
Abstract Jellyfish nerve nets provide insight into the origins of nervous systems, as both their taxonomic position and their evolutionary age imply that jellyfish resemble some of the earliest neuron-bearing, actively-swimming animals. Here we develop the first neuronal network model for the nerve nets of jellyfish. Specifically, we focus on the moon jelly Aurelia aurita and the control of its energy-eZcient swimming motion. The proposed single neuron model disentangles the contributions of different currents to a spike. The network model identifies factors ensuring non-pathological activity and suggests an optimization for the transmission of signals. After modeling the jellyfish’s muscle system and its bell in a hydrodynamic environment, we explore the swimming elicited by neural activity. We find that different delays between nerve net activations lead to well-controlled, differently directed movements. Our model bridges the scales from single neurons to behavior, allowing for a comprehensive understanding of jellyfish neural control.
Scyphozoa, QH301-705.5, Science, multi-scale modeling, scyphozoa, Animals, Biology (General), Swimming, Neurons, Computational Neuroscience, Motor control, movement, navigation, Q, R, jellyfish, Aurelia aurita, nerve nets, Models, Theoretical, Quantitative Biology - Neurons and Cognition, FOS: Biological sciences, Synapses, Hydrodynamics, info:eu-repo/classification/ddc/600, Medicine, Neurons and Cognition (q-bio.NC), Nerve Net, Locomotion, computational neuroscience, Computational and Systems Biology
Scyphozoa, QH301-705.5, Science, multi-scale modeling, scyphozoa, Animals, Biology (General), Swimming, Neurons, Computational Neuroscience, Motor control, movement, navigation, Q, R, jellyfish, Aurelia aurita, nerve nets, Models, Theoretical, Quantitative Biology - Neurons and Cognition, FOS: Biological sciences, Synapses, Hydrodynamics, info:eu-repo/classification/ddc/600, Medicine, Neurons and Cognition (q-bio.NC), Nerve Net, Locomotion, computational neuroscience, Computational and Systems Biology
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| impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Top 10% |
