Live-cell video microscopy of fungal pathogen phagocytosis

Leanne E Lewis1, Judith M Bain, Blessing Okai

  • 1Division of Applied Medicine, University of Aberdeen.

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.