Protein metabolism in guanethidine-treated rats
Language English Country Great Britain, England Media print
Document type Journal Article, Research Support, Non-U.S. Gov't
PubMed
15379958
PubMed Central
PMC2517525
DOI
10.1111/j.0959-9673.2004.00400.x
PII: IEP400
Knihovny.cz E-resources
- MeSH
- Adrenergic Agents pharmacology MeSH
- Amino Acids analysis MeSH
- Guanethidine pharmacology MeSH
- Liver drug effects metabolism MeSH
- Jejunum drug effects metabolism MeSH
- Colon drug effects metabolism MeSH
- Muscle, Skeletal drug effects metabolism MeSH
- Rats MeSH
- Kidney drug effects metabolism MeSH
- Leucine metabolism MeSH
- Norepinephrine analysis MeSH
- Oxidation-Reduction MeSH
- Rats, Wistar MeSH
- Proteins metabolism MeSH
- Spleen drug effects metabolism MeSH
- Animals MeSH
- Check Tag
- Rats MeSH
- Male MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- Adrenergic Agents MeSH
- Amino Acids MeSH
- Guanethidine MeSH
- Leucine MeSH
- Norepinephrine MeSH
- Proteins MeSH
The aim of the present study was to evaluate the effect of short-term adrenergic blockade on the rate of whole-body protein turnover and leucine oxidation, and on protein synthesis in specific tissues in male rats. Adrenergic blockade was induced by guanethidine (100 mg/kg body weight subcutaneously). The control group was treated with saline. On the second day, the parameters of whole-body protein and leucine metabolism were evaluated using a primed constant intravenous infusion of L-[1-(14)C]leucine. Protein synthesis in tissues was determined on the basis of L-[1-(14)C]leucine incorporation. Guanethidine treatment caused a decrease in norepinephrine in skeletal muscle. Whole-body leucine oxidation and leucine oxidized fraction were higher in guanethidine-treated rats. There was an insignificant effect of guanethidine on whole-body proteolysis, protein synthesis and leucine clearance. However, protein balance was negative due to the larger difference between protein synthesis and proteolysis in guanethidine-treated animals compared to controls. In guanethidine-treated rats, protein synthesis was higher in the gastrocnemius muscle and in the kidneys and lower in liver and spleen. Changes in the small intestine and colon were insignificant. In addition, a marked decrease in concentration of several amino acids has been observed in the liver, the kidneys and the spleen. It is concluded that adrenergic blockade induced by guanethidine is associated with significant changes in protein metabolism, leucine oxidation and amino acid concentrations in several tissues. The most important consequences of treatment are considered to be a negative effect on protein balance, increased protein turnover in skeletal muscle and kidneys and decreased protein synthesis in the liver and spleen. These changes may also be induced by administration of other sympathetic blocking agents, e.g. in treatment of hypertension.
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