Principles from community and metapopulation ecology: application to fungal entomopathogens

被引:51
作者
Meyling, Nicolai V. [1 ]
Hajek, Ann E. [2 ]
机构
[1] Univ Copenhagen, Dept Agr & Ecol, Fac Life Sci, DK-1871 Frederiksberg C, Denmark
[2] Cornell Univ, Dept Entomol, Ithaca, NY 14853 USA
关键词
Community ecology; Apparent competition; Food webs; Trait-mediated indirect effects; Metapopulation ecology; Host specificity; Fungal entomopathogens; GYPSY-MOTH LEPIDOPTERA; PATHOGEN PANDORA-NEOAPHIDIS; CUCUMBER POWDERY MILDEW; BEAUVERIA-BASSIANA; METARHIZIUM-ANISOPLIAE; APPARENT COMPETITION; INTRAGUILD PREDATION; ERYNIA-NEOAPHIDIS; POPULATION-DYNAMICS; BIOLOGICAL-CONTROL;
D O I
10.1007/s10526-009-9246-5
中图分类号
Q96 [昆虫学];
学科分类号
摘要
Fungal entomopathogens are often studied within the context of their use for biological control, yet these natural enemies are also excellent subjects for studies of ecological interactions. Here, we present selected principles from community ecology and discuss these in relation to fungal entomopathogens. We discuss the relevance of apparent competition, food web construction, intraguild predation and density-mediated and trait-mediated indirect effects. Although current knowledge of community interactions involving fungal entomopathogens are limited, fungal entomopathogens can be important, interactive members of communities and the activities of fungal entomopathogens should be evaluated in the context of ecological principles. We also discuss aspects of metapopulation ecology and the application of these principles to fungal entomopathogens. Knowledge of ecological interactions is crucial if we are to understand and predict the effects of fungal entomopathogens on host populations and understand the interactions among fungal entomopathogens and other organisms in the communities in which they occur.
引用
收藏
页码:39 / 54
页数:16
相关论文
共 109 条
[21]  
EILENBERG J, 2002, THESIS ROYAL VET AGR
[22]   Conservation biological control with the fungal pathogen Pandora neoaphidis:: implications of aphid species, host plant and predator foraging [J].
Ekesi, S ;
Shah, PA ;
Clark, SJ ;
Pell, JK .
AGRICULTURAL AND FOREST ENTOMOLOGY, 2005, 7 (01) :21-30
[23]   Molecular ecology of fungal entomopathogens: molecular genetic tools and their applications in population and fate studies [J].
Enkerli, Juerg ;
Widmer, Franco .
BIOCONTROL, 2010, 55 (01) :17-37
[24]   Spatial and temporal dynamics of epidemics of the rust fungus Uromyces valerianae on populations of its host Valeriana salina [J].
Ericson, L ;
Burdon, JJ ;
Müller, WJ .
JOURNAL OF ECOLOGY, 1999, 87 (04) :649-658
[25]   Aphid dispersal flight disseminates fungal pathogens and parasitoids as natural control agents of aphids [J].
Feng, Ming-Guang ;
Chen, Chun ;
Shang, Su-Wei ;
Ying, Sheng. Hua ;
Shen, Zhi-Cheng ;
Chen, Xue-Xin .
ECOLOGICAL ENTOMOLOGY, 2007, 32 (01) :97-104
[26]   DISPERSAL OF THE ENTOMOPATHOGEN HIRSUTELLA-CRYPTOSCLEROTIUM BY SIMULATED RAIN [J].
FERNANDEZGARCIA, E ;
FITT, BDL .
JOURNAL OF INVERTEBRATE PATHOLOGY, 1993, 61 (01) :39-43
[27]  
FUXA JR, 1997, EPIZOOTIOLOGY INSECT
[28]   Travelling waves and spatial hierarchies in measles epidemics [J].
Grenfell, BT ;
Bjornstad, ON ;
Kappey, J .
NATURE, 2001, 414 (6865) :716-723
[29]   Dynamics of airborne conidia of the gypsy moth (Lepidoptera: Lymantriidae) fungal pathogen Entomophaga maimaiga (Zygomycetes: Entomophthorales) [J].
Hajek, AE ;
Olsen, CH ;
Elkinton, JS .
BIOLOGICAL CONTROL, 1999, 16 (01) :111-117
[30]   INTERACTIONS BETWEEN FUNGAL PATHOGENS AND INSECT HOSTS [J].
HAJEK, AE ;
STLEGER, RJ .
ANNUAL REVIEW OF ENTOMOLOGY, 1994, 39 :293-322