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Critical role of protein kinase G in the long-term balance between defensive and appetitive behaviors induced by aversive stimuli in Aplysia.
Chatterji, Ruma; Khoury, Sarah; Salas, Emanuel; Wainwright, Marcy L; Mozzachiodi, Riccardo.
Afiliação
  • Chatterji R; Department of Life Sciences, Texas A&M University - Corpus Christi, Corpus Christi, Texas 78412, USA; Department of Biological Sciences, University of Cincinnati, Cincinnati, Ohio 45221, USA.
  • Khoury S; Department of Life Sciences, Texas A&M University - Corpus Christi, Corpus Christi, Texas 78412, USA; Department of Cell Systems and Anatomy, University of Texas Health San Antonio, San Antonio, Texas 78229, USA.
  • Salas E; Department of Life Sciences, Texas A&M University - Corpus Christi, Corpus Christi, Texas 78412, USA.
  • Wainwright ML; Department of Life Sciences, Texas A&M University - Corpus Christi, Corpus Christi, Texas 78412, USA.
  • Mozzachiodi R; Department of Life Sciences, Texas A&M University - Corpus Christi, Corpus Christi, Texas 78412, USA. Electronic address: riccardo.mozzachiodi@tamucc.edu.
Behav Brain Res ; 383: 112504, 2020 04 06.
Article em En | MEDLINE | ID: mdl-31981653
This study investigated the signaling cascades involved in the long-term storage of the balance between defensive and appetitive behaviors observed when the mollusk Aplysia is exposed to aversive experience. In Aplysia, repeated trials of aversive stimuli induce concurrent sensitization of defensive withdrawal reflexes and suppression of feeding for at least 24 h. This long-term storage of the balance between withdrawal reflexes and feeding is sustained, at least in part, by increased excitability of the tail sensory neurons (SNs) controlling the withdrawal reflexes, and by decreased excitability of feeding decision-making neuron B51. Nitric oxide (NO) is required for the induction of both long-term sensitization and feeding suppression. At the cellular level, NO is also required for long-term decreased B51 excitability but not for long-term increased SN excitability. Here, we characterized the signaling cascade downstream of NO contributing to the long-term storage of the balance between withdrawal reflexes and feeding. We found protein kinase G (PKG) necessary for both long-term sensitization and feeding suppression, indicating that a NO-PKG cascade governs the long-term storage of the balance between defensive and appetitive responses in Aplysia. The role of PKG on feeding suppression was paralleled at the cellular level where a cGMP-PKG pathway was required for long-term decreased B51 excitability. In the defensive circuit, the cGMP-PKG pathway was not necessary for long-term increased SN excitability, suggesting that other cellular correlates of long-term sensitization might depend on the GMP-PKG cascade to sustain the behavioral change.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Comportamento Apetitivo / Células Receptoras Sensoriais / Comportamento Animal / Proteínas Quinases Dependentes de GMP Cíclico / GMP Cíclico / Comportamento Alimentar / Óxido Nítrico Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Comportamento Apetitivo / Células Receptoras Sensoriais / Comportamento Animal / Proteínas Quinases Dependentes de GMP Cíclico / GMP Cíclico / Comportamento Alimentar / Óxido Nítrico Idioma: En Ano de publicação: 2020 Tipo de documento: Article