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Updated: Mar 31, 2026

Cytotoxicity Assays with Zebrafish Cell Lines
Published on: January 6, 2023
Cytotoxicity evaluation of large cyanobacterial strain set using selected human and murine in vitro cell models
Pavel Hrouzek1, Aleksandra Kapuścik1, Jan Vacek2
1Institute of Microbiology, Centre Algatech, Czech Academy of Sciences, Opatovický mlýn, 379 81 Třeboň, Czech Republic.
Abstract:
The production of cytotoxic molecules interfering with mammalian cells is extensively reported in cyanobacteria. These compounds may have a use in pharmacological applications; however, their potential toxicity needs to be considered. We performed cytotoxicity tests of crude cyanobacterial extracts in six cell models in order to address the frequency of cyanobacterial cytotoxicity to human cells and the level of specificity to a particular cell line. A set of more than 100 cyanobacterial crude extracts isolated from soil habitats (mainly genera Nostoc and Tolypothrix) was tested by MTT test for in vitro toxicity on the hepatic and non-hepatic human cell lines HepG2 and HeLa, and three cell systems of rodent origin: Yac-1, Sp-2 and Balb/c 3T3 fibroblasts. Furthermore, a subset of the extracts was assessed for cytotoxicity against primary cultures of human hepatocytes as a model for evaluating potential hepatotoxicity. Roughly one third of cyanobacterial extracts caused cytotoxic effects (i.e. viability<75%) on human cell lines. Despite the sensitivity differences, high correlation coefficients among the inhibition values were obtained for particular cell systems. This suggests a prevailing general cytotoxic effect of extracts and their constituents. The non-transformed immortalized fibroblasts (Balb/c 3T3) and hepatic cancer line HepG2 exhibited good correlations with primary cultures of human hepatocytes. The presence of cytotoxic fractions in strongly cytotoxic extracts was confirmed by an activity-guided HPLC fractionation, and it was demonstrated that cyanobacterial cytotoxicity is caused by a mixture of components with similar hydrophobic/hydrophilic properties. The data presented here could be used in further research into in vitro testing based on human models for the toxicological monitoring of complex cyanobacterial samples.
Insights
Cyanobacteria produce cytotoxic molecules potentially useful in pharmacology. Roughly one-third of tested soil cyanobacterial extracts showed toxicity to human cells, indicating a general cytotoxic effect rather than cell-specific action.
Area of Science:
- Microbiology
- Toxicology
- Pharmacology
Background:
- Cyanobacteria are known producers of cytotoxic compounds with potential pharmacological applications.
- Assessing the toxicity and specificity of these compounds is crucial for safe application.
Purpose of the Study:
- To determine the frequency and specificity of cytotoxicity of cyanobacterial extracts on human and rodent cell lines.
- To evaluate the correlation between in vitro cell models and primary human hepatocytes for toxicity assessment.
Main Methods:
- Tested over 100 crude cyanobacterial extracts using the MTT assay for in vitro toxicity.
- Utilized human cell lines (HepG2, HeLa), rodent cell systems (Yac-1, Sp-2, Balb/c 3T3), and primary human hepatocytes.
- Employed activity-guided High-Performance Liquid Chromatography (HPLC) fractionation for cytotoxic component identification.
Main Results:
- Approximately one-third of the cyanobacterial extracts exhibited cytotoxic effects on human cell lines.
- High correlations in inhibition values across cell systems suggest a general cytotoxic mechanism.
- Non-transformed fibroblasts (Balb/c 3T3) and HepG2 cells showed good correlation with primary human hepatocyte toxicity.
- Cytotoxicity was attributed to mixtures of components with similar physicochemical properties.
Conclusions:
- Cyanobacterial extracts frequently possess general cytotoxic activity against human cells.
- Specific cell lines like HepG2 and Balb/c 3T3 can serve as reliable models for predicting hepatotoxicity.
- Further research using human-based in vitro models is recommended for toxicological monitoring of cyanobacterial samples.

