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Pkd2 mesenteric vessels exhibit a primary defect in endothelium-dependent vasodilatation restored by rosiglitazone
Zoë L S Brookes1, Lewis Ruff, Viralkumar S Upadhyay
1Microcirculation Research Group, Department of Cardiovascular Science, University of Sheffield Medical School, Beech Hill Road, Sheffield, UK.
Insights
Autosomal dominant polycystic kidney disease (ADPKD) involves vascular dysfunction. This study found impaired vasodilation in ADPKD mice due to oxidative stress, which rosiglitazone treatment could potentially reverse.
Area of Science:
- Vascular Biology
- Nephrology
- Pharmacology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is linked to hypertension and vascular abnormalities.
- Hypertension in ADPKD can precede kidney function decline.
- The underlying vascular defect in early ADPKD remains unclear.
Purpose of the Study:
- To determine if early ADPKD involves endothelial or vascular smooth muscle (VSM) dysfunction.
- To investigate the role of oxidative stress in ADPKD vascular defects.
- To assess the therapeutic potential of rosiglitazone in correcting vascular dysfunction.
Main Methods:
- Utilized pressure myography to assess mesenteric vessel function in Pkd2 heterozygous mice.
- Measured responses to acetylcholine, sodium nitroprusside, phenylephrine, and KCl.
- Investigated endothelial and VSM cell function, oxidative stress markers, and in vivo venule responses.
Main Results:
- Pkd2 arterioles showed impaired acetylcholine-stimulated vasodilation, indicating an endothelial defect.
- VSM-dependent responses were normal, but VSM cells exhibited increased oxidative stress.
- Rosiglitazone treatment restored vasodilation and reduced oxidative stress markers in Pkd2 mice.
Conclusions:
- The primary vascular defect in Pkd2 heterozygous mice is reduced nitric oxide bioavailability due to oxidative stress.
- This vascular dysfunction is potentially reversible with peroxisome proliferator-activated receptor-γ agonists like rosiglitazone.
- Findings suggest a potential therapeutic strategy for vascular complications in ADPKD.
Abstract:
Patients with autosomal dominant polycystic kidney disease have a high prevalence of hypertension and structural vascular abnormalities, such as intracranial aneurysms. Hypertension can develop in childhood and often precedes a significant reduction in the glomerular filtration rate. The major aim of this study was to investigate whether a primary endothelial defect or a vascular smooth muscle (VSM) defect was present in murine polycystic kidney disease (Pkd)2 heterozygous mesenteric vessels before the development of renal failure or hypertension. Using pressure myography, we observed a marked defect in ACh-stimulated endothelium-dependent vasodilatation in Pkd2 arterioles. In contrast, Pkd2 vessels responded normally to sodium nitroprusside, phenylephrine, KCl, and pressure, indicating unaltered VSM-dependent responses. Pretreatment with the peroxisome proliferator-activated receptor-γ agonist rosiglitazone significantly restored ACh-dependent vasodilation in Pkd2 mice. Isolated heterozygous Pkd2 endothelial cells displayed normal ACh-stimulated Ca(2+) and nitric oxide production. However, isolated Pkd2 heterozygous VSM cells displayed basal increases in superoxide and sodium nitroprusside-stimulated peroxynitrite formation, which were both suppressed by rosiglitazone. Furthermore, we observed a defective response of Pkd2 mesenteric venules to ACh in vivo, which was more marked after ischemia-reperfusion injury. In conclusion, the results of our study suggest that the defect in vasodilatation in Pkd2 heterozygous vessels is primarily due to a reduction in nitric bioavailability secondary to increased vascular oxidative stress. The ability of rosiglitazone to correct this phenotype suggests that this defect is potentially reversible in patients with autosomal dominant polycystic kidney disease.
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