Negative Urgency Exacerbates Relapse to Cocaine Seeking After Abstinence
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B. Everitt | D. Belin | Maxime Fouyssac | C. Giuliano | Y. Peña-Oliver | Mickaёl Puaud | N. Lim | Yolanda Peña-Oliver
[1] Stephanie A. Carmack,et al. Cues conditioned to withdrawal and negative reinforcement: Neglected but key motivational elements driving opioid addiction , 2021, Science Advances.
[2] G. Koob. Drug Addiction: Hyperkatifeia/Negative Reinforcement as a Framework for Medications Development , 2020, Pharmacological Reviews.
[3] Brooke N. Bender,et al. Dorsolateral striatum dopamine-dependent cocaine seeking is resistant to pavlovian cue extinction in male and female rats , 2020, Neuropharmacology.
[4] B. Everitt,et al. The Basolateral Amygdala to Nucleus Accumbens Core Circuit Mediates the Conditioned Reinforcing Effects of Cocaine-Paired Cues on Cocaine Seeking , 2020, Biological Psychiatry.
[5] B. Everitt,et al. The Basolateral Amygdala to Nucleus Accumbens Core Circuit Mediates the Conditioned Reinforcing Effects of Cocaine-Paired Cues on Cocaine Seeking , 2020, Biological Psychiatry.
[6] L. Roeger,et al. Treatment of the sensory and motor components of urges to eat (eating addiction?): a mobile-health pilot study for obesity in young people , 2020, Eating and Weight Disorders - Studies on Anorexia, Bulimia and Obesity.
[7] G. Koob. Neurobiology of Opioid Addiction: Opponent Process, Hyperkatifeia, and Negative Reinforcement , 2020, Biological Psychiatry.
[8] M. Naassila,et al. Vulnerability to ethanol sensitization predicts higher intake and motivation to self‐administer ethanol: Proof of the incentive salience sensitization theory? , 2019, Addiction biology.
[9] G. Koob,et al. Impulsivity Derived From the Dark Side: Neurocircuits That Contribute to Negative Urgency , 2019, Front. Behav. Neurosci..
[10] A. Haith,et al. Time-dependent competition between goal-directed and habitual response preparation , 2019, Nature Human Behaviour.
[11] J. Fernández-Montalvo,et al. Frustration Tolerance and Personality Traits in Patients With Substance Use Disorders , 2019, Front. Psychiatry.
[12] Melissa A. Cyders,et al. Integrating Preclinical and Clinical Models of Negative Urgency , 2019, Front. Psychiatry.
[13] D. Belin,et al. Beyond drug‐induced alteration of glutamate homeostasis, astrocytes may contribute to dopamine‐dependent intrastriatal functional shifts that underlie the development of drug addiction: A working hypothesis , 2019, The European journal of neuroscience.
[14] B. Everitt,et al. Compulsive Alcohol Seeking Results from a Failure to Disengage Dorsolateral Striatal Control over Behavior , 2019, The Journal of Neuroscience.
[15] R. Sinha,et al. Drug-induced stress responses and addiction risk and relapse , 2019, Neurobiology of Stress.
[16] K. Kendrick,et al. Cue-reactivity in the ventral striatum characterizes heavy cannabis use, whereas reactivity in the dorsal striatum mediates dependent use , 2019, bioRxiv.
[17] Rita Z. Goldstein,et al. Neuroimaging Impaired Response Inhibition and Salience Attribution in Human Drug Addiction: A Systematic Review , 2018, Neuron.
[18] B. Everitt,et al. Heroin seeking becomes dependent on dorsal striatal dopaminergic mechanisms and can be decreased by N‐acetylcysteine , 2018, The European journal of neuroscience.
[19] B. Everitt,et al. Addictive behaviour in experimental animals: prospects for translation , 2018, Philosophical Transactions of the Royal Society B: Biological Sciences.
[20] T. Robinson,et al. Are Cocaine-Seeking “Habits” Necessary for the Development of Addiction-Like Behavior in Rats? , 2017, The Journal of Neuroscience.
[21] Sylvia M. L. Cox,et al. Cocaine Cue-Induced Dopamine Release in Recreational Cocaine Users , 2017, Scientific Reports.
[22] B. Everitt,et al. Cellular basis of the intrastriatal functional shifts that underlie the development of habits: relevance for drug addiction , 2017, Current Opinion in Behavioral Sciences.
[23] B. Balleine,et al. Pulling habits out of rats: adenosine 2A receptor antagonism in dorsomedial striatum rescues meth‐amphetamine‐induced deficits in goal‐directed action , 2017, Addiction biology.
[24] B. Everitt,et al. N-acetylcysteine Facilitates Self-Imposed Abstinence After Escalation of Cocaine Intake , 2016, Biological Psychiatry.
[25] A. Bonci,et al. How Preclinical Models Evolved to Resemble the Diagnostic Criteria of Drug Addiction , 2016, Biological Psychiatry.
