The RNA-binding protein YTHDF3 affects gastric cancer cell migration and response to paclitaxel by regulating EZRIN
Patrícia Mesquita1,2, Alexandre Coelho1,3, Ana S Ribeiro1,2
1i3S - Institute for Research and Innovation in Health, University of Porto, 4200-135, Porto, Portugal.
Background:
Gastric cancer (GC) is the fourth most common cause of cancer-related mortality and the fifth most common cancer worldwide. Despite efforts, the identification of biomarkers and new therapeutic approaches for GC remains elusive. Recent studies have begun to reveal the role of N6-adenosine methylation (m6A) in the regulation of gene expression.
Methods:
The expression of the reader YT521-B homology domain-containing family 3 (YTHDF3) in GC was assessed in 331 patients using immunohistochemistry. GC cell lines depleted of YTHDF3 using CRISPR-Cas9 were evaluated for migration, metastasis, orientation of the mitotic spindle, and response to paclitaxel. The association between YTHDF3 and EZRIN (EZR) mRNA was shown using RNA sequencing, immunofluorescence, real-time PCR, and RNA immunoprecipitation. The single-base elongation- and ligation-based qPCR amplification (SELECT) method was used to map m6A in the EZR transcript.
Results:
YTHDF3 was significantly overexpressed in GC, and high levels of YTHDF3 were predictive of the response to chemotherapy. In GC cell lines, YTHDF3 was the most highly expressed reader protein. YTHDF3 depletion impaired cytoskeleton organization, cell migration and metastasis, and orientation of the mitotic spindle, leading to an increased response to paclitaxel. EZR was one of the downregulated targets in the YTHDF3 knockout cell models and was associated with the observed phenotype.
Conclusion:
YTHDF3 contributes to cell motility and response to paclitaxel in GC cell lines, at least in part through EZR regulation. The YTHDF3-EZR regulatory axis is a novel molecular player in GC, with clinical relevance and potential therapeutic utility.
Insights
N6-adenosine methylation reader YTHDF3 promotes gastric cancer cell motility and paclitaxel response, partly via EZRIN regulation. This YTHDF3-EZRIN axis offers potential therapeutic strategies for gastric cancer.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Gastric cancer (GC) is a leading cause of cancer mortality worldwide.
- Identifying novel biomarkers and therapeutic targets for GC remains a critical challenge.
- N6-adenosine methylation (m6A) is emerging as a key regulator of gene expression with implications in cancer.
Purpose of the Study:
- To investigate the role of the m6A reader protein YT521-B homology domain-containing family 3 (YTHDF3) in gastric cancer.
- To explore the functional relationship between YTHDF3 and EZRIN (EZR) in GC progression and treatment response.
Main Methods:
- Immunohistochemistry was used to assess YTHDF3 expression in 331 GC patients.
- CRISPR-Cas9 was employed to deplete YTHDF3 in GC cell lines for functional assays.
- RNA sequencing, immunofluorescence, real-time PCR, and RNA immunoprecipitation were used to study the YTHDF3-EZR interaction.
- The SELECT method mapped m6A modifications in the EZR transcript.
Main Results:
- YTHDF3 was significantly overexpressed in GC and predicted chemotherapy response.
- YTHDF3 depletion in GC cells reduced migration, metastasis, and improved response to paclitaxel.
- EZRIN (EZR) was identified as a downregulated target in YTHDF3-deficient cells, linked to observed phenotypes.
Conclusions:
- YTHDF3 promotes GC cell motility and paclitaxel sensitivity, partly through regulating EZR.
- The YTHDF3-EZR regulatory axis represents a novel molecular mechanism in GC.
- This axis holds potential clinical relevance and therapeutic utility for gastric cancer treatment.
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