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Published on: February 17, 2016
Peripheral nerve protein expression and carbonyl content in N,N-diethlydithiocarbamate myelinopathy
Olga M Viquez1, Holly L Valentine, David B Friedman
1Department of Pathology, Department of Biochemistry and Center in Molecular Toxicology, Vanderbilt University Medical Center, Nashville, Tennessee 37232-2591, USA.
Abstract:
Human exposure to dithiocarbamates results from their uses as pesticides, in manufacturing, and as pharmaceutical agents. Neurotoxicity is an established hazard of dithiocarbamate exposure and has been observed in both humans and experimental animals. Previous studies have shown that the neurotoxicity of certain dithiocarbamates, including N,N-diethyldithiocarbamate (DEDC), disulfiram, and pyrrolidine dithiocarbamate, can manifest as a primary myelinopathy of peripheral nerves. Because increased levels of copper in peripheral nerves and elevated levels of lipid peroxidation products accompany DEDC-induced lesions, it has been suggested that the disruption of copper homeostasis and increased oxidative stress may contribute to myelin injury. To further assess the biological impact of DEDC-mediated lipid peroxidation in nerves, the changes in protein expression levels resulting from DEDC exposure were determined. In addition, protein carbonyl content in peripheral nerves was also determined as an initial assessment of protein oxidative damage in DEDC neuropathy. Rats were exposed to DEDC by intra-abdominal osmotic pumps for eight weeks and proteins extracted from the sciatic nerves of DEDC-exposed animals and from non-exposed controls. The comparison of protein expression levels using two-dimensional difference gel electrophoresis demonstrated significant changes in 56 spots of which 46 were identified by MALDI-TOF/MS. Among the proteins showing increased expression were three isoforms of glutathione transferase, important for the detoxification of reactive alpha,beta-unsaturated aldehydes generated from lipid peroxidation. The increased expression of one isoform, glutathione transferase pi, was localized to the cytoplasm of Schwann cells using immunohistochemistry. An immunoassay for nerve protein carbonyls demonstrated a significant increase of approximately 2-fold for the proteins isolated from DEDC-exposed rats. These data support the ability of DEDC to promote protein oxidative damage in peripheral nerves and to produce sufficient lipid peroxidation in either myelin or another component of the Schwann cell to elicit a protective cellular response to oxidative stress.
Insights
N,N-diethyldithiocarbamate (DEDC) exposure causes peripheral nerve damage and oxidative stress in rats. DEDC exposure increased protein damage and activated cellular defense mechanisms, indicating a protective response to neurotoxicity.
Area of Science:
- Neuroscience
- Toxicology
- Biochemistry
Background:
- Dithiocarbamates, including N,N-diethyldithiocarbamate (DEDC), are associated with neurotoxicity.
- DEDC exposure can cause peripheral nerve myelinopathy, potentially linked to copper dyshomeostasis and lipid peroxidation.
- Previous research suggests oxidative stress contributes to DEDC-induced nerve injury.
Purpose of the Study:
- To investigate the impact of DEDC-induced lipid peroxidation on protein expression in peripheral nerves.
- To assess protein oxidative damage, specifically protein carbonyl content, in DEDC neuropathy.
- To elucidate the cellular response to DEDC exposure in the peripheral nervous system.
Main Methods:
- Rats were exposed to DEDC for eight weeks via intra-abdominal osmotic pumps.
- Proteins were extracted from the sciatic nerves of DEDC-exposed and control rats.
- Two-dimensional difference gel electrophoresis and MALDI-TOF/MS were used to analyze protein expression changes.
- Immunohistochemistry localized glutathione transferase pi expression.
- Immunoassays measured nerve protein carbonyl content.
Main Results:
- Significant changes in 56 protein expression spots were observed, with 46 identified.
- Increased expression of glutathione transferase isoforms, crucial for detoxifying lipid peroxidation byproducts, was noted.
- Glutathione transferase pi was localized to Schwann cell cytoplasm.
- A significant, approximately 2-fold increase in nerve protein carbonyl content was detected in DEDC-exposed rats.
Conclusions:
- DEDC exposure promotes protein oxidative damage in peripheral nerves.
- DEDC induces lipid peroxidation in myelin or Schwann cell components, triggering a cellular protective response against oxidative stress.
- These findings enhance understanding of DEDC neurotoxicity mechanisms and cellular defense pathways.
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