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Barbasch, T.

Publications and source records attributed to Barbasch, T..

2 recordsLinked to original sources

Cannibalism as a mechanism to offset reproductive costs in three-spined sticklebacks

Parents often go to great lengths to promote the survival of their offspring, yet in many species parents may abandon or cannibalize offspring under their care. Using three-spined sticklebacks, where males are the sole providers of energetically costly parental care, we investigated the factors driving patterns of cannibalism in two natural populations in the field. Cannibalism was prevalent in both populations: more than 70% of parenting males contained embryos in their stomach. Neither standard length nor body condition predicted the number of embryos eaten, suggesting that males are not cannibalizing based on energetic need alone. However, males cannibalized significantly more embryos from large compared to small broods, suggesting that greater access to embryos is driving high levels of cannibalism. Using microsatellites to determine parentage, we investigated whether males cannibalize embryos fertilized by other males (heterocannibalism) to mitigate the costs of parental care. In both populations males engaged in both filial and heterocannibalism, but the two populations significantly differed in the relative amount of filial versus heterocannibalism, suggesting that males in these two populations face different reproductive costs. Combined, results from this study help disentangle the complex factors contributing to cannibalism, providing insight into how animals balance reproductive costs and benefits.

ecology↗

Building neuroanatomical resources for three-spined sticklebacks: Brain areas important for social behavior

IntroductionThree-spined stickleback fish are famous for their diversity and charismatic social behavior. However, there are few neuroanatomical resources for studying the neural and brain mechanisms underlying their fascinating behavior. Methods and ResultsWe identify 11 brain areas important for social behavior by referencing brain atlases for six other teleost fishes. Brain regions were identified via neuroanatomical landmarks and we characterized the presence / absence of tyrosine hydroxylase (TH), a key gene product of the dopaminergic system, in those regions. Comparing the neuroanatomical location of these regions in the stickleback brain and the expression of TH therein to that of other fish species highlights similarities and differences and the need for a brain atlas specific to sticklebacks. This resource serves as a map of the location of regions important for social behavior in the stickleback brain. ConclusionThis resource will help guide future studies connecting gene function to social behavior through the brain and will enable future work to understand the evolution of neural mechanisms that contribute to the diversity of social behavior in this emerging model organism.

neuroscience↗