Abstract
Several costs and benefits arise as a consequence of eusocialityand group-living. With increasing group size, spread of disease among nest-mates poses selective pressure on both individual immunity and group-level mechanisms of disease resistance (social immunity). Another factor known to influence colony-level expression of disease is intracolony genetic diversity, which in honeybees (Apismellifera) is a direct function of the number of mates of the queen. Colonies headed by queens with higher mating numbers have less variable infections of decreased intensity, though the underlying mechanisms remain unclear. By pathogen-challenging larvae in vitro, we decoupled larval immune response from mechanisms of social immunity.Our results showthat baseline immunity and degree of immune response do not vary with genetic diversity. However, intracolony variance in antimicrobial peptide production after pathogen challenge decreases with increasing genetic diversity. This reduction in variability of the larval immune response could drive the mitigation of disease observed in genetically diverse colonies.
Author supplied keywords
Cite
CITATION STYLE
Simone-Finstrom, M., Walz, M., & Tarpy, D. R. (2016). Genetic diversity confers colony-level benefits due to individual immunity. Biology Letters, 12(3). https://doi.org/10.1098/rsbl.2015.1007
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.