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Modulation of NF-κB/miR-21/PTEN pathway sensitizes non-small cell lung cancer to cisplatin
Zhenhua Yang1, Surong Fang1, Yicheng Di1
1Department of Respiratory Medicine, Nanjing First Hospital, Nanjing Medical University, Nanjing, China.
Background:
Platinum-based chemotherapy is a standard strategy for non-small cell lung cancer (NSCLC), while chemoresistance remains a major therapeutic challenge in current clinical practice. Our present study was aimed to determine whether inhibition of the NF-κB/miR-21/PTEN pathway could increase the sensitivity of NSCLC to cisplatin.
Methods:
The expression of miR-21 in NSCLC tissues was determined using in situ hybridization. Next, the effect of miR-21 on the sensitivity of A549 cells to cisplatin was determined in vitro. Whether miR-21 regulated PTEN expression was assessed by luciferase assay. Furthermore, whether NF-κB targeted its binding elements in the miR-21 gene promoter was determined by luciferase and ChIP assay. Finally, we measured the cell viability and apoptosis under cisplatin treatment when NF-κB was inhibited.
Results:
An elevated level of miR-21 was observed in NSCLC lung tissues and was related to a short survival time. Exogenous miR-21 promoted cell survival when exposed to cisplatin, while miR-21 inhibition could reverse this process. The RNA and protein levels of PTEN were significantly decreased by exogenous miR-21, and the 3'-untranslated region of PTEN was shown to be a target of miR-21. The expression of miR-21 was regulated by NF-κB binding to its element in the promoter, a finding that was verified by luciferase and ChIP assay. Hence, inhibition of NF-κB by RNA silencing protects cells against cisplatin via decreasing miR-21 expression.
Conclusion:
Modulation of the NF-κB/miR-21/PTEN pathway in NSCLC showed that inhibition of this pathway may increase cisplatin sensitivity.
Insights
Inhibiting the NF-κB/miR-21/PTEN pathway can enhance non-small cell lung cancer (NSCLC) sensitivity to cisplatin chemotherapy. This study reveals that blocking NF-κB reduces miR-21, increasing PTEN and improving cisplatin efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Platinum-based chemotherapy is standard for non-small cell lung cancer (NSCLC), but chemoresistance is a significant clinical hurdle.
- Understanding resistance mechanisms is crucial for improving NSCLC treatment outcomes.
Purpose of the Study:
- To investigate whether inhibiting the NF-κB/miR-21/PTEN pathway can enhance NSCLC sensitivity to cisplatin.
- To elucidate the molecular interactions within the NF-κB/miR-21/PTEN axis in the context of cisplatin resistance.
Main Methods:
- In situ hybridization to detect miR-21 expression in NSCLC tissues.
- In vitro assays to assess miR-21's effect on A549 cell sensitivity to cisplatin.
- Luciferase and ChIP assays to confirm NF-κB regulation of miR-21 and miR-21 targeting of PTEN.
Main Results:
- Elevated miR-21 levels in NSCLC tissues correlated with shorter survival.
- Exogenous miR-21 increased cell survival under cisplatin treatment; miR-21 inhibition reversed this effect.
- NF-κB regulates miR-21 expression, and miR-21 directly targets PTEN, decreasing its RNA and protein levels.
Conclusions:
- Modulating the NF-κB/miR-21/PTEN pathway offers a potential strategy to overcome cisplatin resistance in NSCLC.
- Inhibition of this pathway may represent a novel therapeutic approach to improve cisplatin sensitivity in non-small cell lung cancer.
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