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Identification of miR-29c and its Target FBXO31 as a Key Regulatory Mechanism in Esophageal Cancer Chemoresistance:
Bin Li1,2,3, Pan Hong3, Can-Can Zheng3
1The University of Hong Kong-Shenzhen Institute of Research and Innovation (HKU-SIRI), China.
Abstract:
Rationale: Dysregulated microRNA (miRNA) expressions in cancer can contribute to chemoresistance. This study aims to identify miRNAs that are associated with fluorouracil (5-FU) chemoresistance in esophageal squamous cell carcinoma (ESCC). The potential of miR-29c as a novel diagnostic, prognostic and treatment-predictive marker in ESCC, and its mechanisms and therapeutic implication in overcoming 5-FU chemoresistance were explored. Methods: The miRNA profiles of an ESCC cell model with acquired chemoresistance to 5-FU were analyzed using a Taqman miRNA microarray to identify novel miRNAs associated with 5-FU chemoresistance. Quantitative real-time PCR was used to determine miR-29c expression in tissue and serum samples of patients. Bioinformatics, gain- and loss-of-function experiments, and luciferase reporter assay were performed to validate F-box only protein 31 (FBXO31) as a direct target of miR-29c, and to identify potential transcription factor binding events that control miR-29c expression. The potential of systemic miR-29c oligonucleotide-based therapy in overcoming 5-FU chemoresistance was evaluated in tumor xenograft model. Results: MiR-29c, under the regulatory control of STAT5A, was frequently downregulated in tumor and serum samples of patients with ESCC, and the expression level was correlated with overall survival. Functional studies showed that miR-29c could override 5-FU chemoresistance in vitro and in vivo by directly interacting with the 3'UTR of FBXO31, leading to repression of FBXO31 expression and downstream activation of p38 MAPK. Systemically administered miR-29c dramatically improved response of 5-FU chemoresistant ESCC xenografts in vivo. Conclusions: MiR-29c modulates chemoresistance by interacting with FBXO31, and is a promising non-invasive biomarker and therapeutic target in ESCC.
Insights
MicroRNA-29c (miR-29c) can overcome chemoresistance in esophageal squamous cell carcinoma (ESCC) by targeting FBXO31. This finding suggests miR-29c as a potential biomarker and therapeutic target for ESCC patients.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Dysregulated microRNA (miRNA) expression is linked to chemoresistance in cancers.
- Esophageal squamous cell carcinoma (ESCC) often exhibits resistance to chemotherapy, necessitating new therapeutic strategies.
- Identifying specific miRNAs involved in chemoresistance is crucial for developing targeted treatments.
Purpose of the Study:
- To identify miRNAs associated with fluorouracil (5-FU) chemoresistance in ESCC.
- To investigate the role of miR-29c in 5-FU chemoresistance and its potential as a diagnostic, prognostic, and predictive marker.
- To explore the therapeutic implications of miR-29c in overcoming chemoresistance.
Main Methods:
- Analyzed miRNA profiles of 5-FU-resistant ESCC cell models using microarray.
- Quantified miR-29c expression in patient tissues and serum via quantitative real-time PCR.
- Utilized bioinformatics, gain/loss-of-function, and luciferase assays to identify miR-29c targets and regulatory mechanisms.
- Evaluated systemic miR-29c oligonucleotide therapy in ESCC xenograft models.
Main Results:
- MiR-29c was found to be downregulated in ESCC tumors and serum, correlating with overall survival.
- MiR-29c directly targets F-box only protein 31 (FBXO31), repressing its expression and activating p38 MAPK.
- Systemic administration of miR-29c enhanced the efficacy of 5-FU in chemoresistant ESCC xenografts.
- STAT5A was identified as a transcription factor regulating miR-29c expression.
Conclusions:
- MiR-29c plays a significant role in modulating chemoresistance in ESCC by targeting FBXO31.
- MiR-29c demonstrates potential as a non-invasive biomarker for ESCC diagnosis and prognosis.
- MiR-29c represents a promising therapeutic target for overcoming 5-FU chemoresistance in ESCC.
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