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5/6th Nephrectomy in Combination with High Salt Diet and Nitric Oxide Synthase Inhibition to Induce Chronic Kidney Disease in the Lewis Rat
Published on: July 3, 2013
Mitochondrial function and nitric oxide metabolism are modified by enalapril treatment in rat kidney
Barbara Piotrkowski1, Cesar G Fraga, Elena M V de Cavanagh
1Physical Chemistry-PRALIB, Univ. of Buenos Aires, Junín 956, 1113-Buenos Aires, Argentina.
Abstract:
The renal and cardiac benefits of renin-angiotensin system (RAS) inhibition in hypertension exceed those attributable to blood pressure reduction, and seem to involve mitochondrial function changes. To investigate whether mitochondrial changes associated with RAS inhibition are related to changes in nitric oxide (NO) metabolism, four groups of male Wistar rats were treated during 2 wk with a RAS inhibitor, enalapril (10 mg x kg(-1) x day(-1); Enal), or a NO synthase (NOS) inhibitor, N(omega)-nitro-L-arginine methyl ester (L-NAME) (1 mg x kg(-1) x day(-1)), or both (Enal+L-NAME), or were untreated (control). Blood pressure and body weight were lower in Enal than in control. Electron transfer through complexes I to III and cytochrome oxidase activity were significantly lower, and uncoupling protein-2 content was significantly higher in kidney mitochondria isolated from Enal than in those from control. All of these changes were prevented by L-NAME cotreatment and were accompanied by a higher production/bioavailability of kidney NO. L-NAME abolished mitochondrial NOS activity but failed to inhibit extra-mitochondrial kidney NOS, underscoring the relevance of mitochondrial NO in those effects of enalapril that were suppressed by L-NAME cotreatment. In Enal, kidney mitochondria H(2)O(2) production rate and MnSOD activity were significantly lower than in control, and these effects were not prevented by L-NAME cotreatment. These findings may clarify the role of NO in the interactions between RAS and mitochondrial metabolism and can help to unravel the mechanisms involved in renal protection by RAS inhibitors.
Insights
Renin-angiotensin system (RAS) inhibition improves kidney function by altering mitochondrial metabolism. Nitric oxide (NO) plays a key role in these beneficial effects, particularly within mitochondria.
Area of Science:
- Cardiovascular Research
- Renal Physiology
- Mitochondrial Biology
Background:
- Renin-angiotensin system (RAS) inhibition offers renal and cardiac benefits in hypertension beyond blood pressure reduction.
- These benefits appear linked to alterations in mitochondrial function.
Purpose of the Study:
- To investigate the relationship between mitochondrial changes induced by RAS inhibition and nitric oxide (NO) metabolism.
- To explore the role of mitochondrial NO in the protective effects of RAS inhibitors.
Main Methods:
- Male Wistar rats were treated with enalapril (RAS inhibitor), L-NAME (NOS inhibitor), both, or served as controls for 2 weeks.
- Kidney mitochondria were isolated to assess electron transfer, cytochrome oxidase activity, uncoupling protein-2, and NO production.
- Mitochondrial and extra-mitochondrial nitric oxide synthase (NOS) activity, H2O2 production, and MnSOD activity were evaluated.
Main Results:
- Enalapril treatment lowered blood pressure and body weight, reduced mitochondrial electron transfer and cytochrome oxidase activity, and increased uncoupling protein-2.
- L-NAME cotreatment prevented these mitochondrial changes and was associated with increased kidney NO bioavailability.
- L-NAME inhibited mitochondrial NOS but not extra-mitochondrial NOS, highlighting mitochondrial NO's role.
Conclusions:
- Nitric oxide (NO) is integral to the interaction between RAS and mitochondrial metabolism.
- Mitochondrial NO mediates some of the renal protective effects of RAS inhibitors like enalapril.
- These findings elucidate mechanisms underlying renal protection by RAS inhibitors.
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