Related Experiment Video
Updated: May 25, 2026

High Content Screening Analysis to Evaluate the Toxicological Effects of Harmful and Potentially Harmful Constituents (HPHC)
Published on: May 10, 2016
Evaluation of the cytotoxicity of organic dust components on THP1 monocytes-derived macrophages using high content
1School of Agriculture, Food Science and Veterinary Medicine, University College Dublin, 4 Dublin, Ireland; Faculty of Veterinary Medicine, University of Liege, B-4000 Liege, Belgium.
Abstract:
Organic dust contains pathogen-associated molecular patterns (PAMPs) which can induce significant airway diseases following chronic exposure. Mononuclear phagocytes are key protecting cells of the respiratory tract. Several studies have investigated the effects of PAMPs and mainly endotoxins, on cytokine production. However the sublethal cytotoxicity of organic dust components on macrophages has not been tested yet. The novel technology of high content analysis (HCA) is already used to assess subclinical drug-induced toxicity. It combines the capabilities of flow cytometry, intracellular fluorescence probes, and image analysis and enables rapid multiple analyses in large numbers of samples. In this study, HCA was used to investigate the cytotoxicity of the three major PAMPs contained in organic dust, i.e., endotoxin (LPS), peptidoglycan (PGN) and β-glucans (zymosan) on THP-1 monocyte-derived macrophages. LPS was used at concentrations of 0.005, 0.01, 0.02, 0.05, 0.1, and 1 μg/mL; PGN and zymosan were used at concentrations of 1, 5, 10, 50, 100, and 500 μg/mL. Cells were exposed to PAMPs for 24 h. In addition, the oxidative burst and the phagocytic capabilities of the cells were tested. An overlap between PGN intrinsic fluorescence and red/far-red fluorescent dyes occurred, rendering the evaluation of some parameters impossible for PGN. LPS induced sublethal cytotoxicity at the lowest dose (from 50 ng/mL). However, the greatest cytotoxic changes occurred with zymosan. In addition, zymosan, but not LPS, induced phagosome maturation and oxidative burst. Given the fact that β-glucans can be up to 100-fold more concentrated in organic dust than LPS, these results suggest that β-glucans could play a major role in macrophage impairment following heavy dust exposure and will merit further investigation in the near future.
Insights
Organic dust components like beta-glucans cause significant macrophage impairment, leading to airway diseases. High content analysis revealed beta-glucans, not endotoxins, induce major cytotoxic changes and oxidative burst in macrophages.
Area of Science:
- Immunology
- Toxicology
- Cell Biology
Background:
- Organic dust contains pathogen-associated molecular patterns (PAMPs) implicated in chronic airway diseases.
- Mononuclear phagocytes, particularly macrophages, are crucial for respiratory tract defense.
- While PAMPs' effects on cytokine production are known, their sublethal cytotoxicity on macrophages remains understudied.
Purpose of the Study:
- To investigate the sublethal cytotoxic effects of major organic dust PAMPs on macrophages using high content analysis (HCA).
- To compare the cytotoxicity of endotoxin (LPS), peptidoglycan (PGN), and β-glucans (zymosan) on THP-1 monocyte-derived macrophages.
- To assess the impact of these PAMPs on macrophage phagocytic capabilities and oxidative burst.
Main Methods:
- Utilized high content analysis (HCA), integrating flow cytometry, intracellular fluorescence, and image analysis.
- Exposed THP-1 derived macrophages to varying concentrations of LPS, PGN, and zymosan for 24 hours.
- Evaluated sublethal cytotoxicity, phagosome maturation, and oxidative burst, noting PGN fluorescence interference.
Main Results:
- LPS induced sublethal cytotoxicity starting at 50 ng/mL.
- Zymosan (β-glucans) demonstrated the most significant cytotoxic effects and induced phagosome maturation and oxidative burst.
- PGN fluorescence interfered with certain HCA parameter evaluations.
Conclusions:
- β-glucans, prevalent in organic dust, are potent inducers of macrophage impairment and cytotoxicity.
- These findings suggest β-glucans play a significant role in macrophage dysfunction following heavy dust exposure.
- Further investigation into β-glucans' role in dust-induced airway diseases is warranted.

