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Potassium channel-mediated vasorelaxation is impaired in experimental renal failure
J Kalliovalkama1, P Jolma, J P Tolvanen
1Department of Pharmacological Sciences, University of Tampere, Tampere University Hospital, FIN-33101 Tampere, Finland. jarkko.kalliovalkama@uta.fi
Abstract:
Chronic renal failure is associated with increased cardiovascular morbidity and abnormal arterial tone, but the underlying pathophysiological mechanisms are poorly understood. Therefore, we studied the responses of isolated mesenteric arterial rings from Wistar-Kyoto rats in standard organ chambers 6 wk after subtotal (5/6) nephrectomy or sham operation. Subtotal nephrectomy resulted in a 1.7-fold elevation of plasma urea nitrogen, whereas blood pressure was not significantly affected. Endothelium-mediated relaxations of norepinephrine-precontracted rings to ACh were impaired in renal failure rats. The nitric oxide (NO) synthase inhibitor N(G)-nitro-L-arginine methyl ester inhibited relaxations to ACh more effectively in the renal failure group, whereas the cyclooxygenase inhibitor diclofenac did not significantly affect the response in either group. Inhibition of Ca(2+)-activated K(+) channels by charybdotoxin and apamin attenuated NO synthase- and cyclooxygenase-resistant relaxations to ACh in control but not renal failure rats and abolished the difference between these groups. Endothelium-independent relaxations to isoproterenol and cromakalim, vasodilators acting via beta-adrenoceptors and ATP-sensitive K(+) channels, respectively, were impaired in the renal failure group, whereas relaxations to the NO donor nitroprusside were similar in both groups. In conclusion, endothelium-mediated relaxation in renal failure rats was impaired in the absence and presence of NO synthase and cyclooxygenase inhibition but not with prevented smooth muscle hyperpolarization. Endothelium-independent relaxations to isoproterenol and cromakalim were also attenuated after 5/6 nephrectomy. These results suggest that impaired vasodilatation in experimental renal failure could be attributed to reduced relaxation via arterial K(+) channels.
Insights
Chronic renal failure impairs arterial vasodilation, particularly through reduced relaxation via arterial potassium (K+) channels. This contributes to cardiovascular issues in kidney disease.
Area of Science:
- Cardiovascular Physiology
- Renal Physiology
- Vascular Biology
Background:
- Chronic kidney disease (CKD) is linked to cardiovascular complications.
- Abnormal arterial tone is observed in CKD, but mechanisms remain unclear.
Purpose of the Study:
- To investigate the mechanisms of impaired arterial vasodilation in experimental renal failure.
- To assess the roles of nitric oxide (NO) and K+ channels in vascular dysfunction in CKD.
Main Methods:
- Isolated mesenteric arterial rings from Wistar-Kyoto rats underwent subtotal nephrectomy or sham operation.
- Vascular responses to acetylcholine (ACh), isoproterenol, and cromakalim were measured.
- Effects of NO synthase and cyclooxygenase inhibitors, and K+ channel blockers were evaluated.
Main Results:
- Renal failure rats showed impaired endothelium-dependent and -independent relaxations.
- Nitric oxide synthase inhibition affected relaxations more in renal failure.
- K+ channel blockade attenuated relaxations in control but not renal failure rats, normalizing the difference.
Conclusions:
- Endothelium-mediated relaxation is impaired in experimental renal failure.
- Reduced relaxation via arterial K+ channels contributes to vascular dysfunction in CKD.
- Impaired vasodilation in renal failure may be linked to K+ channel dysfunction.