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Updated: Jul 4, 2026

A Microscopic Phenotypic Assay for the Quantification of Intracellular Mycobacteria Adapted for High-throughput/High-content Screening
Published on: January 17, 2014
High-throughput, single-cell analysis of macrophage interactions with fluorescently labeled Bacillus anthracis spores
Bojana Stojkovic1, Eric M Torres, Angela M Prouty
1Department of Microbiology, B103 CLSL, University of Illinois, 601 South Goodwin, Urbana, IL 61801, USA.
Abstract:
The engulfment of Bacillus anthracis spores by macrophages is an important step in the pathogenesis of inhalational anthrax. However, from a quantitative standpoint, the magnitude to which macrophages interact with and engulf spores remains poorly understood, in part due to inherent limitations associated with commonly used assays. To analyze phagocytosis of spores by RAW264.7 macrophage-like cells in a high-throughput, nonsubjective manner, we labeled B. anthracis Sterne 7702 spores prior to infection with an Alexa Fluor 488 amine-reactive dye in a manner that did not alter their germination, growth kinetics, and heat resistance. Using flow cytometry, large numbers of cells exposed to labeled spores were screened to concurrently discriminate infected from uninfected cells and surface-associated from internalized spores. These experiments revealed that spore uptake was not uniform, but instead, highly heterogeneous and characterized by subpopulations of infected and uninfected cells, as well as considerable variation in the number of spores associated with individual cells. Flow cytometry analysis of infections demonstrated that spore uptake was independent of the presence or absence of fetal bovine serum, a germinant that, while routinely used in vitro, complicates the interpretation of the outcome of infections. Two commonly used macrophage cell lines, RAW264.7 and J774A.1 cells, were compared, revealing significant disparity between these two models in the rates of phagocytosis of labeled spores. These studies provide the experimental framework for investigating mechanisms of spore phagocytosis, as well as quantitatively evaluating strategies for interfering with macrophage binding and uptake of spores.
Insights
Quantifying Bacillus anthracis spore uptake by macrophages is crucial for understanding anthrax pathogenesis. This study developed a high-throughput flow cytometry method to reveal heterogeneous spore phagocytosis by macrophage-like cells.
Area of Science:
- Immunology
- Microbiology
- Pathogenesis
Background:
- Macrophage engulfment of Bacillus anthracis spores is key in inhalational anthrax.
- Quantitative understanding of spore phagocytosis by macrophages is limited by current assay methodologies.
Purpose of the Study:
- To develop a high-throughput, objective method for analyzing Bacillus anthracis spore phagocytosis by RAW264.7 macrophage-like cells.
- To quantitatively assess spore uptake heterogeneity and the influence of experimental conditions.
Main Methods:
- Bacillus anthracis Sterne 7702 spores were labeled with Alexa Fluor 488 without affecting their viability or growth.
- Flow cytometry was employed to screen large cell populations, distinguishing between surface-associated and internalized spores.
- RAW264.7 and J774A.1 macrophage cell lines were compared for their phagocytic activity.
Main Results:
- Spore uptake was highly heterogeneous, with distinct subpopulations of infected and uninfected cells and variable spore loads per cell.
- Spore phagocytosis was independent of fetal bovine serum, simplifying in vitro infection interpretation.
- Significant differences in phagocytosis rates were observed between RAW264.7 and J774A.1 cell lines.
Conclusions:
- A robust flow cytometry assay was established for quantitative analysis of Bacillus anthracis spore phagocytosis.
- The findings highlight the heterogeneity of macrophage-spore interactions and provide a framework for future mechanistic studies.
- This method enables quantitative evaluation of strategies aimed at disrupting macrophage-spore interactions in anthrax research.

