Abstract
In Aplysia, long-term synaptic plasticity is induced by serotonin (5-HT) or neural activity and requires gene expression. Here, we demonstrate that ApLLP, a novel nucleolus protein, is critically involved in both long-term facilitation (LTF) and behavioral sensitization. Membrane depolarization induced ApLLP expression, which activated ApC/EBP expression through a direct binding to CRE. LTF was produced by a single pulse of 5-HT 30 min after the membrane depolarization. This LTF was blocked when either ApLLP or ApC/EBP were blocked by specific antibodies. In contrast, ApLLP overexpression induced LTF in response to a single 5-HT treatment. Simultaneously, a siphon noxious stimulus (SNS) to intact Aplysia induced ApLLP and ApC/EBP expression, and single tail shock 30 min after SNS transformed short-term sensitization to long-term sensitization of siphon withdrawal reflex. These results suggest that ApLLP is an activity-dependent transcriptional activator that switches short-term facilitation to long-term facilitation.
Publication types
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Comparative Study
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Research Support, Non-U.S. Gov't
MeSH terms
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Analysis of Variance
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Animals
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Aplysia / cytology*
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Avoidance Learning / physiology
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Behavior, Animal
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Blotting, Western / methods
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CCAAT-Enhancer-Binding Proteins
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Cells, Cultured
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Dose-Response Relationship, Drug
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Electric Stimulation / methods
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Electrophoretic Mobility Shift Assay / methods
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Gene Expression / drug effects
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Gene Expression / physiology*
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Gene Expression Regulation / physiology*
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Gene Expression Regulation / radiation effects
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Green Fluorescent Proteins / metabolism
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Immunohistochemistry / methods
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In Situ Hybridization / methods
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Long-Term Potentiation / drug effects
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Long-Term Potentiation / physiology*
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Long-Term Potentiation / radiation effects
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Microinjections / methods
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Models, Biological
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Neurons / classification
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Neurons / cytology
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Neurons / drug effects
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Neurons / metabolism*
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Potassium / pharmacology
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Promoter Regions, Genetic / physiology
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RNA, Messenger / metabolism
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Reverse Transcriptase Polymerase Chain Reaction / methods
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Serotonin / pharmacology
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Time Factors
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Transcription Factors / metabolism*
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Transcriptional Activation
Substances
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CCAAT-Enhancer-Binding Proteins
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RNA, Messenger
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Transcription Factors
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Green Fluorescent Proteins
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Serotonin
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Potassium