The buoyancy of cryptococcal cells and its implications for transport and persistence of Cryptococcus in aqueous

Isabel A Jimenez1,2, Piotr R Stempinski2, Quigly Dragotakes2

  • 1Department of Molecular and Comparative Pathobiology, The Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.

Msphere
|November 27, 2024
PubMed

Insights

Cryptococcus fungi persist near water surfaces due to salinity and buoyant aggregates, impacting their environmental transport and potential for human exposure. This research reveals new aquatic persistence mechanisms for these important fungal pathogens.

Area of Science:

  • Environmental microbiology
  • Mycology
  • Pathogen transport

Background:

  • Cryptococcus species (Cryptococcus neoformans and Cryptococcus gattii) are global fungal pathogens.
  • Infections arise from inhaling spores from terrestrial sources, but aquatic exposure is increasingly recognized.
  • Cryptococcus gattii's emergence in new regions and ability to infect immunocompetent individuals highlight the need to understand its environmental spread.

Purpose of the Study:

  • To investigate mechanisms of cryptococcal persistence and transport in aquatic environments.
  • To determine how environmental factors like salinity affect cryptococcal cell buoyancy and settling rates.
  • To identify structural components that may contribute to cryptococcal buoyancy in water.

Main Methods:

  • Assessing the buoyancy and settling rates of Cryptococcus neoformans and Cryptococcus gattii in solutions of varying salinity.
  • Observing cryptococcal cell behavior at the air-water interface and within haloclines.
  • Microscopic analysis of cryptococcal cultures to identify extracellular structures potentially aiding buoyancy.

Main Results:

  • Salinity significantly impacts cryptococcal cell buoyancy, with haloclines dramatically slowing settling rates.
  • Cryptococcus neoformans persisted near the water surface for over 60 minutes, and Cryptococcus gattii for 4-6 hours.
  • Complex aggregates of extracellular polysaccharide were observed, hypothesized to form rafts that enhance cell buoyancy.

Conclusions:

  • Cryptococcal cells exhibit enhanced buoyancy and persistence in aquatic environments, influenced by salinity and unique extracellular structures.
  • These findings provide novel insights into the aquatic transport and environmental dissemination of Cryptococcus species.
  • Understanding these mechanisms is crucial for assessing risks associated with cryptococcal exposure via waterborne routes.

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