Keyword search (4,164 papers available)

"Conditioning" Keyword-tagged Publications:

Title Authors PubMed ID
1 Activating Group II Metabotropic Glutamate Receptors in the Basolateral Amygdala Inhibits Increases in Reward Seeking Triggered by Discriminative Stimuli in Rats LeCocq MR; Mainville-Berthiaume A; Laplante I; Samaha AN; 40341317
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2 Palatability attributed to alcohol and alcohol-paired flavors Valyear MD; Eustachon NM; Britt JP; 38430645
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3 Augmenting glutamatergic, but not dopaminergic, activity in the nucleus accumbens shell disrupts responding to a discrete alcohol cue in an alcohol context Valyear MD; Brown A; Deyab G; Villaruel FR; Lahlou S; Caporicci-Dinucci N; Chaudhri N; 38185906
PSYCHOLOGY
4 Learning from opioid withdrawal: Effects on striatal dopamine (Commentary on Ahn et al., 2023) Leyton M; Nikolic M; 38129315
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5 Does phasic dopamine release cause policy updates? Carter F; Cossette MP; Trujillo-Pisanty I; Pallikaras V; Breton YA; Conover K; Caplan J; Solis P; Voisard J; Yaksich A; Shizgal P; 38039083
PSYCHOLOGY
6 What is Learned Determines How Pavlovian Conditioned Fear is Consolidated in the Brain Leake J; Leidl DM; Lay BPP; Fam JP; Giles MC; Qureshi OA; Westbrook RF; Holmes NM; 37963767
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7 NMDA Receptors in the Basolateral Amygdala Complex Are Engaged for Pavlovian Fear Conditioning When an Animal's Predictions about Danger Are in Error Tuval Keidar 37607821
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8 Sub-hourly measurement datasets from 6 real buildings: Energy use and indoor climate Sartori I; Walnum HT; Skeie KS; Georges L; Knudsen MD; Bacher P; Candanedo J; Sigounis AM; Prakash AK; Pritoni M; Granderson J; Yang S; Wan MP; 37153123
ENCS
9 Danger Changes the Way the Brain Consolidates Neutral Information; and Does So by Interacting with Processes Involved in the Encoding of That Information Omar A Qureshi 36927572
PSYCHOLOGY
10 A new circuit underlying the renewal of appetitive Pavlovian responses: Commentary on Brown and Chaudhri (2022) Valyear MD; Britt JP; 36700576
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11 Optogenetic stimulation of infralimbic cortex projections to the paraventricular thalamus attenuates context-induced renewal Brown A; Chaudhri N; 36373226
PSYCHOLOGY
12 Learning processes in relapse to alcohol use: lessons from animal models Valyear MD; LeCocq MR; Brown A; Villaruel FR; Segal D; Chaudhri N; 36264342
PSYCHOLOGY
13 Alarm cues and alarmed conspecifics: neural activity during social learning from different cues in Trinidadian guppies Raina Fan 36043284
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14 Understanding Associative Learning Through Higher-Order Conditioning Gostolupce D; Lay BPP; Maes EJP; Iordanova MD; 35517574
PSYCHOLOGY
15 Prediction error determines whether NMDA receptors in the basolateral amygdala complex are involved in Pavlovian fear conditioning Williams-Spooner MJ; Delaney AJ; Westbrook RF; Holmes NM; 35410880
PSYCHOLOGY
16 Supplementary dataset of context-dependent conditioned responding to an alcohol-predictive cue in female and male rats Segal D; Valyear MD; Chaudhri N; 35330738
PSYCHOLOGY
17 Anterior cingulate neurons signal neutral cue pairings during sensory preconditioning Hart EE; Gardner MPH; Schoenbaum G; 34936884
PSYCHOLOGY
18 Corticostriatal suppression of appetitive Pavlovian conditioned responding Villaruel FR; Martins M; Chaudhri N; 34880119
PSYCHOLOGY
19 The Role of Context Conditioning in the Reinstatement of Responding to an Alcohol-Predictive Conditioned Stimulus LeCocq MR; Sun S; Chaudhri N; 34852244
PSYCHOLOGY
20 The role of context on responding to an alcohol-predictive cue in female and male rats Segal D; Valyear MD; Chaudhri N; 34742865
PSYCHOLOGY
21 Cocaine cue-induced mesocorticolimbic activation in cocaine users: Effects of personality traits, lifetime drug use, and acute stimulant ingestion D' Amour-Horvat V; Cox SML; Dagher A; Kolivakis T; Jaworska N; Leyton M; 34463411
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22 Mechanisms of higher-order learning in the amygdala Gostolupce D; Iordanova MD; Lay BPP; 34197867
PSYCHOLOGY
23 Cue-alcohol associative learning in female rats. Cofresí RU, Monfils MH, Chaudhri N, Gonzales RA, Lee HJ 31002878
PSYCHOLOGY
24 A self-initiated cue-reward learning procedure for neural recording in rodents. Reverte I, Volz S, Alhazmi FH, Kang M, Kaufman K, Chan S, Jou C, Iordanova MD, Esber GR 32135212
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25 Comparing ABA, AAB, and ABC Renewal of Appetitive Pavlovian Conditioned Responding in Alcohol- and Sucrose-Trained Male Rats. Khoo SY, Sciascia JM, Brown A, Chaudhri N 32116588
PSYCHOLOGY
26 Context controls the timing of responses to an alcohol-predictive conditioned stimulus. Valyear MD, Chaudhri N 32017964
PSYCHOLOGY
27 Differential role of oxytocin and vasopressin in the conditioned ejaculatory preference of the male rat. Ménard S, Gelez H, Girard-Bériault F, Coria-Avila G, Pfaus JG 31194998
PSYCHOLOGY
28 The Role of Sleep in Learning Placebo Effects. Chouchou F, Dang-Vu TT, Rainville P, Lavigne G 30146053
PERFORM

