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Tumoricidal Activity of Simvastatin in Synergy with RhoA Inactivation in Antimigration of Clear Cell Renal Cell
Yuan-Chii Gladys Lee1, Fang-Ning Chou2, Szu-Yu Tung2
1Graduate Institute of Biomedical Informatics, College of Medical Science and Technology, Taipei Medical University, Taipei 11031, Taiwan.
Abstract:
Among kidney cancers, clear cell renal cell carcinoma (ccRCC) has the highest incidence rate in adults. The survival rate of patients diagnosed as having metastatic ccRCC drastically declines even with intensive treatment. We examined the efficacy of simvastatin, a lipid-lowering drug with reduced mevalonate synthesis, in ccRCC treatment. Simvastatin was found to reduce cell viability and increase autophagy induction and apoptosis. In addition, it reduced cell metastasis and lipid accumulation, the target proteins of which can be reversed through mevalonate supplementation. Moreover, simvastatin suppressed cholesterol synthesis and protein prenylation that is essential for RhoA activation. Simvastatin might also reduce cancer metastasis by suppressing the RhoA pathway. A gene set enrichment analysis (GSEA) of the human ccRCC GSE53757 data set revealed that the RhoA and lipogenesis pathways are activated. In simvastatin-treated ccRCC cells, although RhoA was upregulated, it was mainly restrained in the cytosolic fraction and concomitantly reduced Rho-associated protein kinase activity. RhoA upregulation might be a negative feedback effect owing to the loss of RhoA activity caused by simvastatin, which can be restored by mevalonate. RhoA inactivation by simvastatin was correlated with decreased cell metastasis in the transwell assay, which was mimicked in dominantly negative RhoA-overexpressing cells. Thus, owing to the increased RhoA activation and cell metastasis in the human ccRCC dataset analysis, simvastatin-mediated Rho inactivation might serve as a therapeutic target for ccRCC patients. Altogether, simvastatin suppressed the cell viability and metastasis of ccRCC cells; thus, it is a potentially effective ccRCC adjunct therapy after clinical validation for ccRCC treatment.
Insights
Simvastatin, a cholesterol-lowering drug, effectively reduced clear cell renal cell carcinoma (ccRCC) cell viability and metastasis. This lipid-lowering therapy shows potential as an adjunct treatment for ccRCC patients by targeting the RhoA pathway.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Clear cell renal cell carcinoma (ccRCC) is the most common kidney cancer in adults.
- Metastatic ccRCC has a poor prognosis despite intensive treatments.
- Simvastatin is a lipid-lowering drug that inhibits mevalonate synthesis.
Purpose of the Study:
- To investigate the efficacy of simvastatin as a potential treatment for ccRCC.
- To elucidate the molecular mechanisms underlying simvastatin's effects on ccRCC cells.
Main Methods:
- In vitro studies on ccRCC cells treated with simvastatin.
- Analysis of cell viability, autophagy, apoptosis, lipid accumulation, and metastasis.
- Gene set enrichment analysis (GSEA) of ccRCC patient data (GSE53757).
- Investigation of the RhoA signaling pathway and its modulation by simvastatin.
Main Results:
- Simvastatin reduced ccRCC cell viability, induced autophagy and apoptosis, and decreased lipid accumulation.
- Simvastatin suppressed cholesterol synthesis and protein prenylation, inhibiting RhoA activation.
- GSEA revealed activated RhoA and lipogenesis pathways in human ccRCC.
- Simvastatin-mediated RhoA inactivation correlated with decreased cell metastasis.
Conclusions:
- Simvastatin demonstrates potential as an adjunct therapy for ccRCC by suppressing cell viability and metastasis.
- Targeting simvastatin-mediated RhoA inactivation could be a therapeutic strategy for ccRCC.
- Further clinical validation is required to confirm simvastatin's efficacy in ccRCC treatment.
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