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Updated: Oct 22, 2025

High Throughput, Real-time, Dual-readout Testing of Intracellular Antimicrobial Activity and Eukaryotic Cell Cytotoxicity
Published on: November 16, 2016
Dose Dependent Antimicrobial Cellular Cytotoxicity-Implications for ex vivo Diagnostics
Ana Copaescu1, Phuti Choshi2, Sarah Pedretti2
1Centre for Antibiotic Allergy and Research, Department of Infectious Diseases, Austin Health, Heidelberg, VIC, Australia.
Insights
Higher antimicrobial concentrations in ex vivo diagnostics like interferon-gamma (IFN-γ) release ELISpot assays increase cell death, reducing assay sensitivity. Careful drug concentration selection is crucial for accurate T-cell mediated hypersensitivity assessment.
Area of Science:
- Immunology
- Pharmacology
- Diagnostic Assay Development
Background:
- Interferon-gamma (IFN-γ) release enzyme linked ImmunoSpot (ELISpot) assays are vital for diagnosing severe T-cell mediated hypersensitivity.
- Limited data exists on antimicrobial-associated cellular cytotoxicity and its impact on ex vivo diagnostic assay performance.
- Understanding drug concentrations that preserve cell viability is essential for accurate drug causality assessment.
Purpose of the Study:
- To determine maximal antimicrobial concentrations that maintain cell viability for ex vivo IFN-γ ELISpot assays.
- To investigate the impact of antimicrobial concentrations on cell cytotoxicity using lactate dehydrogenase (LDH) and 7-AAD staining.
- To assess the implications of drug concentrations on ELISpot assay performance in hypersensitivity diagnostics.
Main Methods:
- Peripheral blood mononuclear cells (PBMCs) from healthy controls and patients with drug reactions were incubated with antimicrobials at varying concentrations (Cmax, 10x Cmax, 100x Cmax).
- Cell cytotoxicity was measured using lactate dehydrogenase (LDH) assay and 7-AAD cell viability staining via flow cytometry.
- IFN-γ ELISpot assay was used to assess drug-specific T-cell responses.
Main Results:
- Higher antimicrobial concentrations (10x and 100x Cmax) significantly increased cell cytotoxicity and reduced IFN-γ ELISpot sensitivity.
- LDH assay showed dose-dependent cytotoxicity for most tested antimicrobials, with >40% cell death at 100x Cmax for most drugs.
- 7-AAD staining confirmed increased lymphocyte death with higher drug concentrations for ceftriaxone and flucloxacillin, but not piperacillin/tazobactam or isoniazid.
Conclusions:
- Lactate dehydrogenase (LDH) and 7-AAD cell viability assays demonstrate that elevated antimicrobial concentrations induce cell death, compromising ELISpot assay sensitivity.
- Antimicrobial concentrations at Cmax and 10-fold Cmax negatively impact cell viability and ELISpot assay performance.
- Findings guide the selection of appropriate antimicrobial concentrations for ex vivo IFN-γ ELISpot assays to ensure diagnostic accuracy.
Abstract:
Introduction: Ex vivo and in vitro diagnostics, such as interferon-γ (IFN-γ) release enzyme linked ImmunoSpot (ELISpot) and flow cytometry, are increasingly employed in the research and diagnostic setting for severe T-cell mediated hypersensitivity. Despite an increasing use of IFN-γ release ELISpot for drug causality assessment and utilization of a range of antimicrobial concentrations ex vivo, data regarding antimicrobial-associated cellular cytotoxicity and implications for assay performance remain scarcely described in the literature. Using the measurement of lactate dehydrogenase (LDH) and the 7-AAD cell viability staining, we aimed via an exploratory study, to determine the maximal antimicrobial concentrations required to preserve cell viability for commonly implicated antimicrobials in severe T-cell mediated hypersensitivity. Method: After an 18-h incubation of patient peripheral blood monocytes (PBMCs) and antimicrobials at varying drug concentrations, the cell cytotoxicity was measured in two ways. A colorimetric based assay that detects LDH activity and by flow cytometry using the 7-AAD cell viability staining. We used the PBMCs collected from three healthy control participants with no known history of adverse drug reaction and two patients with a rifampicin-associated drug reaction with eosinophilia and systemic symptoms (DRESS), confirmed on IFN-γ ELISpot assay. The PBMCs were stimulated for the investigated drugs at the previously published drug maximum concentration (Cmax), and concentrations 10- and 100-fold above. Results: In a human immunodeficiency virus (HIV) negative and a positive rifampicin-associated DRESS with positive ex vivo IFN-γ ELISpot assay, use of 10- and 100-fold Cmax drug concentrations decreased spot forming units/million cells by 32-100%, and this corresponded to cell cytotoxicity of more than 40 and 20% using an LDH assay and 7-AAD cell viability staining, respectively. The other antimicrobials (ceftriaxone, flucloxacillin, piperacillin/tazobactam, and isoniazid) tested in healthy controls showed similar dose-dependent increased cytotoxicity using the LDH assay, but cytotoxicity remained lower than 40% for all Cmax and 10-fold Cmax drug concentrations except flucloxacillin. All 100-fold Cmax concentrations resulted in cell death >40% (median 57%), except for isoniazid. 7-AAD cell viability staining also confirmed an increase in lymphocyte death in PBMCs incubated with 10-fold and 100-fold above Cmax for ceftriaxone, and flucloxacillin; however, piperacillin/tazobactam and isoniazid indicated no differences in percentages of viable lymphocytes across concentrations tested. Conclusion: The LDH cytotoxicity and 7-AAD cell viability staining techniques both demonstrate increased cell death corresponding to a loss in ELISpot sensitivity, with use of higher antimicrobial drug concentrations for ex vivo diagnostic IFN-γ ELISpot assays. For all the antimicrobials evaluated, the use of Cmax and 10-fold Cmax concentrations impacts cell viability and potentially affects ELISpot performance. These findings inform future approaches for ex vivo diagnostics such as IFN-γ release ELISpot.
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