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Ectopic expression of cancer/testis antigen SSX2 induces DNA damage and promotes genomic instability
Katrine B V Greve1, Jonas N Lindgreen1, Mikkel G Terp2
1Department of Cancer and Inflammation Research, Institute for Molecular Medicine, University of Southern Denmark, DK-5000 Odense, Denmark.
Abstract:
SSX cancer/testis antigens are frequently expressed in melanoma tumors and represent attractive targets for immunotherapy, but their role in melanoma tumorigenesis has remained elusive. Here, we investigated the cellular effects of SSX2 expression. In A375 melanoma cells, SSX2 expression resulted in an increased DNA content and enlargement of cell nuclei, suggestive of replication aberrations. The cells further displayed signs of DNA damage and genomic instability, associated with p53-mediated G1 cell cycle arrest and a late apoptotic response. These results suggest a model wherein SSX2-mediated replication stress translates into mitotic defects and genomic instability. Arrest of cell growth and induction of DNA double-strand breaks was also observed in MCF7 breast cancer cells in response to SSX2 expression. Additionally, MCF7 cells with ectopic SSX2 expression demonstrated typical signs of senescence (i.e. an irregular and enlarged cell shape, enhanced β-galactosidase activity and DNA double-strand breaks). Since replication defects, DNA damage and senescence are interconnected and well-documented effects of oncogene expression, we tested the oncogenic potential of SSX2. Importantly, knockdown of SSX2 expression in melanoma cell lines demonstrated that SSX2 supports the growth of melanoma cells. Our results reveal two important phenotypes of ectopic SSX2 expression that may drive/support tumorigenesis: First, immediate induction of genomic instability, and second, long-term support of tumor cell growth.
Insights
SSX2 expression in cancer cells causes DNA damage and genomic instability, promoting tumor cell growth. This suggests SSX2 may be a key driver in melanoma tumorigenesis and a potential immunotherapy target.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Cancer/testis antigens, such as SSX proteins, are prevalent in melanoma but their oncogenic role is unclear.
- Understanding SSX antigen function is crucial for developing targeted melanoma therapies.
Purpose of the Study:
- To investigate the cellular effects and oncogenic potential of SSX2 expression in cancer cells.
- To elucidate the role of SSX2 in melanoma tumorigenesis.
Main Methods:
- Ectopic expression of SSX2 in melanoma (A375) and breast cancer (MCF7) cell lines.
- Analysis of DNA content, cell morphology, cell cycle progression, DNA damage markers, and senescence indicators.
- SSX2 gene knockdown in melanoma cells.
Main Results:
- SSX2 expression induced replication aberrations, DNA damage, and genomic instability in A375 cells, leading to p53-mediated cell cycle arrest and apoptosis.
- SSX2 expression triggered cell growth arrest, DNA double-strand breaks, and senescence in MCF7 cells.
- SSX2 knockdown inhibited melanoma cell growth, indicating SSX2 supports tumor progression.
Conclusions:
- SSX2 expression can directly induce genomic instability and senescence, contributing to tumorigenesis.
- SSX2 plays a significant role in supporting melanoma cell growth, highlighting its potential as a therapeutic target.
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