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A computational neural model that incorporates both intrinsic dynamics and sensory feedback in the Aplysia feeding network

Yanjun Li; Victoria A. Webster-Wood; Jeffrey P. Gill; Gregory P. Sutton; Hillel J. Chiel; Roger D. Quinn
Biological Cybernetics · Vol. 118, Issue 3-4 · pp. 187-213 · 2024

Abstract

Studying the nervous system underlying animal motor control can shed light on how animals can adapt flexibly to a changing environment. We focus on the neural basis of feeding control in Aplysia californica . Using the Synthetic Nervous System framework, we developed a model of Aplysia feeding neural circuitry that balances neurophysiological plausibility and computational complexity. The circuitry includes neurons, synapses, and feedback pathways identified in existing literature. We organized the neurons into three layers and five subnetworks according to their functional roles. Simulation results demonstrate that the circuitry model can capture the intrinsic dynamics at neuronal and network levels. When combined with a simplified peripheral biomechanical model, it is sufficient to mediate three animal-like feeding behaviors (biting, swallowing, and rejection). The kinematic, dynamic, and neural responses of the model also share similar features with animal data. These results emphasize the functional roles of sensory feedback during feeding.

Bibliographic Information

JournalBiological Cybernetics
PublisherSpringer
Publication Date2024-05-20
Publication Year2024
Volume118
Issue3-4
Pages187-213
Document TypeJournal Article
eISSN1432-0770
DOI10.1007/s00422-024-00991-2

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NARA Access Coverage1961-01-01~Current
Journal Homepagehttps://www.springer.com/journal/422
Publisher PageOpen Publisher Page
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