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Edmonds, D.

Publications and source records attributed to Edmonds, D..

2 recordsLinked to original sources

Social cognitive regions of human association cortex are selectively connected to the amygdala

Reasoning about someones thoughts and intentions - i.e., forming a theory of mind - is an important aspect of social cognition that relies on association areas of the brain that have expanded disproportionately in the human lineage. We recently showed that these association zones comprise parallel distributed networks that, despite occupying adjacent and interdigitated regions, serve dissociable functions. One network is selectively recruited by theory of mind processes. What circuit properties differentiate these parallel networks? Here, we show that social cognitive association areas are intrinsically and selectively connected to regions of the anterior medial temporal lobe that are implicated in emotional learning and social behaviors, including the amygdala at or near the basolateral complex and medial nucleus. The results suggest that social cognitive functions emerge through coordinated activity between amygdala circuits and a distributed association network, and indicate the medial nucleus may play an important role in social cognition in humans.

neuroscience↗

Fortune may favor the flexible: Environment-dependent behavioral shifts in invasive coqui frogs

Biological invasions are a major driver of global biodiversity loss, impacting endemic species, ecosystems, and economies. While the influence of life history traits on invasive success is well-established, the role of behavior in the invasive potential of animals is less studied. The common coqui frog, Eleutherodactylus coqui, is a highly successful invader in Hawaii. We build on previous research characterizing changes in physiology and morphology to explore behavioral variation across the invasive range of coqui in Hawaii. We hypothesized that behavioral traits contributing to invasion expansion would be reflected in behavioral differences at the invasive center versus invasive edge. To investigate whether differences in the field represent local adaptation or behavioral plasticity, we additionally evaluated behavior following acclimation to a shared laboratory environment. While we identified only subtle behavioral variation among populations in the field, we found that individuals from all populations became less bold, active, and exploratory in the laboratory, converging on a similar behavioral phenotype. Alongside previous work, our results suggest that coqui adjust their behavior to local environmental conditions across their invasive range, and that behavioral flexibility may contribute to invasive success.

animal behavior and cognition↗