Long-Distance Dispersal of Fungi

被引:144
作者
Golan, Jacob J. [1 ]
Pringle, Anne [1 ]
机构
[1] Univ Wisconsin, Dept Bacteriol, Dept Bot, Madison, WI 35706 USA
来源
MICROBIOLOGY SPECTRUM | 2017年 / 5卷 / 04期
基金
美国国家科学基金会;
关键词
CHESTNUT BLIGHT FUNGUS; PHAKOPSORA-PACHYRHIZI; CONTINENTAL-SCALE; GENETIC-STRUCTURE; SEED DISPERSAL; MYCOSPHAERELLA-GRAMINICOLA; METEOROLOGICAL CONDITIONS; PHYLOGEOGRAPHIC STRUCTURE; FUSARIUM-GRAMINEARUM; POPULATION-STRUCTURE;
D O I
10.1128/microbiolspec.FUNK-0047-2016
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Dispersal is a fundamental biological process, operating at multiple temporal and spatial scales. Despite an increasing understanding of fungal biodiversity, most research on fungal dispersal focuses on only a small fraction of species. Thus, any discussion of the dispersal dynamics of fungi as a whole is problematic. While abundant morphological and biogeographic data are available for hundreds of species, researchers have yet to integrate this information into a unifying paradigm of fungal dispersal, especially in the context of long-distance dispersal (LDD). Fungal LDD is mediated by multiple vectors, including meteorological phenomena (e.g., wind and precipitation), plants (e.g., seeds and senesced leaves), animals (e.g., fur, feathers, and gut microbiomes), and in many cases humans. In addition, fungal LDD is shaped by both physical constraints on travel and the ability of spores to survive harsh environments. Finally, fungal LDD is commonly measured in different ways, including by direct capture of spores, genetic comparisons of disconnected populations, and statistical modeling and simulations of dispersal data. To unify perspectives on fungal LDD, we propose a synthetic three-part definition that includes (i) an identification of the source population and a measure of the concentration of source inoculum and (ii) a measured and/or modeled dispersal kernel. With this information, LDD is defined as (iii) the distance found within the dispersal kernel beyond which only 1% of spores travel.
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页数:24
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共 209 条
  • [1] Surface hydrophobin prevents immune recognition of airborne fungal spores
    Aimanianda, Vishukumar
    Bayry, Jagadeesh
    Bozza, Silvia
    Kniemeyer, Olaf
    Perruccio, Katia
    Elluru, Sri Ramulu
    Clavaud, Cecile
    Paris, Sophie
    Brakhage, Axel A.
    Kaveri, Srini V.
    Romani, Luigina
    Latge, Jean-Paul
    [J]. NATURE, 2009, 460 (7259) : 1117 - 1121
  • [2] Filamentous Fungi Transported by Birds During Migration Across the Mediterranean Sea
    Alfonzo, Antonio
    Francesca, Nicola
    Sannino, Ciro
    Settanni, Luca
    Moschetti, Giancarlo
    [J]. CURRENT MICROBIOLOGY, 2013, 66 (03) : 236 - 242
  • [3] Origin, Migration Routes and Worldwide Population Genetic Structure of the Wheat Yellow Rust Puccinia striiformis f. sp tritici
    Ali, Sajid
    Gladieux, Pierre
    Leconte, Marc
    Gautier, Angelique
    Justesen, Annemarie F.
    Hovmoller, Morgens S.
    Enjalbert, Jerome
    de Vallavieille-Pope, Claude
    [J]. PLOS PATHOGENS, 2014, 10 (01)
  • [4] Spore dimensions of Puccinia species of cereal hosts as determined by image analysis
    Anikster, Y
    Eilam, T
    Bushnell, WR
    Kosman, E
    [J]. MYCOLOGIA, 2005, 97 (02) : 474 - 484
  • [5] [Anonymous], 2009, Invasion Biology
  • [6] Parasites as probes for prehistoric human migrations?
    Araujo, Adauto
    Reinhard, Karl J.
    Ferreira, Luiz Fernando
    Gardner, Scott L.
    [J]. TRENDS IN PARASITOLOGY, 2008, 24 (03) : 112 - 115
  • [7] LONG-RANGE TRANSPORT OF TOBACCO BLUE MOLD SPORES
    AYLOR, DE
    TAYLOR, GS
    RAYNOR, GS
    [J]. AGRICULTURAL METEOROLOGY, 1982, 27 (3-4): : 217 - 232
  • [9] RELEASE OF VENTURIA-INAEQUALIS ASCOSPORES DURING UNSTEADY RAIN - RELATIONSHIP TO SPORE TRANSPORT AND DEPOSITION
    AYLOR, DE
    SUTTON, TB
    [J]. PHYTOPATHOLOGY, 1992, 82 (05) : 532 - 540
  • [10] Spread of plant disease on a continental scale: Role of aerial dispersal of pathogens
    Aylor, DE
    [J]. ECOLOGY, 2003, 84 (08) : 1989 - 1997