E2F2(E2F transcription factor 2) as a potential therapeutic target in meibomian gland carcinoma: evidence from

Wei Wang1, Hetong Wang1, Xun Liu1

  • 1Tianjin Key Laboratory of Retinal Functions and Diseases, Tianjin Branch of National Clinical Research Center for Ocular Disease, Eye Institute and School of Optometry, Tianjin Medical University Eye Hospital, Tianjin, 300384, China.

BMC Cancer
|May 16, 2025
PubMed
Abstract

Insights

This study reveals that E2F2 (E2F transcription factor 2) is downregulated in Meibomian Gland Carcinoma (MGC) and acts as a tumor suppressor. Inhibiting DNA methylation can restore E2F2 expression, offering a potential therapeutic strategy for MGC.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Meibomian Gland Carcinoma (MGC) is an aggressive eyelid tumor with poor prognosis.
  • Abnormal E2F transcription factor 2 (E2F2) expression is implicated in MGC pathogenesis, potentially due to DNA methylation.
  • Investigating E2F2's role is crucial for understanding MGC development.

Purpose of the Study:

  • To investigate the molecular mechanisms of MGC, focusing on the role of E2F2.
  • To explore the relationship between E2F2 expression, DNA methylation, and MGC progression.
  • To identify E2F2 as a potential therapeutic target for MGC.

Main Methods:

  • E2F2 expression analysis in MGC tissues and cells.
  • Functional assays (CCK8, wound healing, Transwell) to assess MGC cell behavior upon E2F2 modulation.
  • Flow cytometry for apoptosis and cell cycle analysis.
  • RNA sequencing and methylation-specific PCR (MSP) to evaluate the impact of the methylation inhibitor 5-aza-2'-deoxycytidine (5-aza-2-dc) on gene expression and methylation levels.

Main Results:

  • E2F2 expression was significantly lower in MGC compared to normal tissues, correlating negatively with Ki-67 and positively with P21/P27.
  • E2F2 knockdown promoted MGC cell proliferation, migration, and invasion, while reducing apoptosis and altering cell cycle phases.
  • Inhibition of DNA methylation using 5-aza-2-dc upregulated E2F2 expression, reversed gene silencing, and suppressed MGC cell malignancy.
  • Differentially expressed genes after methylation inhibition were primarily involved in DNA replication and cell cycle pathways.

Conclusions:

  • E2F2 functions as a tumor suppressor in MGC.
  • Restoring E2F2 expression through methylation inhibition presents a promising therapeutic strategy for MGC.
  • Targeting E2F2 and methylation pathways offers potential for precise, individualized MGC treatments.

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