Adaptation of the spore discharge mechanism in the basidiomycota.

Spore discharge in the majority of the 30,000 described species of Basidiomycota is powered by the rapid motion of a fluid droplet, called Buller's drop, over the spore surface. In basidiomycete yeasts, and phytopathogenic rusts and smuts, spores are discharged directly into the airflow around...

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Main Authors: Jessica L Stolze-Rybczynski, Yunluan Cui, M Henry H Stevens, Diana J Davis, Mark W F Fischer, Nicholas P Money
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2009-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2612744?pdf=render
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author Jessica L Stolze-Rybczynski
Yunluan Cui
M Henry H Stevens
Diana J Davis
Mark W F Fischer
Nicholas P Money
author_facet Jessica L Stolze-Rybczynski
Yunluan Cui
M Henry H Stevens
Diana J Davis
Mark W F Fischer
Nicholas P Money
author_sort Jessica L Stolze-Rybczynski
collection DOAJ
description Spore discharge in the majority of the 30,000 described species of Basidiomycota is powered by the rapid motion of a fluid droplet, called Buller's drop, over the spore surface. In basidiomycete yeasts, and phytopathogenic rusts and smuts, spores are discharged directly into the airflow around the fungal colony. Maximum discharge distances of 1-2 mm have been reported for these fungi. In mushroom-forming species, however, spores are propelled over much shorter ranges. In gilled mushrooms, for example, discharge distances of <0.1 mm ensure that spores do not collide with opposing gill surfaces. The way in which the range of the mechanism is controlled has not been studied previously.In this study, we report high-speed video analysis of spore discharge in selected basidiomycetes ranging from yeasts to wood-decay fungi with poroid fruiting bodies. Analysis of these video data and mathematical modeling show that discharge distance is determined by both spore size and the size of the Buller's drop. Furthermore, because the size of Buller's drop is controlled by spore shape, these experiments suggest that seemingly minor changes in spore morphology exert major effects upon discharge distance.This biomechanical analysis of spore discharge mechanisms in mushroom-forming fungi and their relatives is the first of its kind and provides a novel view of the incredible variety of spore morphology that has been catalogued by traditional taxonomists for more than 200 years. Rather than representing non-selected variations in micromorphology, the new experiments show that changes in spore architecture have adaptive significance because they control the distance that the spores are shot through air. For this reason, evolutionary modifications to fruiting body architecture, including changes in gill separation and tube diameter in mushrooms, must be tightly linked to alterations in spore morphology.
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spelling doaj.art-e1a8839d81ee4a06822a517fd44dc3dd2022-12-22T00:13:01ZengPublic Library of Science (PLoS)PLoS ONE1932-62032009-01-0141e416310.1371/journal.pone.0004163Adaptation of the spore discharge mechanism in the basidiomycota.Jessica L Stolze-RybczynskiYunluan CuiM Henry H StevensDiana J DavisMark W F FischerNicholas P MoneySpore discharge in the majority of the 30,000 described species of Basidiomycota is powered by the rapid motion of a fluid droplet, called Buller's drop, over the spore surface. In basidiomycete yeasts, and phytopathogenic rusts and smuts, spores are discharged directly into the airflow around the fungal colony. Maximum discharge distances of 1-2 mm have been reported for these fungi. In mushroom-forming species, however, spores are propelled over much shorter ranges. In gilled mushrooms, for example, discharge distances of <0.1 mm ensure that spores do not collide with opposing gill surfaces. The way in which the range of the mechanism is controlled has not been studied previously.In this study, we report high-speed video analysis of spore discharge in selected basidiomycetes ranging from yeasts to wood-decay fungi with poroid fruiting bodies. Analysis of these video data and mathematical modeling show that discharge distance is determined by both spore size and the size of the Buller's drop. Furthermore, because the size of Buller's drop is controlled by spore shape, these experiments suggest that seemingly minor changes in spore morphology exert major effects upon discharge distance.This biomechanical analysis of spore discharge mechanisms in mushroom-forming fungi and their relatives is the first of its kind and provides a novel view of the incredible variety of spore morphology that has been catalogued by traditional taxonomists for more than 200 years. Rather than representing non-selected variations in micromorphology, the new experiments show that changes in spore architecture have adaptive significance because they control the distance that the spores are shot through air. For this reason, evolutionary modifications to fruiting body architecture, including changes in gill separation and tube diameter in mushrooms, must be tightly linked to alterations in spore morphology.http://europepmc.org/articles/PMC2612744?pdf=render
spellingShingle Jessica L Stolze-Rybczynski
Yunluan Cui
M Henry H Stevens
Diana J Davis
Mark W F Fischer
Nicholas P Money
Adaptation of the spore discharge mechanism in the basidiomycota.
PLoS ONE
title Adaptation of the spore discharge mechanism in the basidiomycota.
title_full Adaptation of the spore discharge mechanism in the basidiomycota.
title_fullStr Adaptation of the spore discharge mechanism in the basidiomycota.
title_full_unstemmed Adaptation of the spore discharge mechanism in the basidiomycota.
title_short Adaptation of the spore discharge mechanism in the basidiomycota.
title_sort adaptation of the spore discharge mechanism in the basidiomycota
url http://europepmc.org/articles/PMC2612744?pdf=render
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