Loss of fragile WWOX gene leads to senescence escape and genome instability
Hui-Ching Cheng1, Po-Hsien Huang2, Feng-Jie Lai3,4
1Institute of Basic Medical Sciences, College of Medicine, National Cheng Kung University, Tainan, 70101, Taiwan.
Abstract:
Induction of DNA damage response (DDR) to ensure accurate duplication of genetic information is crucial for maintaining genome integrity during DNA replication. Cellular senescence is a DDR mechanism that prevents the proliferation of cells with damaged DNA to avoid mitotic anomalies and inheritance of the damage over cell generations. Human WWOX gene resides within a common fragile site FRA16D that is preferentially prone to form breaks on metaphase chromosome upon replication stress. We report here that primary Wwox knockout (Wwox-/-) mouse embryonic fibroblasts (MEFs) and WWOX-knockdown human dermal fibroblasts failed to undergo replication-induced cellular senescence after multiple passages in vitro. Strikingly, by greater than 20 passages, accelerated cell cycle progression and increased apoptosis occurred in these late-passage Wwox-/- MEFs. These cells exhibited γH2AX upregulation and microsatellite instability, indicating massive accumulation of nuclear DNA lesions. Ultraviolet radiation-induced premature senescence was also blocked by WWOX knockdown in human HEK293T cells. Mechanistically, overproduction of cytosolic reactive oxygen species caused p16Ink4a promoter hypermethylation, aberrant p53/p21Cip1/Waf1 signaling axis and accelerated p27Kip1 protein degradation, thereby leading to the failure of senescence induction in Wwox-deficient cells after serial passage in culture. We determined that significantly reduced protein stability or loss-of-function A135P/V213G mutations in the DNA-binding domain of p53 caused defective induction of p21Cip1/Waf1 in late-passage Wwox-/- MEFs. Treatment of N-acetyl-L-cysteine prevented downregulation of cyclin-dependent kinase inhibitors and induced senescence in Wwox-/- MEFs. Our findings support an important role for fragile WWOX gene in inducing cellular senescence for maintaining genome integrity during DDR through alleviating oxidative stress.
Insights
The WWOX gene is crucial for inducing cellular senescence, a DNA damage response that maintains genome integrity. Loss of WWOX function impairs this process, leading to DNA damage accumulation and cell death.
Area of Science:
- Genetics
- Cell Biology
- Molecular Biology
Background:
- Cellular senescence is a critical DNA damage response (DDR) mechanism preventing proliferation of cells with damaged DNA.
- The human WWOX gene is located at a common fragile site (FRA16D) prone to breakage during replication stress.
- Maintaining genome integrity during DNA replication is essential and relies on accurate genetic duplication.
Purpose of the Study:
- To investigate the role of the WWOX gene in replication-induced cellular senescence.
- To elucidate the molecular mechanisms by which WWOX deficiency impacts senescence and genome integrity.
- To determine the effect of WWOX loss on DNA damage accumulation and cell fate.
Main Methods:
- Utilized Wwox knockout (Wwox-/-) mouse embryonic fibroblasts (MEFs) and WWOX-knockdown human dermal fibroblasts.
- Assessed cellular senescence, cell cycle progression, apoptosis, and DNA damage markers (γH2AX, microsatellite instability).
- Investigated signaling pathways including p53/p21Cip1/Waf1, p16Ink4a, p27Kip1, and reactive oxygen species (ROS).
Main Results:
- Wwox-/- MEFs and WWOX-knockdown cells failed to undergo replication-induced senescence.
- Late-passage Wwox-/- MEFs showed accelerated cell cycle progression, increased apoptosis, and accumulated DNA lesions (γH2AX, microsatellite instability).
- WWOX knockdown blocked UV-induced senescence; WWOX deficiency led to ROS overproduction, p16Ink4a promoter hypermethylation, aberrant p53/p21Cip1/Waf1 signaling, and p27Kip1 degradation.
Conclusions:
- The fragile WWOX gene plays a vital role in inducing cellular senescence to maintain genome integrity during DDR.
- WWOX deficiency impairs senescence induction by increasing oxidative stress, affecting key cell cycle regulators and p53 signaling.
- Alleviating oxidative stress with N-acetyl-L-cysteine restored senescence in Wwox-deficient cells, highlighting WWOX's protective function.
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