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  • Iino, Yuichi  (2)
  • Linguistics  (2)
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  • 1
    Online Resource
    Online Resource
    Society for Neuroscience ; 2017
    In:  The Journal of Neuroscience Vol. 37, No. 8 ( 2017-02-22), p. 2097-2111
    In: The Journal of Neuroscience, Society for Neuroscience, Vol. 37, No. 8 ( 2017-02-22), p. 2097-2111
    Abstract: Animals show various behaviors in response to environmental chemicals. These behaviors are often plastic depending on previous experiences. Caenorhabditis elegans , which has highly developed chemosensory system with a limited number of sensory neurons, is an ideal model for analyzing the role of each neuron in innate and learned behaviors. Here, we report a new type of memory-dependent behavioral plasticity in Na + chemotaxis generated by the left member of bilateral gustatory neuron pair ASE (ASEL neuron). When worms were cultivated in the presence of Na + , they showed positive chemotaxis toward Na + , but when cultivated under Na + -free conditions, they showed no preference regarding Na + concentration. Both channelrhodopsin-2 (ChR2) activation with blue light and up-steps of Na + concentration activated ASEL only after cultivation with Na + , as judged by increase in intracellular Ca 2+ . Under cultivation conditions with Na + , photoactivation of ASEL caused activation of its downstream interneurons AIY and AIA, which stimulate forward locomotion, and inhibition of its downstream interneuron AIB, which inhibits the turning/reversal behavior, and overall drove worms toward higher Na + concentrations. We also found that the Gq signaling pathway and the neurotransmitter glutamate are both involved in the behavioral response generated by ASEL. SIGNIFICANCE STATEMENT Animals have acquired various types of behavioral plasticity during their long evolutionary history. Caenorhabditis elegans prefers odors associated with food, but plastically changes its behavioral response according to previous experience. Here, we report a new type of behavioral response generated by a single gustatory sensory neuron, the ASE-left (ASEL) neuron. ASEL did not respond to photostimulation or upsteps of Na + concentration when worms were cultivated in Na + -free conditions; however, when worms were cultivated with Na + , ASEL responded and inhibited AIB to avoid turning and stimulated AIY and AIA to promote forward locomotion, which collectively drove worms toward higher Na + concentrations. Glutamate and the Gq signaling pathway are essential for driving worms toward higher Na + concentrations.
    Type of Medium: Online Resource
    ISSN: 0270-6474 , 1529-2401
    Language: English
    Publisher: Society for Neuroscience
    Publication Date: 2017
    detail.hit.zdb_id: 1475274-8
    SSG: 12
    Location Call Number Limitation Availability
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  • 2
    Online Resource
    Online Resource
    Society for Neuroscience ; 2014
    In:  The Journal of Neuroscience Vol. 34, No. 47 ( 2014-11-19), p. 15631-15637
    In: The Journal of Neuroscience, Society for Neuroscience, Vol. 34, No. 47 ( 2014-11-19), p. 15631-15637
    Abstract: The nematode Caenorhabditis elegans changes its chemotaxis to NaCl depending on previous experience. At the behavioral level, this chemotactic plasticity is generated by reversing the elementary behaviors for chemotaxis, klinotaxis, and klinokinesis. Here, we report that bidirectional klinotaxis is achieved by the proper use of at least two different neural subcircuits. We simulated an NaCl concentration change by activating an NaCl-sensitive chemosensory neuron in phase with head swing and successfully induced klinotaxis-like curving. The curving direction reversed depending on preconditioning, which was consistent with klinotaxis plasticity under a real concentration gradient. Cell-specific ablation and activation of downstream interneurons revealed that ASER-evoked curving toward lower concentration was mediated by AIY interneurons, whereas curving to the opposite direction was not. These results suggest that the experience-dependent bidirectionality of klinotaxis is generated by a switch between different neural subcircuits downstream of the chemosensory neuron.
    Type of Medium: Online Resource
    ISSN: 0270-6474 , 1529-2401
    Language: English
    Publisher: Society for Neuroscience
    Publication Date: 2014
    detail.hit.zdb_id: 1475274-8
    SSG: 12
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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