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Negatively regulating mechanism of Sirpalpha1 in hepatocellular carcinoma: an experimental study
Jian-Min Qin1, He-Xin Yan, Shu-Qin Liu
1International Co-operational Laboratory on Signal Transduction, Eastern Hepatobiliary Surgery Institute, Second Military Medical University, Shanghai 200438, China. jianminqin@yahoo.com
Background:
Signal regulatory protein (Sirp) is a recently isolated, cloned and identified inhibitor receptor distributed in the membrane of hematopoietic and nonhematopoietic cells. Sirp alpha1 (Sirpalpha1) is a member of Sirp families. Sirpalpha1 can bind SHP-2 in the form of tyrosine phosphorylation by SH2 effect and negatively regulate growth factor, oncogene, or insulin-induced responses as its substrate. This study aimed to preliminarily clarify the negatively regulating proliferation mechanism of Sirpalpha1 in liver cancer.
Methods:
pLXSN, Sirpalpha1 and Sirpalpha1P4Y2 plasmids were respectively transfected into Sk-Hep1 liver cancer cell line, and various stable Sk-Hep1 cell lines were obtained with screening agent of G418 (1200 microg/ml). The expressing levels of cyclin D1, CDK4, Fas, beta-catenin and gankyrin in various cell lines were determined with Western blotting. Cell cycles were determined at 0, 12 and 24 hours with flow cytometry after various synchronous cell lines were cultured without serum for 72. Cell apoptosis induced with agent of TNF-alpha (50 ng/ml) was determined with flow cytometry at 0, 0.5, 1, 3, 6 and 12 hours.
Results:
Sirpalpha1 could significantly decrease the expression of cyclin D1, beta-catenin and gankyrin, but it couldn't affect the expression level of CDK4 and Fas. When synchronous cells were cultured for 12 hours, S phase Sk-Hep1 cell transfected with Sirpalpha1 plasmid was the lowest [(31.92+/-0.22)% vs. other cell lines, P<0.05], and the cell line was highly sensitive to TNF-alpha agent for 1 hour. (59.31+/-0.59)% of apoptotic cells occurred (vs. the other time points, P<0.05).
Conclusions:
Sirpalpha1 might block the cell cycle of liver cancer, inhibit cell proliferation, promote cell apoptosis by decreasing the expression of cyclin D1, beta-catenin and gankyrin. It is one of the important mechanisms inhibiting the occurrence and development of hepatocellular carcinoma.
Insights
Signal regulatory protein alpha1 (Sirpalpha1) inhibits liver cancer cell proliferation by blocking the cell cycle and promoting apoptosis. This mechanism involves decreasing key proteins like cyclin D1, beta-catenin, and gankyrin.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Biology
Background:
- Signal regulatory protein (Sirp) is an inhibitor receptor found on various cells.
- Sirp alpha1 (Sirpalpha1) negatively regulates cellular responses.
- Understanding Sirpalpha1's role in liver cancer proliferation is crucial.
Purpose of the Study:
- To investigate the mechanism by which Sirpalpha1 inhibits liver cancer cell proliferation.
- To analyze the effect of Sirpalpha1 on cell cycle and apoptosis in liver cancer cells.
Main Methods:
- Transfection of Sk-Hep1 liver cancer cells with Sirpalpha1 plasmids.
- Western blotting to determine protein expression levels (cyclin D1, CDK4, Fas, beta-catenin, gankyrin).
- Flow cytometry to analyze cell cycle progression and TNF-alpha-induced apoptosis.
Main Results:
- Sirpalpha1 significantly decreased cyclin D1, beta-catenin, and gankyrin expression.
- Sirpalpha1 transfection resulted in the lowest S phase cell percentage.
- Cells expressing Sirpalpha1 showed increased sensitivity to TNF-alpha-induced apoptosis.
Conclusions:
- Sirpalpha1 inhibits liver cancer cell proliferation by blocking the cell cycle.
- Sirpalpha1 promotes apoptosis in liver cancer cells.
- Decreased expression of cyclin D1, beta-catenin, and gankyrin is a key mechanism for Sirpalpha1's anti-cancer effects in hepatocellular carcinoma.
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