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Indirect genetic effects and kin recognition: estimating IGEs when interactions differ between kin and strangers
11] Department of Molecular Biology and Genetics, Aarhus University, Tjele, Denmark [2] Animal Breeding and Genomics Centre, Wageningen University, Wageningen, The Netherlands.
Indirect genetic effects (IGEs) differ between kin and strangers. Traditional models may yield suboptimal estimates, but a reduced model can estimate kin-specific IGEs for better selection in structured populations.
Area of Science:
- Evolutionary biology
- Quantitative genetics
- Behavioral ecology
Background:
- Individuals' traits are influenced by genes of social partners (indirect genetic effects, IGEs).
- Traditional IGE models assume uniform interactions, ignoring kin-specific behaviors predicted by kin-selection theory.
- Divergent behaviors towards kin versus strangers can bias traditional IGE estimates.
Purpose of the Study:
- To investigate the identifiability of genetic parameters for IGEs when they differ between kin and strangers in group-structured populations.
- To develop models for estimating these kin-dependent IGEs.
- To assess the consequences of using traditional models in such scenarios.
Main Methods:
- Extended definitions of total breeding value and heritable variance to account for relatedness-dependent IGEs.
- Demonstrated non-identifiability of full genetic parameters when IGEs vary with relatedness.
- Developed a reduced model for estimating kin, non-kin, and overall IGEs.
Main Results:
- The full set of genetic parameters for indirect genetic effects is not statistically identifiable when interactions differ between kin and strangers.
- A reduced model provides estimates of total heritable effects on kin, non-kin, and all social partners.
- The reduced model also estimates total heritable variance relevant for response to selection.
Conclusions:
- Traditional IGE models are inadequate when individuals interact differently with kin and strangers.
- A reduced model offers a practical approach to estimate key genetic parameters in kin-structured populations.
- Understanding group structures is crucial for accurately estimating kin-dependent IGEs and optimizing selection.
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