The program of renal fibrogenesis is controlled by microRNAs regulating oxidative metabolism

Verónica Miguel1, Ricardo Ramos2, Laura García-Bermejo3

  • 1Program of Physiological and Pathological Processes, Centro de Biología Molecular "Severo Ochoa" (CSIC-UAM), 28049, Madrid, Spain.

Redox Biology
|January 19, 2021
PubMed

Insights

Two microRNAs, miR-150-5p and miR-495-3p, worsen kidney fibrosis by impairing cellular energy production through reduced fatty acid oxidation (FAO). These microRNAs target key metabolic genes, contributing to kidney disease progression.

Area of Science:

  • Nephrology
  • Molecular Biology
  • Metabolic Diseases

Background:

  • Kidney fibrosis, characterized by excessive extracellular matrix (ECM) accumulation, leads to chronic renal failure.
  • Mitochondrial dysfunction and impaired fatty acid oxidation (FAO) are increasingly recognized as key drivers of kidney fibrosis.
  • MicroRNAs (miRNAs) are implicated in regulating fibrotic processes, but their role in metabolic derangements in kidney fibrosis is not fully understood.

Purpose of the Study:

  • To identify specific miRNAs involved in the metabolic dysfunction associated with kidney fibrosis.
  • To investigate the functional role of identified miRNAs in regulating fatty acid oxidation and fibrotic markers in renal epithelial cells.

Main Methods:

  • MiRNA array screening in a mouse model of unilateral ureteral obstruction (UUO).
  • Validation of miRNA expression in UUO and folic acid-induced nephropathy (FAN) models, and in TGF-β1-treated human renal tubular epithelial cells (HKC-8).
  • Assessment of fibrotic markers, fatty acid oxidation (FAO)-associated oxygen consumption rate (OCR), and expression of mitochondrial-related genes (CPT1A, PGC1α, TFAM) in miRNA-exposed cells.

Main Results:

  • MiR-150-5p and miR-495-3p were significantly upregulated in kidney fibrosis models and by TGF-β1.
  • These miRNAs synergized with TGF-β1 to enhance pro-fibrotic markers (Acta2, Col1α1, Fn1).
  • MiR-150-5p and miR-495-3p reduced FAO-associated OCR and downregulated key mitochondrial genes (CPT1A, PGC1α, TFAM) in renal epithelial cells.

Conclusions:

  • MiR-150-5p and miR-495-3p are key players in kidney fibrosis, exacerbating metabolic failure in tubular epithelial cells.
  • These miRNAs contribute to renal fibrogenesis by impairing mitochondrial fatty acid oxidation.
  • Targeting these miRNAs may offer a novel therapeutic strategy for kidney fibrotic diseases.