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Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
PKC-alpha modulation by miR-483-3p in platinum-resistant ovarian carcinoma cells
Noemi Arrighetti1, Giacomo Cossa1, Loris De Cecco2
1Molecular Pharmacology Unit, Fondazione IRCCS Istituto Nazionale dei Tumori, via Amadeo 42, Milan 20133, Italy.
Abstract:
The occurrence of drug resistance limits the efficacy of platinum compounds in the cure of ovarian carcinoma. Since microRNAs (miRNAs) may contribute to this phenomenon by regulating different aspects of tumor cell response, the aim of this study was to exploit the analysis of expression of miRNAs in platinum sensitive/resistant cells in an attempt to identify potential regulators of drug response. MiR-483-3p, which may participate in apoptosis and cell proliferation regulation, was found up-regulated in 4 platinum resistant variants, particularly in the IGROV-1/Pt1 subline, versus parental cells. Transfection of a synthetic precursor of miR-483-3p in IGROV-1 parental cells elicited a marked up-regulation of the miRNA levels. Growth-inhibition and colony-forming assays indicated that miR-483-3p over-expression reduced cell growth and conferred mild levels of cisplatin resistance in IGROV-1 cells, by interference with their proliferative potential. Predicted targets of miR-483-3p included PRKCA (encoding PKC-alpha), previously reported to be associated to platinum-resistance in ovarian carcinoma. We found that miR-483-3p directly targeted PRKCA in IGROV-1 cells. In keeping with this finding, cisplatin sensitivity of IGROV-1 cells decreased upon molecular/pharmacological inhibition of PKC-alpha. Overall, our results suggest that overexpression of miR-483-3p by ovarian carcinoma platinum-resistant cells may interfere with their proliferation, thus protecting them from DNA damage induced by platinum compounds and ultimately representing a drug-resistance mechanism. The impairment of cell growth may account for low levels of drug resistance that could be relevant in the clinical setting.
Insights
MicroRNA-483-3p (miR-483-3p) is upregulated in platinum-resistant ovarian cancer cells. Its overexpression reduces cell proliferation and contributes to cisplatin resistance by targeting PRKCA (PKC-alpha).
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Platinum compounds are crucial for ovarian carcinoma treatment.
- Drug resistance significantly limits the efficacy of platinum-based chemotherapy.
- MicroRNAs (miRNAs) are implicated in regulating cellular responses to cancer drugs.
Purpose of the Study:
- To identify microRNAs involved in platinum resistance in ovarian cancer.
- To investigate the role of miR-483-3p in platinum-sensitive and resistant ovarian cancer cells.
- To elucidate the mechanism by which miR-483-3p influences drug response.
Main Methods:
- Analysis of miRNA expression in platinum-sensitive and resistant ovarian cancer cell lines.
- Transfection of miR-483-3p precursor in ovarian cancer cells.
- Cell growth inhibition and colony-forming assays.
- Target validation using luciferase assays and Western blotting.
- Molecular and pharmacological inhibition of PKC-alpha.
Main Results:
- miR-483-3p was significantly upregulated in platinum-resistant ovarian cancer variants.
- Overexpression of miR-483-3p in parental cells reduced cell growth and conferred mild cisplatin resistance.
- miR-483-3p directly targeted PRKCA (encoding PKC-alpha).
- Inhibition of PKC-alpha decreased cisplatin sensitivity in ovarian cancer cells.
Conclusions:
- Upregulated miR-483-3p is a potential mechanism for platinum drug resistance in ovarian carcinoma.
- miR-483-3p may confer resistance by interfering with cell proliferation via PRKCA targeting.
- This finding offers insights into overcoming platinum resistance in ovarian cancer treatment.
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