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Molecular and Functional Analysis of Sunitinib-Resistance Induction in Human Renal Cell Carcinoma Cells
Magdalena Rausch1,2,3, Adriano Rutz1,2, Pierre-Marie Allard1,2
1School of Pharmaceutical Sciences, University of Geneva, CMU-Rue Michel-Servet 1, CH-1211 Geneva, Switzerland.
Abstract:
Resistance in clear cell renal cell carcinoma (ccRCC) against sunitinib is a multifaceted process encompassing numerous molecular aberrations. This induces clinical complications, reducing the treatment success. Understanding these aberrations helps us to select an adapted treatment strategy that surpasses resistance mechanisms, reverting the treatment insensitivity. In this regard, we investigated the dominant mechanisms of resistance to sunitinib and validated an optimized multidrug combination to overcome this resistance. Human ccRCC cells were exposed to single or chronic treatment with sunitinib to obtain three resistant clones. Upon manifestation of sunitinib resistance, morphometric changes in the cells were observed. At the molecular level, the production of cell membrane and extracellular matrix components, chemotaxis, and cell cycle progression were dysregulated. Molecules enforcing the cell cycle progression, i.e., cyclin A, B1, and E, were upregulated. Mass spectrometry analysis revealed the intra- and extracellular presence of N-desethyl sunitinib, the active metabolite. Lysosomal sequestration of sunitinib was confirmed. After treatment with a synergistic optimized drug combination, the cell metabolic activity in Caki-1-sunitinib-resistant cells and 3D heterotypic co-cultures was reduced by >80%, remaining inactive in non-cancerous cells. These results demonstrate geno- and phenotypic changes in response to sunitinib treatment upon resistance induction. Mimicking resistance in the laboratory served as a platform to study drug responses.
Insights
This study reveals how clear cell renal cell carcinoma (ccRCC) cells become resistant to sunitinib, identifying molecular changes and validating a drug combination that effectively reduces cancer cell activity.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Clear cell renal cell carcinoma (ccRCC) often develops resistance to sunitinib, a targeted therapy, leading to treatment failure.
- Understanding the molecular mechanisms behind sunitinib resistance is crucial for developing effective therapeutic strategies.
Purpose of the Study:
- To investigate the primary mechanisms driving sunitinib resistance in ccRCC.
- To validate an optimized multidrug combination designed to overcome this resistance.
Main Methods:
- Generated sunitinib-resistant ccRCC cell clones through chronic exposure.
- Analyzed morphometric and molecular changes, including cell cycle regulators and metabolite presence, using mass spectrometry.
- Assessed the efficacy of a synergistic drug combination on resistant cells and co-cultures.
Main Results:
- Sunitinib resistance induced significant geno- and phenotypic changes in ccRCC cells.
- Upregulation of cell cycle molecules (cyclin A, B1, E) and dysregulation of membrane/extracellular matrix components were observed.
- The validated drug combination reduced metabolic activity in resistant cells by over 80%.
Conclusions:
- Sunitinib resistance involves complex molecular alterations, including lysosomal sequestration of the drug.
- An optimized multidrug approach shows promise in overcoming sunitinib resistance in ccRCC.
- Laboratory models of resistance aid in studying and overcoming drug insensitivity.
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