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Published on: December 23, 2016
Thimerosal: a versatile sulfhydryl reagent, calcium mobilizer, and cell function-modulating agent
1Department of Molecular Cell Biology, University of Leiden, The Netherlands.
General Pharmacology
|July 31, 1999
Summary
Thimerosal, a mercury-containing compound, affects cell functions by altering calcium levels and reacting with sulfhydryl groups. Its effects vary with concentration, influencing platelet aggregation and neutrophil responses like migration and enzyme release.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Thimerosal is widely used as an antiseptic and preservative due to its antibacterial properties.
- It functions as a sulfhydryl reagent and calcium-mobilizing agent in biomedical research.
- Its mercury content is key to its sulfhydryl reactivity, though mechanisms are not fully elucidated.
Purpose of the Study:
- To review the literature on thimerosal's effects on cellular functions.
- To explore the mechanisms underlying thimerosal's actions, focusing on calcium mobilization and sulfhydryl reactivity.
- To summarize thimerosal's impact on specific cell types like platelets and neutrophils.
Main Methods:
- Literature review of studies investigating thimerosal's biological effects.
- Analysis of research on thimerosal's interaction with sulfhydryl groups, often assessed using dithiothreitol (DTT).
- Examination of studies detailing thimerosal's impact on intracellular and extracellular calcium dynamics.
Main Results:
- Thimerosal triggers calcium release from intracellular stores (InsP3- and ryanodine-sensitive) and subsequent extracellular influx.
- Concentration-dependent effects are observed in permeabilized cells: low concentrations stimulate, high concentrations inhibit calcium release.
- In intact cells, thimerosal modulates platelet aggregation, arachidonic acid metabolism, serotonin release, and neutrophil functions including migration and exocytosis.
Conclusions:
- Thimerosal's effects on cell functions are linked to calcium mobilization and sulfhydryl group interactions.
- Low concentrations can activate neutrophil migration and enzyme release, while higher concentrations inhibit these processes.
- The thiosalicylic acid moiety of thimerosal contributes to its effects on neutrophil migration.
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