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Updated: Jun 8, 2026

Sexual Development and Ascospore Discharge in Fusarium graminearum
Published on: March 29, 2012
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
Abstract:
Because of their microscopic size, the forcibly ejected spores of ascomycete fungi are quickly brought to rest by drag. Nonetheless some apothecial species, including the pathogen Sclerotinia sclerotiorum, disperse with astonishing rapidity between ephemeral habitats. Here we show that by synchronizing the ejection of thousands of spores, these fungi create a flow of air that carries spores through the nearly still air surrounding the apothecium, around intervening obstacles, and to atmospheric currents and new infection sites. High-speed imaging shows that synchronization is self-organized and likely triggered by mechanical stresses. Although many spores are sacrificed to produce the favorable airflow, creating the potential for conflict among spores, the geometry of the spore jet physically targets benefits of the airflow to spores that cooperate maximally in its production. The ability to manipulate a local fluid environment to enhance spore dispersal is a previously overlooked feature of the biology of fungal pathogens, and almost certainly shapes the virulence of species including S. sclerotiorum. Synchronous spore ejection may also provide a model for the evolution of stable, self-organized behaviors.
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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