 

Title:Prediction error determines whether NMDA receptors in the basolateral amygdala complex are involved in Pavlovian fear conditioning
Authors:Williams-Spooner MJDelaney AJWestbrook RFHolmes NM
Link:https://pubmed.ncbi.nlm.nih.gov/35410880/
DOI:10.1523/JNEUROSCI.2156-21.2022
Publication:The Journal of neuroscience : the official journal of the Society for Neuroscience
Keywords:NMDA receptorbasolateral amygdalafear conditioninghigher-order conditioningprediction errorrat
PMID:35410880 Category: Date Added:2022-04-12
Dept Affiliation: PSYCHOLOGY
1 School of Psychology, University of New South Wales, Sydney, NSW, Australia.
2 Center for Studies in Behavioral Neurobiology, Department of Psychology, Concordia University, Montreal, QC, Canada.
3 School of Biomedical Sciences, Charles Sturt University, Orange, NSW, Australia.

Description:

It is widely accepted that activation of N-methyl-D-aspartate receptors (NMDAR) is necessary for the formation of fear memories in the basolateral amygdala complex (BLA). This acceptance is based on findings that blockade of NMDAR in the BLA disrupts Pavlovian fear conditioning in rodents when initially innocuous stimuli are paired with aversive and unexpected events (surprising foot shock). The present study challenges this acceptance by showing that the involvement of NMDAR in Pavlovian fear conditioning is determined by prediction errors in relation to aversive events. In the initial experiments, male rats received a BLA infusion of the NMDAR antagonist, D-AP5 and were then exposed to pairings of a novel target stimulus and foot shock. This infusion disrupted acquisition of fear to the target when the shock was surprising (Experiments 1a, 1b, 2a, 2b, 3a, 3b); but spared fear to the target when the shock was expected based on the context, time and other stimuli that were present (Experiments 1a, 1b). Under the latter circumstances, fear to the target required activation of calcium permeable AMPAR (CP-AMPA; Experiments 4a, 4b, 4c); which, using electrophysiology, were shown to regulate the activity of interneurons in the BLA (Experiment 5). Thus, NMDAR-activation is not required for fear conditioning when danger occurs as expected given the context, time and stimuli present; but is required for fear conditioning when danger occurs unexpectedly. These findings are related to current theories of NMDAR function and ways that prediction errors might influence the substrates of fear memory formation in the BLA.Significance StatementIt is widely accepted that N-methyl-D-aspartate receptors (NMDAR) in the basolateral amygdala complex (BLA) are activated by pairings of a conditioned stimulus (CS) and an aversive unconditioned (US) stimulus, leading to the synaptic changes that underlie formation of a CS-US association. The present findings are significant in showing that this theory is incomplete. When the aversive US is unexpected, animals encode all features of the situation (context, time and stimuli present) as a new fear/threat memory, which is regulated by NMDAR in the BLA. However, when the US is expected based on the context, time and stimuli present, the new fear memory is assimilated into networks that represent those features, which occurs independently of NMDAR-activation in the BLA.





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