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Published on: July 14, 2023
The pathogenesis and prevention of diabetic neuropathy and nephropathy
1University of Michigan Medical Center, Ann Arbor 458109-0800.
Abstract:
The chronic complications of diabetes are thought to be caused by an interaction between hyperglycemia, or other metabolic consequences of insulin deficiency, and independent genetic or environmental factors that are poorly defined. Several potentially relevant biochemical sequelae to hyperglycemia have been identified in tissue susceptible to diabetic complications. Among these, a rise in tissue sorbitol secondary to concentration-dependent activation of polyol pathway activity by glucose, and an accompanying fall in tissue myo-inositol and Na-K-ATPase activity have recently been linked to a self-reinforcing cyclic metabolic defect that accounts for rapidly reversible slowing of conduction in peripheral nerve in diabetes. Impaired Na-K-ATPase activity also appears to be responsible for intracellular Na+ accumulation and resultant localized axonal paranodal swelling that characterizes diabetic neuropathy in both humans and laboratory animals. These swellings are thought to be responsible for the subsequent disruption of the nodal apparatus (axo-glial disjunction) and some component of the loss of large and small myelinated fibers. Recent studies have suggested that microvascular insufficiency may also contribute to diabetic neuropathy, especially in non-insulin-dependent diabetes. Aldose reductase activity is concentrated in endoneurial vessels, and similar biochemical mechanisms (ie, sorbitol accumulation, myo-inositol deficiency, and impaired Na-K-ATPase activity) are thought to be operative in the endoneurial microvessels in diabetes. Administration of an aldose reductase inhibitor to patients with diabetic neuropathy is associated with repair of damaged nerve fibers and the appearance of newly generated fibers, presumably secondary to metabolic correction within the nerve fibers themselves or their supporting microvasculature.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
Diabetic neuropathy stems from high blood sugar, leading to nerve damage via the polyol pathway and impaired sodium-potassium pumps. Aldose reductase inhibitors show promise in repairing nerve fibers.
Area of Science:
- Biochemistry
- Neuroscience
- Diabetology
Background:
- Chronic diabetes complications involve hyperglycemia and other metabolic issues.
- Hyperglycemia triggers biochemical changes in susceptible tissues, including increased sorbitol and decreased myo-inositol.
- These changes create a metabolic defect linked to nerve conduction slowing in diabetes.
Purpose of the Study:
- To explain the biochemical mechanisms underlying diabetic neuropathy.
- To investigate the role of the polyol pathway and Na-K-ATPase in nerve damage.
- To explore the potential of aldose reductase inhibitors in treating diabetic neuropathy.
Main Methods:
- Analysis of biochemical sequelae of hyperglycemia in diabetic tissues.
- Investigation of polyol pathway activation and its effect on myo-inositol and Na-K-ATPase.
- Examination of axonal swelling and its impact on nerve fibers.
- Evaluation of microvascular contributions to diabetic neuropathy.
- Assessment of aldose reductase inhibitor effects in patients.
Main Results:
- Hyperglycemia activates the polyol pathway, increasing sorbitol and decreasing myo-inositol, impairing Na-K-ATPase activity.
- Impaired Na-K-ATPase leads to sodium accumulation, axonal swelling, and nerve fiber damage.
- Microvascular insufficiency may also contribute to neuropathy, particularly in non-insulin-dependent diabetes.
- Aldose reductase inhibitors promote nerve fiber repair and regeneration.
Conclusions:
- The polyol pathway and impaired Na-K-ATPase activity are key contributors to diabetic neuropathy.
- Therapeutic interventions targeting aldose reductase can reverse nerve damage and promote regeneration.
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