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Molecular basis for RASSF10/NPM/RNF2 feedback cascade-mediated regulation of gastric cancer cell proliferation
Naga Padma Lakshmi Ch1, Ananthi Sivagnanam1, Sebastian Raja1
1Laboratory of Molecular Cell Biology, National Cancer Tissue Biobank, Department of Biotechnology, Bhupat and Jyoti Mehta School of Biosciences, Indian Institute of Technology-Madras, Chennai, India.
Abstract:
Ras-association domain family (RASSF) proteins are encoded by numerous tumor suppressor genes that frequently become silenced in human cancers. RASSF10 is downregulated by promoter hypermethylation in cancers and has been shown to inhibit cell proliferation; however, the molecular mechanism(s) remains poorly understood. Here, we demonstrate for the first time that RASSF10 inhibits Cdk1/cyclin-B kinase complex formation to maintain stable levels of cyclin-B for inducing mitotic arrest during cell cycle. Using LC-MS/MS, live cell imaging, and biochemical approaches, we identify Nucleophosmin (NPM) as a novel functional target of RASSF10 and revealed that RASSF10 expression promoted the nuclear accumulation of GADD45a and knockdown of either NPM or GADD45a, resulting in impairment of RASSF10-mediated G2/M phase arrest. Furthermore, we demonstrate that RASSF10 is a substrate for the E3 ligase ring finger protein 2 (RNF2) and show that an NPM-dependent downregulation of RNF2 expression is critical to maintain stable RASSF10 levels in cells for efficient mitotic arrest. Interestingly, the Kaplan-Meier plot analysis shows a positive correlation of RASSF10 and NPM expression with greater gastric cancer patient survival and the reverse with expression of RNF2, suggesting that they may have a role in cancer progression. Finally, our findings provide insights into the mode of action of the RASSF10/NPM/RNF2 signaling cascade on controlling cell proliferation and may represent a novel therapeutic avenue for the prevention of gastric cancer metastasis.
Insights
Ras-association domain family 10 (RASSF10) inhibits cell proliferation by blocking Cdk1/cyclin-B complex formation. This tumor suppressor protein targets Nucleophosmin (NPM) and GADD45a, impacting cell cycle arrest and potentially offering new gastric cancer therapies.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Cycle Regulation
Background:
- Ras-association domain family (RASSF) proteins are tumor suppressors frequently silenced in cancers.
- RASSF10 is downregulated in cancer and inhibits proliferation, but its mechanism is unclear.
Purpose of the Study:
- To elucidate the molecular mechanism of RASSF10 in cell cycle regulation.
- To identify novel functional targets and signaling pathways of RASSF10.
Main Methods:
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS)
- Live cell imaging
- Biochemical assays
- RNA interference (knockdown)
- Kaplan-Meier survival analysis
Main Results:
- RASSF10 inhibits Cdk1/cyclin-B complex formation, stabilizing cyclin-B and inducing G2/M phase arrest.
- Nucleophosmin (NPM) and GADD45a are novel targets; RASSF10 promotes nuclear accumulation of GADD45a.
- RASSF10 is a substrate for RNF2; NPM-dependent downregulation of RNF2 maintains RASSF10 levels.
- RASSF10 and NPM expression correlate with better gastric cancer survival, while RNF2 correlates with poorer survival.
Conclusions:
- The RASSF10/NPM/RNF2 signaling cascade controls cell proliferation through mitotic arrest.
- This pathway represents a potential therapeutic target for gastric cancer prevention and treatment.
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