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Published on: May 14, 2016
NIPSNAP1 directs dual mechanisms to restrain senescence in cancer cells
Enyi Gao1,2, Xiaoya Sun3, Rick Francis Thorne4
1Translational Research Institute, Henan Provincial People's Hospital, School of Clinical Medicine, Henan University, Zhengzhou, 450046, China.
Background:
Although the executive pathways of senescence are known, the underlying control mechanisms are diverse and not fully understood, particularly how cancer cells avoid triggering senescence despite experiencing exacerbated stress conditions within the tumor microenvironment.
Methods:
Mass spectrometry (MS)-based proteomic screening was used to identify differentially regulated genes in serum-starved hepatocellular carcinoma cells and RNAi employed to determine knockdown phenotypes of prioritized genes. Thereafter, gene function was investigated using cell proliferation assays (colony-formation, CCK-8, Edu incorporation and cell cycle) together with cellular senescence assays (SA-β-gal, SAHF and SASP). Gene overexpression and knockdown techniques were applied to examine mRNA and protein regulation in combination with luciferase reporter and proteasome degradation assays, respectively. Flow cytometry was applied to detect changes in cellular reactive oxygen species (ROS) and in vivo gene function examined using a xenograft model.
Results:
Among the genes induced by serum deprivation, NIPSNAP1 was selected for investigation. Subsequent experiments revealed that NIPSNAP1 promotes cancer cell proliferation and inhibits P27-dependent induction of senescence via dual mechanisms. Firstly, NIPSNAP1 maintains the levels of c-Myc by sequestering the E3 ubiquitin ligase FBXL14 to prevent the proteasome-mediated turnover of c-Myc. Intriguingly, NIPSNAP1 levels are restrained by transcriptional repression mediated by c-Myc-Miz1, with repression lifted in response to serum withdrawal, thus identifying feedback regulation between NIPSNAP1 and c-Myc. Secondly, NIPSNAP1 was shown to modulate ROS levels by promoting interactions between the deacetylase SIRT3 and superoxide dismutase 2 (SOD2). Consequent activation of SOD2 serves to maintain cellular ROS levels below the critical levels required to induce cell cycle arrest and senescence. Importantly, the actions of NIPSNAP1 in promoting cancer cell proliferation and preventing senescence were recapitulated in vivo using xenograft models.
Conclusions:
Together, these findings reveal NIPSNAP1 as an important mediator of c-Myc function and a negative regulator of cellular senescence. These findings also provide a theoretical basis for cancer therapy where targeting NIPSNAP1 invokes cellular senescence.
Insights
This study identifies NIPSNAP1 as a key regulator that promotes cancer cell proliferation by inhibiting senescence. Targeting NIPSNAP1 could be a novel cancer therapy strategy to induce cellular senescence.
Area of Science:
- Oncology
- Cellular Biology
- Molecular Mechanisms
Background:
- The mechanisms by which cancer cells evade senescence under stress remain incompletely understood.
- Understanding these mechanisms is crucial for developing effective cancer therapies.
Purpose of the Study:
- To investigate the role of NIPSNAP1 in hepatocellular carcinoma cell proliferation and senescence.
- To elucidate the molecular mechanisms by which NIPSNAP1 influences cancer cell fate.
Main Methods:
- Proteomic screening and RNAi were used to identify and validate NIPSNAP1.
- Functional assays included proliferation, senescence, ROS, and xenograft models.
- Molecular mechanisms were explored using overexpression, knockdown, luciferase, and proteasome assays.
Main Results:
- NIPSNAP1 promotes cancer cell proliferation and inhibits senescence.
- NIPSNAP1 stabilizes c-Myc by sequestering FBXL14 and modulates reactive oxygen species (ROS) via SIRT3-SOD2 interaction.
- NIPSNAP1's pro-proliferative and anti-senescence effects were confirmed in vivo.
Conclusions:
- NIPSNAP1 is a critical mediator of c-Myc function and a negative regulator of cellular senescence.
- Targeting NIPSNAP1 presents a potential therapeutic strategy to induce senescence in cancer cells.
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