN to prevent cell death, with double-strand breaks depending on MUS81.
Conclusions:
- WRN and MUS81 are key factors in protecting replication forks during oncogene-induced stress.
- Dysfunctional WRN or MUS81 can enhance genome instability in precancerous cells.
- Targeting cancer cells with impaired replication fork recovery by inactivating parallel pathways is a potential therapeutic strategy.
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