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Published on: August 14, 2013
Neural dysfunction and metabolic imbalances in diabetic rats. Prevention by acetyl-L-carnitine
1Department of Pathology, Washington University School of Medicine, St. Louis, Missouri 63110.
Abstract:
The rationale for these experiments is that administration of L-carnitine and/or short-chain acylcarnitines attenuates myocardial dysfunction 1) in hearts from diabetic animals (in which L-carnitine levels are decreased); 2) induced by ischemia-reperfusion in hearts from nondiabetic animals; and 3) in nondiabetic humans with ischemic heart disease. The objective of these studies was to investigate whether imbalances in carnitine metabolism play a role in the pathogenesis of diabetic peripheral neuropathy. The major findings in rats with streptozotocin-induced diabetes of 4-6 weeks duration were that 24-h urinary carnitine excretion was increased approximately twofold and L-carnitine levels were decreased in plasma (46%) and sciatic nerve endoneurium (31%). These changes in carnitine levels/excretion were associated with decreased caudal nerve conduction velocity (10-15%) and sciatic nerve changes in Na(+)-K(+)-ATPase activity (decreased 50%), Mg(2+)-ATPase (decreased 65%), 1,2-diacyl-sn-glycerol (DAG) (decreased 40%), vascular albumin permeation (increased 60%), and blood flow (increased 65%). Treatment with acetyl-L-carnitine normalized plasma and endoneurial L-carnitine levels and prevented all of these metabolic and functional changes except the increased blood flow, which was unaffected, and the reduction in DAG, which decreased another 40%. In conclusion, these observations 1) demonstrate a link between imbalances in carnitine metabolism and several metabolic and functional abnormalities associated with diabetic polyneuropathy and 2) indicate that decreased sciatic nerve endoneurial ATPase activity (ouabain-sensitive and insensitive) in this model of diabetes is associated with decreased DAG.
Insights
Diabetic peripheral neuropathy is linked to carnitine metabolism imbalances. Acetyl-L-carnitine treatment improved nerve function and normalized carnitine levels in diabetic rats.
Area of Science:
- Biochemistry
- Neuroscience
- Metabolic Disorders
Background:
- Carnitine deficiency is observed in diabetic hearts, impacting myocardial function.
- Diabetic peripheral neuropathy is a common complication with significant morbidity.
Purpose of the Study:
- To investigate the role of carnitine metabolism imbalances in the development of diabetic peripheral neuropathy.
- To assess the therapeutic potential of acetyl-L-carnitine in mitigating neuropathy-related changes.
Main Methods:
- Streptozotocin-induced diabetes in rats was used to model diabetic polyneuropathy.
- Measurements included urinary carnitine excretion, plasma and sciatic nerve L-carnitine levels, nerve conduction velocity, and sciatic nerve enzyme activities (Na(+)-K(+)-ATPase, Mg(2+)-ATPase).
- Vascular albumin permeation and blood flow were also assessed, followed by acetyl-L-carnitine treatment.
Main Results:
- Diabetic rats showed increased urinary carnitine excretion and decreased plasma/endoneurial L-carnitine levels.
- Associated findings included reduced nerve conduction velocity and sciatic nerve ATPase activities, increased vascular albumin permeation, and altered blood flow.
- Acetyl-L-carnitine treatment normalized L-carnitine levels and prevented most metabolic and functional deficits, except for blood flow and diacylglycerol (DAG) levels.
Conclusions:
- Carnitine metabolism imbalances are demonstrably linked to metabolic and functional abnormalities in diabetic polyneuropathy.
- Reduced sciatic nerve endoneurial ATPase activity in diabetes is associated with decreased DAG levels.
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