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MicroRNA In situ Hybridization for Formalin Fixed Kidney Tissues
Published on: November 30, 2013
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.
Abstract:
Excessive accumulation of extracellular matrix (ECM) is the hallmark of fibrotic diseases. In the kidney, it is the final common pathway of prevalent diseases, leading to chronic renal failure. While cytokines such as TGF-β play a fundamental role in myofibroblast transformation, recent work has shown that mitochondrial dysfunction and defective fatty acid oxidation (FAO), which compromise the main source of energy for renal tubular epithelial cells, have been proposed to be fundamental contributors to the development and progression of kidney fibrosis. MicroRNAs (miRNAs), which regulate gene expression post-transcriptionally, have been reported to control renal fibrogenesis. To identify miRNAs involved in the metabolic derangement of renal fibrosis, we performed a miRNA array screen in the mouse model of unilateral ureteral obstruction (UUO). MiR-150-5p and miR-495-3p were selected for their link to human pathology, their role in mitochondrial metabolism and their targeting of the fatty acid shuttling enzyme CPT1A. We found a 2- and 4-fold upregulation of miR-150-5p and miR-495-5p, respectively, in both the UUO and the folic acid induced nephropathy (FAN) models, while TGF-β1 upregulated their expressions in the human renal tubular epithelial cell line HKC-8. These miRNAs synergized with TGF-β regarding its pro-fibrotic effect by enhancing the fibrosis-associated markers Acta2, Col1α1 and Fn1. Bioenergetics studies showed a reduction of FAO-associated oxygen consumption rate (OCR) in HKC-8 cells in the presence of both miRNAs. Consistently, expression levels of their mitochondrial-related target genes CPT1A, PGC1α and the mitochondrial transcription factor A (TFAM), were reduced by half in renal epithelial cells exposed to these miRNAs. By contrast, we did not detect changes in mitochondrial mass and transmembrane potential (ΔѰm) or mitochondrial superoxide radical anion production. Our data support that miR-150 and miR-495 may contribute to renal fibrogenesis by aggravating the metabolic failure critically involved in tubular epithelial cells, ultimately leading to fibrosis.
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.
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