| Literature DB >> 27503506 |
Carlos Camacho1, David Canal2, Jaime Potti2.
Abstract
BACKGROUND: Habitat selection may have profound evolutionary consequences, but they strongly depend on the underlying preference mechanism, including genetically-determined, natal habitat and phenotype-dependent preferences. It is known that different mechanisms may operate at the same time, yet their relative contribution to population differentiation remains largely unexplored empirically mainly because of the difficulty of finding suitable study systems. Here, we investigate the role of early experience and genetic background in determining the outcome of settlement by pied flycatchers (Ficedula hypoleuca) breeding in two habitat patches between which dispersal and subsequent reproductive performance is influenced by phenotype (body size). For this, we conducted a cross-fostering experiment in a two-patch system: an oakwood and a conifer plantation separated by only 1 km.Entities:
Keywords: Cross-fostering; Ficedula hypoleuca; Local adaptation; Matching habitat choice; Natal habitat preference induction; Nonrandom dispersal; Pied flycatcher; Sympatric speciation
Mesh:
Year: 2016 PMID: 27503506 PMCID: PMC4976508 DOI: 10.1186/s12862-016-0724-y
Source DB: PubMed Journal: BMC Evol Biol ISSN: 1471-2148 Impact factor: 3.260
Fig. 1Proportions of pied flycatcher nestlings raised by foster parents that returned to breed in the same patch where they fledged (open area) or in the alternate habitat patch (shaded area) after being cross-fostered within (control group) or between (experimental group) patches. Figures inside bars are the total number of recruits (both sexes combined)
Results of the GLMM (binomial error distribution and logit link function) analyzing the effects of the experimental treatment (cross-fostering within and between habitats), life stage of cross-fostering (egg and nestling), sex, proximity to the adjacent habitat patch, breeding date, rearing patch, body size (tarsus length) and the interaction between rearing patch and body size on birds’ propensity to return to the habitat where they had been raised (0 = return to breed in the non-rearing patch; 1 = return to breed in the rearing patch)
| Estimate | SE |
|
| |
|---|---|---|---|---|
| Intercept | 0.963 | 0.218 | 4. 414 | <0.001 |
| Experimental treatment | 0.243 | 0.442 | 0.550 | 0.582 |
| Life stage of cross-fostering | 0.214 | 0.456 | 0.470 | 0.638 |
| Sex | −0.602 | 0.447 | −1.345 | 0.179 |
| Breeding date | 0.012 | 0.055 | 0.228 | 0.819 |
| Proximity to adjacent patch | 0.000 | 0.001 | 1.083 | 0.279 |
| Tarsus length | 0.129 | 0.453 | 0.286 | 0.775 |
| Rearing patch | −0.036 | 0.437 | −0.083 | 0.934 |
| Tarsus length x Rearing patch | −0.893 | 1.006 | −0.888 | 0.375 |
Number of returning birds = 105; Number of years = 8; Number of nests = 83. Estimates and P-values of non-significant (removed) variables are from when they were added alone to a null model containing only the random effects