DNMT1-Mediated the Downregulation of FOXF1 Promotes High Glucose-induced Podocyte Damage by Regulating the

Jie-Hui Chen1, Ling Ye2, Sheng-Lang Zhu2

  • 1Department of Nephrology, Shenzhen Nanshan People's Hospital and The 6th Affiliated Hospital of Shenzhen University Health Science Center, Shenzhen, 510082, China. chenjiehui2019@163.com.

Insights

Forkhead box F1 (FOXF1) is crucial for protecting against diabetic nephropathy (DN) by reducing podocyte damage. Downregulation of FOXF1 in DN patients exacerbates podocyte injury, highlighting its therapeutic potential.

Area of Science:

  • Nephrology
  • Molecular Biology
  • Genetics

Background:

  • Podocyte damage is central to diabetic nephropathy (DN) pathogenesis.
  • Transcription factor dysregulation is implicated in hyperglycemia-induced podocyte injury.
  • The specific roles of most transcription factors in DN remain unclear.

Purpose of the Study:

  • To identify key transcription factors involved in DN.
  • To elucidate the mechanisms underlying hyperglycemia-induced podocyte damage.
  • To explore FOXF1 as a potential diagnostic marker and therapeutic target for DN.

Main Methods:

  • Integrated analysis of data mining and bioinformatics.
  • RT-qPCR validation for gene expression.
  • In vitro experiments on high glucose-induced podocyte damage models.
  • Investigation of epigenetic regulation (DNA methylation) and miRNA interactions.

Main Results:

  • Forkhead box F1 (FOXF1) was identified as a critical transcription factor, significantly downregulated in DN patients and high glucose-treated podocytes.
  • Overexpression of FOXF1 protected against high glucose-induced podocyte damage by enhancing proliferation, suppressing apoptosis, and reducing inflammation and fibrosis.
  • DNMT1-mediated DNA hypermethylation downregulates FOXF1; FOXF1 inhibits miR-342-3p, which in turn regulates E2F1, collectively protecting podocytes.

Conclusions:

  • FOXF1 downregulation, driven by DNMT1-mediated hypermethylation, contributes to podocyte damage in DN.
  • The FOXF1/miR-342-3p/E2F1 axis represents a novel pathway in DN pathogenesis.
  • Targeting the FOXF1/miR-342-3p/E2F1 axis offers a promising therapeutic strategy for DN.

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