[26] B. Everitt,et al. Basolateral and central amygdala differentially recruit and maintain dorsolateral striatum-dependent cocaine-seeking habits , 2015, Nature Communications.
[27] Daniel C. McNamee,et al. Characterizing the Associative Content of Brain Structures Involved in Habitual and Goal-Directed Actions in Humans: A Multivariate fMRI Study , 2015, The Journal of Neuroscience.
[28] G. Koob. The dark side of emotion: the addiction perspective , 2015, European journal of pharmacology.
[29] A. Waters,et al. A critical review of the literature on attentional bias in cocaine use disorder and suggestions for future research. , 2014, Experimental and clinical psychopharmacology.
[30] A. Goodchild,et al. Behavioral and Neural Substrates of Habit Formation in Rats Intravenously Self-Administering Nicotine , 2014, Neuropsychopharmacology.
[31] H. Singer. Motor control, habits, complex motor stereotypies, and Tourette syndrome , 2013, Annals of the New York Academy of Sciences.
[32] R. Costa,et al. Orbitofrontal and striatal circuits dynamically encode the shift between goal-directed and habitual actions , 2013, Nature Communications.
[33] B. Everitt,et al. Addiction: failure of control over maladaptive incentive habits , 2013, Current Opinion in Neurobiology.
[34] B. Everitt,et al. Hierarchical recruitment of phasic dopamine signaling in the striatum during the progression of cocaine use , 2012, Proceedings of the National Academy of Sciences.
[35] P. Janak,et al. Habitual Alcohol Seeking: Time Course and the Contribution of Subregions of the Dorsal Striatum , 2012, Biological Psychiatry.
[36] B. Everitt,et al. Intrastriatal Shifts Mediate the Transition from Drug-Seeking Actions to Habits , 2012, Biological Psychiatry.
[37] B. Everitt,et al. Double Dissociation of the Dorsomedial and Dorsolateral Striatal Control Over the Acquisition and Performance of Cocaine Seeking , 2012, Neuropsychopharmacology.
[38] Xin Jin,et al. Different dorsal striatum circuits mediate action discrimination and action generalization , 2012, The European journal of neuroscience.
[39] A. Waters,et al. Attentional bias to drug cues is elevated before and during temptations to use heroin and cocaine , 2012, Psychopharmacology.
[40] S. Eickhoff,et al. On the functional anatomy of the urge-for-action , 2011, Cognitive neuroscience.
[41] Mimi Liljeholm,et al. Neural Correlates of Instrumental Contingency Learning: Differential Effects of Action–Reward Conjunction and Disjunction , 2011, The Journal of Neuroscience.
[42] Karl Mann,et al. Initial, habitual and compulsive alcohol use is characterized by a shift of cue processing from ventral to dorsal striatum. , 2010, Addiction.
[43] A. Dickinson,et al. Parallel and interactive learning processes within the basal ganglia: Relevance for the understanding of addiction , 2009, Behavioural Brain Research.
[44] Gregory T. Smith,et al. Emotion-based dispositions to rash action: positive and negative urgency. , 2008, Psychological bulletin.
[45] T. Robbins,et al. Neural mechanisms underlying the vulnerability to develop compulsive drug-seeking habits and addiction , 2008, Philosophical Transactions of the Royal Society B: Biological Sciences.
[46] G. Koob. A Role for Brain Stress Systems in Addiction , 2008, Neuron.
[47] B. Everitt,et al. Cocaine Seeking Habits Depend upon Dopamine-Dependent Serial Connectivity Linking the Ventral with the Dorsal Striatum , 2008, Neuron.
[48] John Listerud,et al. Prelude to Passion: Limbic Activation by “Unseen” Drug and Sexual Cues , 2008, PloS one.
[49] R. See,et al. The role of dorsal vs ventral striatal pathways in cocaine-seeking behavior after prolonged abstinence in rats , 2007, Psychopharmacology.
[50] N. Volkow,et al. Cocaine Cues and Dopamine in Dorsal Striatum: Mechanism of Craving in Cocaine Addiction , 2006, The Journal of Neuroscience.
[51] Rajita Sinha,et al. Cue-Induced Brain Activity Changes and Relapse in Cocaine-Dependent Patients , 2006, Neuropsychopharmacology.
[52] Hugh Garavan,et al. A consistent attentional bias for drug-related material in active cocaine users across word and picture versions of the emotional Stroop task. , 2006, Drug and alcohol dependence.
[53] T. Robbins,et al. Neural systems of reinforcement for drug addiction: from actions to habits to compulsion , 2005, Nature Neuroscience.
[54] B. Everitt,et al. Involvement of the Dorsal Striatum in Cue-Controlled Cocaine Seeking , 2005, The Journal of Neuroscience.
[55] B. Balleine,et al. Blockade of NMDA receptors in the dorsomedial striatum prevents action–outcome learning in instrumental conditioning , 2005, The European journal of neuroscience.
[56] B. Balleine,et al. The role of the dorsomedial striatum in instrumental conditioning , 2005, The European journal of neuroscience.
[57] R. Costa,et al. Habits , 2014 .
