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Updated: Dec 25, 2025

Use of Ultra-high Field MRI in Small Rodent Models of Polycystic Kidney Disease for In Vivo Phenotyping and Drug Monitoring
Published on: June 23, 2015
Increased mitochondrial fragmentation in polycystic kidney disease acts as a modifier of disease progression
Laura Cassina1, Marco Chiaravalli1, Alessandra Boletta1
1Molecular Basis of Cystic Kidney Disorders Unit, Division of Genetics and Cell Biology, IRCCS-San Raffaele Scientific Institute, Milan, Italy.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is a common monogenic disorder, characterized by bilateral renal cyst formation. Multiple pathways are de-regulated in cystic epithelia offering good opportunities for therapy. Others and we have previously reported that metabolic reprogramming, including alterations of the TCA cycle, are prominent features of ADPKD. Several lines of evidence suggest that mitochondrial impairment might be responsible for the metabolic alterations. Here, we performed morphologic and morphometric evaluation of mitochondria by TEM in an orthologous mouse model of PKD caused by mutations in the Pkd1 gene (Ksp-Cre;Pkd1flox/- ). Furthermore, we measured mitochondrial respiration by COX and SDH enzymatic activity in situ. We found several alterations including reduced mitochondrial mass, altered structure and fragmentation of the mitochondrial network in cystic epithelia of Ksp-Cre;Pkd1flox/- mice. At the molecular level, we found reduced expression of the pro-fusion proteins OPA1 and MFN1 and up-regulation of the pro-fission protein DRP1. Importantly, administration of Mdivi-1, which interferes with DRP1 rescuing mitochondrial fragmentation, significantly reduced kidney/body weight, cyst formation, and improved renal function in Ksp-Cre;Pkd1flox/- mice. Our data indicate that impaired mitochondrial structure and function play a role in disease progression, and that their improvement can significantly modify the course of the disease.
Insights
Mitochondrial dysfunction drives Autosomal Dominant Polycystic Kidney Disease (ADPKD) progression. Targeting mitochondrial fragmentation with Mdivi-1 therapy improved kidney function and reduced cyst formation in a mouse model.
Area of Science:
- Nephrology
- Cell Biology
- Mitochondrial Biology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a common genetic kidney disorder.
- Metabolic reprogramming and mitochondrial dysfunction are implicated in ADPKD pathogenesis.
- Understanding these mechanisms is crucial for developing effective therapies.
Purpose of the Study:
- To investigate the role of mitochondrial structure and function in ADPKD.
- To evaluate the therapeutic potential of targeting mitochondrial dynamics in ADPKD.
Main Methods:
- Morphologic and morphometric evaluation of mitochondria using Transmission Electron Microscopy (TEM) in a Pkd1-deficient mouse model.
- Measurement of mitochondrial respiration via Cytochrome c Oxidase (COX) and Succinate Dehydrogenase (SDH) enzymatic activity.
- Administration of Mdivi-1, a DRP1 inhibitor, to assess its impact on disease progression.
Main Results:
- Cystic epithelia in ADPKD mice exhibited reduced mitochondrial mass, altered structure, and fragmentation of the mitochondrial network.
- Reduced expression of pro-fusion proteins (OPA1, MFN1) and increased expression of pro-fission protein (DRP1) were observed.
- Mdivi-1 treatment significantly reduced kidney/body weight, cyst burden, and improved renal function.
Conclusions:
- Impaired mitochondrial structure and dynamics are key contributors to ADPKD progression.
- Targeting mitochondrial fragmentation offers a promising therapeutic strategy for ADPKD.
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