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Updated: Jun 9, 2026

A Strategy to Identify Compounds that Affect Cell Growth and Survival in Cultured Mammalian Cells at Low-to-Moderate Throughput
Published on: September 22, 2019
Cell cultures: A tool for the study of mechanisms of toxicity
C L Galli1, B Viviani, M Marinovich
1Laboratory of Toxicology, Institute of Pharmacological Sciences, University of Milan, Via Balzaretti 9, 20133 Milan, Italy.
Abstract:
Many toxic agents can affect cellular function by selectively interacting with cytoskeletal components, possible cell targets of toxicity. This phenomenon may represent the initial event in altering cell metabolism. The toxic effect of tributyltin chloride (TBT) on ATP levels, protein synthesis, glutathione (GSH) levels and lactate dehydrogenase (LDH) activity was investigated in a murine epidermal cell line (HEL-30). Recovery of cell functions was observed either when metabolism was induced by the addition to the incubation medium of an S-9 preparation, or when dithiothreitol (DTT) was added to the medium 5 min after the damage and in the absence of TBT. The level of F-actin, a cytoskeletal component, was lowered in resting human neutrophils by TBT and triphenyltin chloride (TPT) but not by SnCl(2); moreover, the cellular response to a polymerizing stimulus such as fMLP, a chemotactic peptide, was no longer detectable after TBT or TPT treatment. The evidence that neutrophils of a subject who had been acutely exposed to TPT did not show the normal actin polymerization response to chemotactic stimulus (Colosio et al., British Journal of Industrial Medicine 1991, 48, 136) suggests a possible use of this function as a marker of human exposure to defined toxic chemicals.
Insights
Tributyltin chloride (TBT) and triphenyltin chloride (TPT) disrupt cellular functions by affecting cytoskeletal components, particularly F-actin. This disruption impairs cellular responses and may serve as a marker for toxic chemical exposure.
Area of Science:
- Toxicology
- Cell Biology
- Biochemistry
Background:
- Toxic agents can impact cellular function by targeting cytoskeletal components, potentially initiating metabolic alterations.
- Organotin compounds like TBT and TPT are known environmental contaminants with potential cellular toxicity.
Purpose of the Study:
- To investigate the toxic effects of tributyltin chloride (TBT) on cellular functions, including ATP levels, protein synthesis, glutathione (GSH) levels, and lactate dehydrogenase (LDH) activity.
- To examine the impact of TBT and triphenyltin chloride (TPT) on F-actin levels and cellular responses in human neutrophils.
- To explore the potential of actin polymerization response as a biomarker for human exposure to organotin compounds.
Main Methods:
- Investigated the effects of TBT on ATP, protein synthesis, GSH, and LDH in a murine epidermal cell line (HEL-30).
- Assessed F-actin levels and the response to chemotactic stimulus (fMLP) in human neutrophils treated with TBT and TPT.
- Utilized S-9 preparation and dithiothreitol (DTT) to observe recovery of cellular functions.
Main Results:
- TBT exposure decreased ATP levels, protein synthesis, GSH levels, and altered LDH activity in HEL-30 cells.
- Recovery of cellular functions was observed with S-9 preparation or DTT treatment.
- TBT and TPT reduced F-actin levels in resting human neutrophils and abolished their response to fMLP.
- SnCl(2) did not affect F-actin levels, indicating specificity of organotin compounds.
Conclusions:
- Organotin compounds like TBT and TPT exert toxicity by interfering with cytoskeletal integrity, specifically F-actin.
- The disruption of actin polymerization in neutrophils by TBT and TPT suggests a potential mechanism for their toxic effects.
- The impaired actin polymerization response in neutrophils could serve as a valuable biomarker for human exposure to specific toxic chemicals like TPT.
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