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Biology subjects

Woodruff, M. J.

Publications and source records attributed to Woodruff, M. J..

2 recordsLinked to original sources

Phylotranscriptomics reveals convergent behavioral evolution associated with shared and unique mechanisms in cavity-nesting songbirds

Uncovering the genomic bases of phenotypic adaptation is a major goal in biology, but this has been hard to achieve for complex behavioral traits. Here, we leverage the repeated, independent evolution of obligate cavity-nesting in birds to test the hypothesis that pressure to compete for a limited breeding resource has facilitated convergent evolution in behavior, hormones, and gene expression. We used an integrative approach, combining aggression assays in the field, testosterone measures, and transcriptome-wide analyses of the brain in wild-captured females and males. Our experimental design compared species pairs across five avian families, each including one obligate cavity-nesting species and a related species with a more flexible nest strategy. We find behavioral convergence, with higher levels of territorial aggression in obligate cavity-nesters, particularly among females. Across species, levels of testosterone in circulation were not associated with nest strategy, nor aggression. Phylogenetic analyses of individual genes and co-regulated gene networks revealed more shared patterns of brain gene expression than expected by drift, but the scope of convergent gene expression evolution was limited to a small percent of the genome. When comparing our results to other studies that did not use phylogenetic methods, we suggest that accounting for shared evolutionary history may reduce the number of genes inferred as convergently evolving. Altogether, we find that behavioral convergence in response to shared ecological pressures is associated with largely independent gene expression evolution across different avian families, punctuated by a narrow set of convergently evolving genes.

evolutionary biology↗

How altricial birds respond to a heat challenge: organismal perspectives on coping with a future climate scenario

O_LIThe ability to cope with heatwaves is likely to influence species success amidst climate change. However, relatively little is known about heat-coping mechanisms in endotherms, which are increasingly pushed to their thermoregulatory limits. We experimentally elevated nest temperatures by 4.5{degrees}C for 4 hours, focused on 12-day-old tree swallows (Tachycineta bicolor). C_LIO_LINestlings exposed to sub-lethal heat moved towards cooler air at the nest box entrance, they panted more, and they weighed less than controls, suggesting panting-induced water loss. They also exhibited higher heat shock protein (HSP) gene expression in the blood, alongside widespread transcriptional differences related to antioxidant defenses, inflammation, and apoptosis. Nestlings exposed to milder heat were more likely to recruit into the breeding population, suggesting these coping mechanisms may be quite effective. C_LIO_LIWe also tested hypotheses on the drivers of variation in HSP gene expression, which was especially marked after heat-exposure. Even siblings in the same nest differed in HSP gene expression by over 14-fold. Heat-induced HSP levels were unrelated to individual body mass, or among-nest differences in brood size, temperature, and behavioral thermoregulation. However, nest ID explained a significant amount of HSP variation, which was larger between nests than within nests, pointing to genetic or early developmental factors C_LIO_LIThese results fill key knowledge gaps on thermoregulatory mechanisms in birds. We document ample individual variation upon which selection may act in the context of climate change and we underscore the need to understand intra-specific variation, an oft-ignored element that nevertheless shapes what is possible for future adaptation or acclimation to heat. C_LI

physiology↗