Competitive coexistence of two Pneumocystis species

Crystal R Icenhour1, Jonathan Arnold, Mario Medvedovic

  • 1Mayo Clinic and Foundation, Thoracic Disease Research Unit, Rochester, MN 55905, USA.

Insights

Two fungal species, Pneumocystis carinii and Pneumocystis wakefieldiae, compete in rat lungs. Despite predictions of exclusion, extrinsic factors like humidity and temperature influence their stable coexistence, offering insights into fungal pathogen interactions.

Area of Science:

  • Mycology
  • Ecology
  • Infectious Diseases

Background:

  • Pneumocystis are fungal pathogens causing pneumonia in immunocompromised hosts.
  • Coinfections with distinct Pneumocystis populations occur in mammals, but their interactions are poorly understood.

Purpose of the Study:

  • To investigate the interaction between two rat-infecting Pneumocystis species, Pneumocystis carinii and Pneumocystis wakefieldiae.
  • To determine if these species compete and to identify factors influencing their coexistence.

Main Methods:

  • Longitudinal study over 6 years (approx. 700 generations).
  • Application of Lotka-Volterra competition model to population densities.
  • Logistic-regression analysis of extrinsic factors (humidity, temperature, host density, lung burden).
  • PCR and immunofluorescence to assess species localization within lung alveoli.

Main Results:

  • Lotka-Volterra model predicted competitive exclusion, but stable coexistence was observed.
  • Higher relative humidity and lung burden favored P. carinii alone.
  • Lower temperatures and increased rat census favored P. wakefieldiae presence.
  • Both species were found within the same alveoli, ruling out habitat heterogeneity.

Conclusions:

  • Pneumocystis carinii and P. wakefieldiae engage in competitive coexistence.
  • Extrinsic environmental factors significantly influence the population dynamics and coexistence of these fungal pathogens.
  • This study provides the first ecological model-based evaluation of pathogenic fungal species interactions within a host.

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