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Updated: Aug 23, 2026

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
Recent advances in understanding the pathogenesis of polycystic kidney disease: therapeutic implications
1Nephrology/WP2250, University of Oklahoma Health Sciences Center, 920 Stanton L. Young Boulevard, Oklahoma City, OK 73104, USA. Ben-Cowley@ouhsc.edu
Abstract:
Hereditary polycystic kidney disease (PKD) is a common cause of renal failure. Increasing knowledge is available regarding mechanisms of cyst development and progression, and renal functional deterioration in PKD. On the basis of this information and theories regarding the pathophysiology of these processes, studies to alter progression and potentially treat PKD have been reported. Cyst development and progression requires epithelial cell proliferation, transepithelial fluid secretion and extracellular matrix remodelling. Several interventions designed to inhibit cell proliferation or alter fluid secretion modify the progression of PKD in selected animal models. Renal functional deterioration appears to involve interstitial inflammation and fibrosis, and tubular apoptosis. Glucocorticoids with anti-inflammatory and antifibrotic properties slow the progression of cystic disease and renal functional deterioration in animal models of PKD. Other interventions, such as dietary modification and angiotensin antagonism, shown to be of benefit in non-PKD models of slowly progressive renal disease, are also of benefit in animal models of PKD. Caution should be used in extrapolating interventional studies in one animal model to another model and certainly to human disease, since examples exist in which treatments in one model of PKD have different effects in another model. Nonetheless, early attempts to determine whether potential treatments are tolerated and of potential benefit in patients with PKD are beginning to appear. Ultimately, treatment of PKD may involve efforts to identify patients at greatest risk for disease progression, thus allowing targeted therapy, use of surrogate markers for disease progression to assist assessment of therapeutic efficacy, and combination therapy to retard disease progression and renal functional deterioration in this common hereditary cause of chronic renal failure.
Insights
Hereditary polycystic kidney disease (PKD) treatments are being explored in animal models. Interventions targeting cell proliferation, fluid secretion, and inflammation show promise in slowing disease progression and renal failure.
Area of Science:
- Nephrology
- Genetics
- Pharmacology
Background:
- Hereditary polycystic kidney disease (PKD) is a leading cause of kidney failure.
- Mechanisms of cyst development, progression, and renal decline in PKD are increasingly understood.
- Pathophysiological insights guide the development of therapeutic strategies for PKD.
Purpose of the Study:
- To review current knowledge on PKD pathophysiology and therapeutic interventions.
- To evaluate the efficacy of various treatments in animal models of PKD.
- To discuss the potential for translating findings from animal models to human PKD treatment.
Main Methods:
- Review of studies investigating cystogenesis and renal deterioration in PKD.
- Analysis of interventions targeting epithelial cell proliferation, fluid secretion, inflammation, and fibrosis in animal models.
- Examination of dietary modifications and angiotensin antagonism in PKD models.
Main Results:
- Inhibiting cell proliferation or altering fluid secretion modifies PKD progression in animal models.
- Glucocorticoids, dietary modification, and angiotensin antagonism show benefits in animal models.
- Intervention efficacy varies across different PKD animal models, necessitating caution in extrapolation.
Conclusions:
- Early clinical trials for PKD treatments are emerging.
- Future PKD treatment may involve risk stratification, surrogate markers, and combination therapies.
- Targeted and combination therapies aim to slow disease progression and renal failure in hereditary PKD.
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