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Indirect Genetic Effects: A Cross-disciplinary Perspective on Empirical Studies

Overview
Journal J Hered
Specialty Genetics
Date 2021 Oct 13
PMID 34643239
Citations 8
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Abstract

Indirect genetic effects (IGE) occur when an individual's phenotype is influenced by genetic variation in conspecifics. Opportunities for IGE are ubiquitous, and, when present, IGE have profound implications for behavioral, evolutionary, agricultural, and biomedical genetics. Despite their importance, the empirical study of IGE lags behind the development of theory. In large part, this lag can be attributed to the fact that measuring IGE, and deconvoluting them from the direct genetic effects of an individual's own genotype, is subject to many potential pitfalls. In this Perspective, we describe current challenges that empiricists across all disciplines will encounter in measuring and understanding IGE. Using ideas and examples spanning evolutionary, agricultural, and biomedical genetics, we also describe potential solutions to these challenges, focusing on opportunities provided by recent advances in genomic, monitoring, and phenotyping technologies. We hope that this cross-disciplinary assessment will advance the goal of understanding the pervasive effects of conspecific interactions in biology.

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References
1.
Agrawal A, Heath A, Grant J, Pergadia M, Statham D, Bucholz K . Assortative mating for cigarette smoking and for alcohol consumption in female Australian twins and their spouses. Behav Genet. 2006; 36(4):553-66. DOI: 10.1007/s10519-006-9081-8. View

2.
Ellen E, Rodenburg T, Albers G, Bolhuis J, Camerlink I, Duijvesteijn N . The prospects of selection for social genetic effects to improve welfare and productivity in livestock. Front Genet. 2014; 5:377. PMC: 4227523. DOI: 10.3389/fgene.2014.00377. View

3.
Tardieu F, Cabrera-Bosquet L, Pridmore T, Bennett M . Plant Phenomics, From Sensors to Knowledge. Curr Biol. 2017; 27(15):R770-R783. DOI: 10.1016/j.cub.2017.05.055. View

4.
Moiron M, Araya-Ajoy Y, Teplitsky C, Bouwhuis S, Charmantier A . Understanding the Social Dynamics of Breeding Phenology: Indirect Genetic Effects and Assortative Mating in a Long-Distance Migrant. Am Nat. 2020; 196(5):566-576. DOI: 10.1086/711045. View

5.
Rahaman M, Chen D, Gillani Z, Klukas C, Chen M . Advanced phenotyping and phenotype data analysis for the study of plant growth and development. Front Plant Sci. 2015; 6:619. PMC: 4530591. DOI: 10.3389/fpls.2015.00619. View