Causes and consequences of animal dispersal strategies: relating individual behaviour to spatial dynamics

被引:1441
作者
Bowler, DE [1 ]
Benton, TG [1 ]
机构
[1] Univ Aberdeen, Sch Biol Sci, Aberdeen AB24 2TZ, Scotland
关键词
condition-dependent dispersal; spatial scale; population dynamics; phenotypic plasticity; model assumptions;
D O I
10.1017/S1464793104006645
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Knowledge of the ecological and evolutionary causes of dispersal can be crucial in understanding the behaviour of spatially structured populations, and predicting how species respond to environmental change. Despite the focus of much theoretical research, simplistic assumptions regarding the dispersal process are still made. Dispersal is usually regarded as an unconditional process although in many cases fitness gains of dispersal are dependent on environmental factors and individual state. Condition-dependent dispersal strategies will often be superior to unconditional, fixed strategies. In addition, dispersal is often collapsed into a single parameter, despite it being a process composed of three interdependent stages: emigration, inter-patch movement and immigration, each of which may display different condition dependencies. Empirical studies have investigated correlates of these stages, emigration in particular, providing evidence for the prevalence of conditional dispersal strategies. Ill-defined use of the term 'dispersal', for movement across many different spatial scales, further hinders making general conclusions and relating movement correlates to consequences at the population level. Logistical difficulties preclude a detailed study of dispersal for many species, however incorporating unrealistic dispersal assumptions in spatial population models may yield inaccurate and costly predictions. Further studies are necessary to explore the importance of incorporating specific condition-dependent dispersal strategies for evolutionary and population dynamic predictions.
引用
收藏
页码:205 / 225
页数:21
相关论文
共 235 条
[1]   Demographic consequences of movements in subdivided root vole populations [J].
Aars, J ;
Johannesen, E ;
Ims, RA .
OIKOS, 1999, 85 (02) :204-216
[2]   Population dynamic and genetic consequences of spatial density-dependent dispersal in patchy populations [J].
Aars, J ;
Ims, RA .
AMERICAN NATURALIST, 2000, 155 (02) :252-265
[3]   Female-biased density-dependent dispersal of a tephritid fly in a fragmented habitat and its implications for population regulation [J].
Albrectsen, B ;
Nachman, G .
OIKOS, 2001, 94 (02) :263-272
[4]   Phenotypic correlates and consequences of dispersal in a metapopulation of house sparrows Passer domesticus [J].
Altwegg, R ;
Ringsby, TH ;
Sæther, BE .
JOURNAL OF ANIMAL ECOLOGY, 2000, 69 (05) :762-770
[5]   Interactions between local dynamics and dispersal: Insights from single species models [J].
Amarasekare, P .
THEORETICAL POPULATION BIOLOGY, 1998, 53 (01) :44-59
[6]   The role of density-dependent dispersal in source-sink dynamics [J].
Amarasekare, P .
JOURNAL OF THEORETICAL BIOLOGY, 2004, 226 (02) :159-168
[7]  
Andreassen HP, 2001, ECOLOGY, V82, P2911, DOI 10.1890/0012-9658(2001)082[2911:DIPVPR]2.0.CO
[8]  
2
[9]   SIZE-BIASED DISPERSAL PRIOR TO BREEDING IN A DAMSELFLY [J].
ANHOLT, BR .
OECOLOGIA, 1990, 83 (03) :385-387
[10]   Kin selection in cooperative alliances of carrion crows [J].
Baglione, V ;
Canestrari, D ;
Marcos, JM ;
Ekman, J .
SCIENCE, 2003, 300 (5627) :1947-1949