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Division of Labor for Defensive Retaliation and Preemption by the Peripheral and Central Nervous Systems in the Nudibranch Berghia

Overview
Journal Curr Biol
Publisher Cell Press
Specialty Biology
Date 2024 May 8
PMID 38718797
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Abstract

Relatively little is known about how peripheral nervous systems (PNSs) contribute to the patterning of behavior in which their role transcends the simple execution of central motor commands or mediation of reflexes. We sought to draw inferences to this end in the aeolid nudibranch Berghia stephanieae, which generates a rapid, dramatic defense behavior, "bristling." This behavior involves the coordinated movement of cerata, dozens of venomous appendages emerging from the animal's mantle. Our investigations revealed that bristling constitutes a stereotyped but non-reflexive two-stage behavior: an initial adduction of proximate cerata to sting the offending stimulus (stage 1) followed by a coordinated radial extension of remaining cerata to create a pincushion-like defensive screen around the animal (stage 2). In decerebrated specimens, stage 1 bristling was preserved, while stage 2 bristling was replaced by slower, uncoordinated ceratal movements. We conclude from these observations that, first, the animal's PNS and central nervous system (CNS) mediate stages 1 and 2 of bristling, respectively; second, the behavior propagates through the body utilizing both peripheral- and central-origin nerve networks that support different signaling kinetics; and third, the former network inhibits the latter in the body region being stimulated. These findings extend our understanding of the PNS' computational capacity and provide insight into a neuroethological scheme in which the CNS and PNS both independently and interactively pattern different aspects of non-reflexive behavior.

References
1.
Leonard J, Edstrom J . Parallel processing in an identified neural circuit: the Aplysia californica gill-withdrawal response model system. Biol Rev Camb Philos Soc. 2004; 79(1):1-59. DOI: 10.1017/s1464793103006183. View

2.
Yamamoto W, Yuste R . Peptide-driven control of somersaulting in Hydra vulgaris. Curr Biol. 2023; 33(10):1893-1905.e4. DOI: 10.1016/j.cub.2023.03.047. View

3.
Sakurai A, Katz P . Phylogenetic and individual variation in gastropod central pattern generators. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2015; 201(9):829-39. DOI: 10.1007/s00359-015-1007-6. View

4.
Mackie G . Central neural circuitry in the jellyfish Aglantha: a model 'simple nervous system'. Neurosignals. 2004; 13(1-2):5-19. DOI: 10.1159/000076155. View

5.
Kovac M, Davis W . Neural mechanism underlying behavioral choice in Pleurobranchaea. J Neurophysiol. 1980; 43(2):469-87. DOI: 10.1152/jn.1980.43.2.469. View