PLB-985 Neutrophil-Like Cells as a Model To Study Aspergillus fumigatus Pathogenesis

Muhammad Rafiq1,2, Flora Rivieccio1,2, Ann-Kathrin Zimmermann1,2

  • 1Department of Molecular and Applied Microbiology, Leibniz Institute for Natural Product Research and Infection Biology - Hans Knöll Institute (Leibniz-HKI), Jena, Germany.

Msphere
|January 5, 2022
PubMed

Insights

Researchers developed a new neutrophil-like cell model for studying fungal infections. This model effectively mimics primary human cell responses to Aspergillus fumigatus, aiding research into neutrophil extracellular vesicles.

Area of Science:

  • Mycology and Immunology
  • Cell Biology and Pathogenesis

Background:

  • Fungal infections pose a significant global health challenge, exacerbated by emerging pathogens and antimicrobial resistance.
  • Neutrophilic granulocytes (neutrophils) are crucial in combating fungal pathogens like Aspergillus fumigatus, utilizing mechanisms such as extracellular vesicle production.
  • Limited availability of suitable cell line models hinders research into neutrophil-fungal interactions and pathogenesis.

Purpose of the Study:

  • To evaluate the utility of differentiated PLB-985 neutrophil-like cells as an in vitro model for studying Aspergillus fumigatus infection.
  • To compare the behavior of differentiated PLB-985 cells with primary human polymorphonuclear leukocytes during fungal infection.
  • To develop an improved method for isolating neutrophil-derived extracellular vesicles.

Main Methods:

  • Differentiation of PLB-985 cells using dimethylformamide.
  • In vitro infection assays with Aspergillus fumigatus.
  • Analysis of phagocytosis, phagolysosome acidification, neutrophil extracellular trap (NET) release, and extracellular vesicle production.
  • Size exclusion chromatography for extracellular vesicle isolation.
  • Liquid chromatography-tandem mass spectrometry (LC-MS/MS) proteomics.

Main Results:

  • Differentiated PLB-985 cells successfully recapitulated key aspects of primary neutrophil interactions with A. fumigatus.
  • These cells phagocytosed fungal conidia, acidified phagolysosomes, released NETs, and produced antifungal extracellular vesicles.
  • An improved size exclusion chromatography method enhanced the purity of isolated extracellular vesicles, confirmed by proteomics.
  • Proteomics revealed enriched EV markers and reduced cytoplasmic proteins in purified EVs.

Conclusions:

  • Differentiated PLB-985 cells represent a valuable, genetically tractable in vitro model for studying neutrophil interactions with Aspergillus fumigatus.
  • This cell line facilitates mechanistic studies of neutrophil antifungal biology and the development of new therapeutic strategies.
  • The improved EV isolation method provides a crucial tool for future research on neutrophil-derived extracellular vesicles in fungal pathogenesis.