[58] B. Everitt,et al. Direct Interactions between the Basolateral Amygdala and Nucleus Accumbens Core Underlie Cocaine-Seeking Behavior by Rats , 2004, The Journal of Neuroscience.
[59] Michael A. Nader,et al. Behavioral/systems/cognitive Cocaine Self-administration Produces a Progressive Involvement of Limbic, Association, and Sensorimotor Striatal Domains , 2022 .
[60] T. Robbins,et al. Differential control over cocaine-seeking behavior by nucleus accumbens core and shell , 2004, Nature Neuroscience.
[61] L. Panlilio,et al. Second-order schedules of drug self-administration in animals , 2002, Psychopharmacology.
[62] G. Koob,et al. Neurobiological evidence for hedonic allostasis associated with escalating cocaine use , 2002, Nature Neuroscience.
[63] D. Cohen,et al. Tic disorders: when habit forming neural systems form habits of their own? , 2001, Zhonghua yi xue za zhi = Chinese medical journal; Free China ed.
[64] Bruce T. Hope,et al. Neuroadaptation: Incubation of cocaine craving after withdrawal , 2001, Nature.
[65] M. Nader,et al. Progression of Changes in Dopamine Transporter Binding Site Density as a Result of Cocaine Self-Administration in Rhesus Monkeys , 2001, The Journal of Neuroscience.
[66] G. Koob,et al. Drug Addiction, Dysregulation of Reward, and Allostasis , 2001, Neuropsychopharmacology.
[67] T. Robbins,et al. Second-order schedules of drug reinforcement in rats and monkeys: measurement of reinforcing efficacy and drug-seeking behaviour , 2000, Psychopharmacology.
[68] R. Poland,et al. Comparison of noncontingent versus contingent cocaine administration on plasma corticosterone levels in rats. , 2000, European journal of pharmacology.
[69] J. Leckman,et al. Tourette's Syndrome , 2000 .
[70] E. Stein,et al. Cue-induced cocaine craving: neuroanatomical specificity for drug users and drug stimuli. , 2000, The American journal of psychiatry.
[71] S. O'Malley,et al. Psychological stress, drug-related cues and cocaine craving , 2000, Psychopharmacology.
[72] J. Stewart,et al. Pathways to relapse: the neurobiology of drug- and stress-induced relapse to drug-taking. , 2000, Journal of psychiatry & neuroscience : JPN.
[73] T. Robbins,et al. Acquisition, maintenance and reinstatement of intravenous cocaine self-administration under a second-order schedule of reinforcement in rats: effects of conditioned cues and continuous access to cocaine , 1998, Psychopharmacology.
[74] G F Koob,et al. Transition from moderate to excessive drug intake: change in hedonic set point. , 1998, Science.
[75] K. Miczek,et al. Withdrawal from a self-administered or non-contingent cocaine binge: differences in ultrasonic distress vocalizations in rats , 1998, Psychopharmacology.
[76] Steven I. Dworkin,et al. Differences in extracellular dopamine concentrations in the nucleus accumbens during response-dependent and response-independent cocaine administration in the rat , 1997, Psychopharmacology.
[77] S. Hyman,et al. Acute Effects of Cocaine on Human Brain Activity and Emotion , 1997, Neuron.
[78] J. McKay,et al. An examination of the cocaine relapse process. , 1995, Drug and alcohol dependence.
[79] K. Berridge,et al. The neural basis of drug craving: An incentive-sensitization theory of addiction , 1993, Brain Research Reviews.
[80] S. Maisto,et al. Two-factor avoidance theory: The role of negative affect in the maintenance of substance use and substance use disorder , 1993 .
[81] K. Preston,et al. The reinforcing and subjective effects of morphine in post-addicts: a dose-response study. , 1991, The Journal of pharmacology and experimental therapeutics.
[82] B. Rounsaville,et al. Relapse prevention strategies for the treatment of cocaine abuse. , 1991, The American journal of drug and alcohol abuse.
[83] G. Di Chiara,et al. Drugs abused by humans preferentially increase synaptic dopamine concentrations in the mesolimbic system of freely moving rats. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[84] J. Sanchez-Ramos,et al. Second-order schedules of intravenous drug self-administration in rhesus monkeys , 1977, Pharmacology Biochemistry and Behavior.
[85] Y. Shaham,et al. Animal models of drug relapse and craving: From drug priming-induced reinstatement to incubation of craving after voluntary abstinence. , 2016, Progress in brain research.
[86] B. Everitt,et al. Habit Formation and Compulsion , 2011 .
[87] T. Robbins,et al. Excitotoxic lesions of the basolateral amygdala impair the acquisition of cocaine-seeking behaviour under a second-order schedule of reinforcement , 2008, Psychopharmacology.
[88] B. Everitt,et al. Limbic cortical-ventral striatal systems underlying appetitive conditioning. , 2000, Progress in brain research.
[89] B. Wallace,et al. Psychological and environmental determinants of relapse in crack cocaine smokers. , 1989, Journal of substance abuse treatment.