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An aldose reductase inhibitor reverses early diabetes-induced changes in peripheral nerve function, metabolism, and
Irina G Obrosova1, Carol Van Huysen, Lamia Fathallah
1Division of Endocrinology and Metabolism, Department of Internal Medicine, University of Michigan Medical Center, Ann Arbor, Michigan 48109-0354, USA. iobrosso@umich.edu
Abstract:
Aldose reductase inhibitors (ARIs) prevent peripheral nerve dysfunction and morphological abnormalities in diabetic animal models. However, some experimental intervention studies and clinical trials of ARIs on diabetic neuropathy appeared disappointing because of either 1) their inadequate design and, in particular, insufficient correction of the sorbitol pathway activity or 2) the inability to reverse established functional and metabolic deficits of diabetic neuropathy by AR inhibition in general. We evaluated whether diabetes-induced changes in nerve function, metabolism, and antioxidative defense are corrected by the dose of ARI (sorbinil, 65 mg/kg/d in the diet), resulting in complete inhibition of increased sorbitol pathway activity. The groups included control rats and streptozotocin-diabetic rats treated with/without ARI for 2 weeks after 4 weeks of untreated diabetes. ARI treatment corrected diabetes-induced nerve functional changes; that is, decrease in endoneurial nutritive blood flow, motor and sensory nerve conduction velocities, and metabolic abnormalities (i.e., mitochondrial and cytosolic NAD+/NADH redox imbalances and energy deficiency). ARI restored nerve concentrations of two major non-enzymatic antioxidants, reduced glutathione (GSH) and ascorbate, and completely arrested diabetes-induced lipid peroxidation. In conclusion, treatment with adequate doses of ARIs (that is, doses that completely inhibit increased sorbitol pathway activity) is an effective approach for reversal of, at least, early diabetic neuropathy.
Insights
Adequately dosed aldose reductase inhibitors (ARIs) can reverse early diabetic neuropathy by correcting nerve dysfunction and metabolic deficits. This study shows effective ARI treatment restores nerve function and antioxidant levels in diabetic rats.
Area of Science:
- Biochemistry
- Pharmacology
- Neuroscience
Background:
- Diabetic neuropathy is a common complication of diabetes mellitus.
- Aldose reductase inhibitors (ARIs) have shown promise in preventing nerve dysfunction in diabetic models.
- Previous ARI trials yielded disappointing results due to inadequate dosing or inability to reverse established deficits.
Purpose of the Study:
- To evaluate if a specific dose of ARI (sorbinil) can correct diabetes-induced nerve dysfunction, metabolic abnormalities, and oxidative stress.
- To determine if complete inhibition of sorbitol pathway activity by ARI is crucial for therapeutic effects.
Main Methods:
- Streptozotocin-diabetic rats were treated with a diet containing sorbinil (65 mg/kg/d) for 2 weeks after 4 weeks of untreated diabetes.
- Nerve function (blood flow, nerve conduction velocities), metabolism (NAD+/NADH redox state, energy levels), and oxidative stress markers (antioxidants, lipid peroxidation) were assessed.
Main Results:
- ARI treatment corrected decreased endoneurial nutritive blood flow and nerve conduction velocities.
- Metabolic abnormalities, including redox imbalances and energy deficiency, were reversed.
- Nerve concentrations of reduced glutathione (GSH) and ascorbate were restored, and lipid peroxidation was arrested.
Conclusions:
- Adequate doses of ARIs, achieving complete sorbitol pathway inhibition, effectively reverse early diabetic neuropathy.
- This approach corrects functional, metabolic, and oxidative deficits associated with diabetic neuropathy.
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