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Use of Image Cytometry for Quantification of Pathogenic Fungi in Association with Host Cells
Published on: June 19, 2013
Use of image cytometry for quantification of pathogenic fungi in association with host cells
Charlotte Berkes1, Leo Li-Ying Chan, Alisha Wilkinson
1Department of Biology, Merrimack College. berkesc@merrimack.edu
Abstract:
Studies of the cellular pathogenesis mechanisms of pathogenic yeasts such as Candida albicans, Histoplasma capsulatum, and Cryptococcus neoformans commonly employ infection of mammalian hosts or host cells (i.e. macrophages) followed by yeast quantification using colony forming unit analysis or flow cytometry. While colony forming unit enumeration has been the most commonly used method in the field, this technique has disadvantages and limitations, including slow growth of some fungal species on solid media and low and/or variable plating efficiencies, which is of particular concern when comparing growth of wild-type and mutant strains. Flow cytometry can provide rapid quantitative information regarding yeast viability, however, adoption of flow cytometric detection for pathogenic yeasts has been limited for a number of practical reasons including its high cost and biosafety considerations. Here, we demonstrate an image-based cytometric methodology using the Cellometer Vision (Nexcelom Bioscience, LLC) for the quantification of viable pathogenic yeasts in co-culture with macrophages. Our studies focus on detection of two human fungal pathogens: Histoplasma capsulatum and Candida albicans. H. capsulatum colonizes alveolar macrophages by replicating within the macrophage phagosome, and here, we quantitatively assess the growth of H. capsulatum yeasts in RAW 264.7 macrophages using acridine orange/propidium iodide staining in combination with image cytometry. Our method faithfully recapitulates growth trends as measured by traditional colony forming unit enumeration, but with significantly increased sensitivity. Additionally, we directly assess infection of live macrophages with a GFP-expressing strain of C. albicans. Our methodology offers a rapid, accurate, and economical means for detection and quantification of important human fungal pathogens in association with host cells.
Insights
This study introduces a new image-based cytometry method for quantifying pathogenic yeasts like Histoplasma capsulatum and Candida albicans in host cells. This rapid, accurate, and economical technique offers increased sensitivity over traditional methods.
Area of Science:
- Mycology
- Cell Biology
- Infectious Diseases
Background:
- Traditional methods for quantifying pathogenic yeasts, such as colony forming unit enumeration and flow cytometry, have limitations including slow growth, variable plating efficiencies, high cost, and biosafety concerns.
- Accurate quantification of yeast load within host cells is crucial for understanding fungal pathogenesis.
Purpose of the Study:
- To develop and validate an image-based cytometric methodology for rapid, accurate, and economical quantification of viable pathogenic yeasts in co-culture with macrophages.
- To assess the utility of this method for studying the interaction of Histoplasma capsulatum and Candida albicans with host cells.
Main Methods:
- Utilized the Cellometer Vision image cytometer for quantification of pathogenic yeasts.
- Employed acridine orange/propidium iodide staining for viability assessment of Histoplasma capsulatum in RAW 264.7 macrophages.
- Assessed infection of macrophages with a GFP-expressing strain of Candida albicans.
Main Results:
- The image-based cytometry method accurately recapitulated growth trends of Histoplasma capsulatum compared to colony forming unit enumeration.
- The new method demonstrated significantly increased sensitivity in quantifying yeast load.
- The methodology successfully assessed direct infection of live macrophages with Candida albicans.
Conclusions:
- Image-based cytometry provides a rapid, accurate, and economical alternative for quantifying pathogenic yeasts in association with host cells.
- This technique enhances sensitivity and overcomes limitations of traditional methods, facilitating research on fungal pathogenesis.

