Dispersal of fungal spores on a cooperatively generated wind

Marcus Roper1, Agnese Seminara, M M Bandi

  • 1Department of Mathematics and Lawrence Berkeley National Laboratory, University of California, Berkeley, CA 94720, USA. mroper@math.berkeley.edu

Insights

Ascomycete fungi synchronize spore ejection to create airflow, enhancing dispersal to new habitats. This self-organized behavior, seen in pathogens like Sclerotinia sclerotiorum, manipulates fluid dynamics for virulence and survival.

Area of Science:

  • Mycology
  • Biophysics
  • Plant Pathology

Background:

  • Fungal spores, despite microscopic size, face rapid deceleration by drag.
  • Some ascomycete fungi, including the pathogen Sclerotinia sclerotiorum, exhibit rapid dispersal between habitats.

Purpose of the Study:

  • To investigate the mechanism behind the rapid dispersal of ascomycete fungal spores.
  • To understand how fungi manipulate their microenvironment for enhanced spore dispersal.

Main Methods:

  • High-speed imaging to observe spore ejection dynamics.
  • Analysis of fluid dynamics generated by synchronized spore release.

Main Results:

  • Synchronized ejection of thousands of spores creates an airflow, propelling them beyond drag limitations.
  • This self-organized phenomenon, likely triggered by mechanical stress, facilitates transport around obstacles.
  • The spore jet's geometry preferentially benefits cooperating spores, optimizing dispersal.

Conclusions:

  • Fungi can manipulate local fluid environments for enhanced spore dispersal, a previously unrecognized strategy.
  • This mechanism likely contributes to the virulence of fungal pathogens like Sclerotinia sclerotiorum.
  • Synchronous spore ejection offers a model for the evolution of self-organized behaviors.

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