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Live-cell Video Microscopy of Fungal Pathogen Phagocytosis
Published on: January 9, 2013
Live-cell video microscopy of fungal pathogen phagocytosis
Leanne E Lewis1, Judith M Bain, Blessing Okai
1Division of Applied Medicine, University of Aberdeen.
Abstract:
Phagocytic clearance of fungal pathogens, and microorganisms more generally, may be considered to consist of four distinct stages: (i) migration of phagocytes to the site where pathogens are located; (ii) recognition of pathogen-associated molecular patterns (PAMPs) through pattern recognition receptors (PRRs); (iii) engulfment of microorganisms bound to the phagocyte cell membrane, and (iv) processing of engulfed cells within maturing phagosomes and digestion of the ingested particle. Studies that assess phagocytosis in its entirety are informative but are limited in that they do not normally break the process down into migration, engulfment and phagosome maturation, which may be affected differentially. Furthermore, such studies assess uptake as a single event, rather than as a continuous dynamic process. We have recently developed advanced live-cell imaging technologies, and have combined these with genetic functional analysis of both pathogen and host cells to create a cross-disciplinary platform for the analysis of innate immune cell function and fungal pathogenesis. These studies have revealed novel aspects of phagocytosis that could only be observed using systematic temporal analysis of the molecular and cellular interactions between human phagocytes and fungal pathogens and infectious microorganisms more generally. For example, we have begun to define the following: (a) the components of the cell surface required for each stage of the process of recognition, engulfment and killing of fungal cells; (b) how surface geometry influences the efficiency of macrophage uptake and killing of yeast and hyphal cells; and how engulfment leads to alteration of the cell cycle and behavior of macrophages. In contrast to single time point snapshots, live-cell video microscopy enables a wide variety of host cells and pathogens to be studied as continuous sequences over lengthy time periods, providing spatial and temporal information on a broad range of dynamic processes, including cell migration, replication and vesicular trafficking. Here we describe in detail how to prepare host and fungal cells, and to conduct the video microscopy experiments. These methods can provide a user-guide for future studies with other phagocytes and microorganisms.
Insights
This study introduces advanced live-cell imaging to analyze phagocytosis, detailing the stages of fungal pathogen clearance by immune cells. The methods enable a dynamic, temporal understanding of host-pathogen interactions for improved innate immunity research.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Phagocytosis is crucial for clearing fungal pathogens but is typically studied as a single event.
- Existing methods lack the temporal resolution to analyze distinct stages like migration, recognition, engulfment, and maturation.
- Understanding these stages is vital as they can be differentially affected during infection.
Purpose of the Study:
- To develop and detail a cross-disciplinary platform combining live-cell imaging and genetic analysis for studying innate immune cell function.
- To provide a systematic temporal analysis of molecular and cellular interactions between human phagocytes and fungal pathogens.
- To offer a user-guide for conducting video microscopy experiments on host-pathogen interactions.
Main Methods:
- Development of advanced live-cell imaging technologies.
- Integration of genetic functional analysis for both host and pathogen cells.
- Systematic temporal analysis of dynamic cellular processes over extended periods.
Main Results:
- Novel insights into the stages of phagocytosis, including recognition, engulfment, and killing of fungal cells.
- Defined cell surface components essential for each stage of phagocytosis.
- Characterized the influence of surface geometry on macrophage uptake and killing efficiency of fungal cells.
- Observed alterations in macrophage cell cycle and behavior following fungal cell engulfment.
Conclusions:
- Live-cell video microscopy provides unprecedented spatial and temporal information on phagocytosis.
- This approach reveals dynamic aspects of host-pathogen interactions previously unobservable.
- The described methods serve as a foundation for future research on phagocytes and microorganisms.

