Density-dependent dispersal in host-parasitoid assemblages

被引:61
作者
French, DR
Travis, JMJ
机构
[1] Univ London Imperial Coll Sci Technol & Med, Dept Biol, Ascot SL5 7PY, Berks, England
[2] Lund Univ, Dept Ecol, Climate Impacts Grp, SE-22362 Lund, Sweden
关键词
D O I
10.1034/j.1600-0706.2001.950114.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Most spatial population models assume constant rates of dispersal. However, in a given community, dispersal may not only depend on the density of conspecifics. i.e. density-dependent dispersal, but also on the density of other species, a phenomenon we term 'community-dependent dispersal'. We co-vary the densities of both the beetle host Callosobruchus chinensis and its parasitoid wasp. Anisopteromalus calandrae, in a laboratory study and record the proportions of each species that disperse within a two-hour period. The parasitoid in these systems exhibits community-dependent dispersal - dispersing more frequently when parasitoid density is high and larval host density is low. This supported our prediction that individuals should disperse according to competition for available resources. However, in this study the host's dispersal was independent of density. We suggest that this may be due to less intense selection acting on host dispersal strategies than in the parasitoid. We consider some possible consequences of community-dependent dispersal for a number of spatial population processes. A well-known host-parasitoid metapopulation model is expanded so that it includes a greater range of dispersal functions. When the model is parameterised with the parasitoid community-dependent dispersal function observed in the empirical study, similar population dynamics are obtained as when fixed-rate dispersal functions are applied, The importance of dispersal functions for invasions of both competitive and host-parasitoid systems is also considered. The model results demonstrate that understanding how individuals disperse in response to different species' population densities is important in determining the rate of spread of an invasion. We suggest that more empirical studies are needed to establish what determines dispersal rate and distance in a range of species, combined with theoretical studies investigating the role of the dispersal function in determining spatial population processes.
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收藏
页码:125 / 135
页数:11
相关论文
共 58 条
[1]   CIS-VACCENYL ACETATE AS AN AGGREGATION PHEROMONE IN DROSOPHILA-MELANOGASTER [J].
BARTELT, RJ ;
SCHANER, AM ;
JACKSON, LL .
JOURNAL OF CHEMICAL ECOLOGY, 1985, 11 (12) :1747-1756
[2]   SIMULATION-MODELS FOR LABORATORY POPULATIONS OF CALLOSOBRUCHUS-CHINENSIS AND CALLOSOBRUCHUS-MACULATUS [J].
BELLOWS, TS .
JOURNAL OF ANIMAL ECOLOGY, 1982, 51 (02) :597-623
[3]   LARVAL MOVEMENTS OF CHILO-PARTELLUS (LEPIDOPTERA, PYRALIDAE) WITHIN AND BETWEEN PLANTS - TIMING, DENSITY RESPONSES AND SURVIVAL [J].
BERGER, A .
BULLETIN OF ENTOMOLOGICAL RESEARCH, 1992, 82 (04) :441-448
[4]  
Berger J., 1987, P41
[5]   THE SPATIAL DYNAMICS OF HOST PARASITOID SYSTEMS [J].
COMINS, HN ;
HASSELL, MP ;
MAY, RM .
JOURNAL OF ANIMAL ECOLOGY, 1992, 61 (03) :735-748
[6]   Non-random dispersal in the butterfly Maniola jurtina:: implications for metapopulation models [J].
Conradt, L ;
Bodsworth, EJ ;
Roper, TJ ;
Thomas, CD .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2000, 267 (1452) :1505-1510
[7]  
Crawley MJ., 1993, GLIM ECOLOGISTS
[8]   DENSITY-RELATED DISPERSAL IN PLANTHOPPERS - EFFECTS OF INTERSPECIFIC CROWDING [J].
DENNO, RF ;
RODERICK, GK .
ECOLOGY, 1992, 73 (04) :1323-1334
[9]  
DENNO RF, 1992, POPULATION DYNAMICS, P113
[10]   The evolutionary ecology of dispersal [J].
Dieckmann, U ;
O'Hara, B ;
Weisser, W .
TRENDS IN ECOLOGY & EVOLUTION, 1999, 14 (03) :88-90