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Decreased MicroRNA-26a expression causes cisplatin resistance in human non-small cell lung cancer
Yong Yang1, Peng Zhang1, Yanfeng Zhao1
1a Department of Thoracic Surgery , Shanghai Pulmonary Hospital, Tongji University School of Medicine , Shanghai , China.
Background:
Lung cancer is the most common cancer that is caused by perturbation of regulatory pathways rather than dysfunction of a single gene. Cisplatin (CDDP; cis-diamminedichloroplatinum II) is the first member of a class of platinum-containing anti-cancer medication, which binds to DNA and triggers apoptosis. CDDP-based chemotherapy is used to treat various types of cancers. However, the efficacy of CDDP in the treatment of non-small-cell lung cancer (NSCLC) is limited by acquired drug resistance. MicroRNAs have recently emerged as key regulators of cancers, and miR-26a is one of down-regulated miRNAs in A549/CDDPres cell line. This study aimed to investigate the role of miR-26a in CDDP resistance in NSCLC as well as the underlying mechanisms.
Methods:
In this study, we analyzed expressional profiles of CDDP resistance-related mRNA, miRNA, and transcription factors (TF) that regulate miRNA expression in NSCLC. A549 cells were treated with CDDP, miR-26a mimic, or miR-26a inhibitor, and followed by biological analysis including drug sensitivity assay, colony formation assay, terminal-deoxynucleoitidyl Transferase Mediated Nick End Labeling (TUNEL) assay, and cell cycle analysis. Luciferase assay was used to determine the target of miR-26a. The regulation of miR-26a in Akt pathway was measured by western blot.
Results:
High mobility group A (HMGA) 2 was identified as the target of miR-26a. Overexpression of miR-26a in A549 cells inhibited G1-S transition, increased cell death in response to CDDP treatment, and decreased the colony formation of A549 cells. MiR-26a significantly decreased the expression of E2F1, diminished Akt phosphorylation, and downregulated Bcl2 expression. Cell growth was suppressed by inhibiting HMGA2-mediated E2F1-Akt pathway.
Conclusion:
MiR-26a is responsible for A549 cell sensitivity in the treatment of CDDP through regulating HMGA2-mediated E2F1-Akt pathway.
Insights
MicroRNA-26a enhances cisplatin sensitivity in non-small-cell lung cancer by targeting HMGA2, thereby regulating the E2F1-Akt pathway and overcoming drug resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Lung cancer is a prevalent malignancy driven by complex regulatory pathway disruptions.
- Cisplatin (CDDP) is a platinum-based chemotherapy agent effective against various cancers, but acquired resistance limits its efficacy in non-small-cell lung cancer (NSCLC).
- MicroRNAs (miRNAs) are critical regulators in cancer; miR-26a is downregulated in CDDP-resistant A549 cells, suggesting a role in resistance.
Purpose of the Study:
- To investigate the role of miR-26a in CDDP resistance in NSCLC.
- To elucidate the underlying molecular mechanisms by which miR-26a influences CDDP sensitivity.
Main Methods:
- Analysis of expressional profiles of CDDP resistance-related genes and miRNAs in NSCLC.
- Treatment of A549 cells with CDDP, miR-26a mimic, or inhibitor, followed by assays for drug sensitivity, colony formation, apoptosis (TUNEL), and cell cycle.
- Luciferase assays to identify miR-26a targets and Western blot to assess Akt pathway regulation.
Main Results:
- High mobility group A (HMGA) 2 was identified as a direct target of miR-26a.
- Overexpression of miR-26a sensitized A549 cells to CDDP, inhibiting cell proliferation, colony formation, and promoting apoptosis.
- MiR-26a reduced E2F1 expression, Akt phosphorylation, and Bcl2 levels, suppressing cell growth via the HMGA2-E2F1-Akt pathway.
Conclusions:
- MiR-26a plays a crucial role in mediating A549 cell sensitivity to CDDP treatment.
- The miR-26a/HMGA2/E2F1/Akt pathway is a key mechanism underlying CDDP resistance in NSCLC.
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