Search PubMed⌕ Search

PubMed · 8501924

A Darwinian function for the orbital cortex.

Abstract

The relationship between evolutionary theory and human psychobiology suffers from a lack of bridging theory concerning Darwinian brain functions. This problem is addressed within the context of the theory that the human brain calculates Darwinian strategies for the long-term organization of behavior. This theory of brain function is tested using the literature of abnormal psychology, particularly phenotypes that appear to lack strategic evaluation of fitness outcomes. It is argued that sociopaths lack such "fitness-calculation", and therefore their behavior leads to reduced fitness, notwithstanding the absence of psychiatric pathology. Accidental, surgical, and congenital lesions to the orbital cortex of the frontal lobes can produce similar behavior, suggesting that the orbital cortex is the seat of strategic fitness-calculation. This bridge between Darwinian theory and brain function opens the way for formal theories of human behavior couched in terms of imminent Darwinian calculation.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M R Rose, C Moore. 1993-03-07. A Darwinian function for the orbital cortex.. https://doi.org/10.1006/jtbi.1993.1044

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

The inversion In(2L)t impacts complex, environmentally sensitive behaviors in Drosophila melanogaster.

Genetic variation in behavioral traits allows organisms to respond and adapt to environmental challenges. Genetic variation in behavior is often affected by many genes and thus has a complex genetic basis. Inversions, the reorientation of genes along the chromosome, tightly link genetic variants together because they suppress recombination. Therefore, inversions are believed to have a major impact on phenotypic variation because they combine the effects of multiple genes, which can pleiotropically alter multiple aspects of behavior. This study investigates how the inversion In(2L)t, found in Drosophila melanogaster populations around the world, impacts different aspects of behavior in an environment-sensitive manner. We test the activity, foraging, and startle-induced behavior of flies with different In(2L)t genotypes across sex and temperatures. We observe that Drosophila homozygous for In(2L)t sleep less frequently, spend more time away from a food source, and have a longer duration of startle response. Additionally, the impacts of In(2L)t on aspects of behavior can be sex-specific and are largely consistent across temperatures. Taken together, our research demonstrates that inversions can regulate aspects of behavior, and suggests hypotheses explaining the distribution of In(2L)t across space and time.

Behavior↗