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Published in: Journal of Neurology 10/2010

01-10-2010 | Original Communication

“Habit” gambling behaviour caused by ischemic lesions affecting the cognitive territories of the basal ganglia

Authors: Emmanuel Cognat, Julien Lagarde, Caroline Decaix, Elodie Hainque, Louisa Azizi, Veronique Gaura-Schmidt, Valerie Mesnage, Richard Levy

Published in: Journal of Neurology | Issue 10/2010

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Abstract

We report the case of a patient suffering from sudden apathy and pathological gambling-like behaviour after bilateral ischemic lesions involving the dorsal portion of the head of the caudate nuclei and adjacent anterior limb of the internal capsules. This is the first report of the association of an apathy and abnormal gambling behaviour following a stroke affecting sub-cortical structures. Although the location of the lesions, affecting the dorsal striatum, may explain the emergence of an apathetic state, it is, however, at first sight, not easy to explain the gambling behaviour because the patient was normal in tests evaluating sensitivity to reward, and no radiological abnormality was found in the cortical-sub-cortical system of reward. It is proposed that, for this patient, the mechanism of maladaptive gambling behaviour was the development of a routine behaviour related to the patient’s cognitive inertia, a mechanism different from the changes in reward sensitivity observed after damage to the orbital ventral prefrontal–ventral striatum system or in dopamine dysregulation syndrome in Parkinson’s disease.
Literature
1.
go back to reference Bhatia KP, Marsden CD (1994) The behavioural and motor consequences of focal lesions of the basal ganglia in man. Brain 117:859–876CrossRefPubMed Bhatia KP, Marsden CD (1994) The behavioural and motor consequences of focal lesions of the basal ganglia in man. Brain 117:859–876CrossRefPubMed
2.
go back to reference Alexander GE, Delong MR, Strick PL (1986) Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annual Rev Neurosci 9:357–381CrossRef Alexander GE, Delong MR, Strick PL (1986) Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annual Rev Neurosci 9:357–381CrossRef
3.
go back to reference Middleton FA, Strick PL (2002) Basal-ganglia ‘projections’ to the prefrontal cortex of the primate. Cereb Cortex 12:926–935CrossRefPubMed Middleton FA, Strick PL (2002) Basal-ganglia ‘projections’ to the prefrontal cortex of the primate. Cereb Cortex 12:926–935CrossRefPubMed
4.
go back to reference Haber SN (2003) The primate basal ganglia: parallel and integrative networks. J Chem Neuroanat 26:317–330CrossRefPubMed Haber SN (2003) The primate basal ganglia: parallel and integrative networks. J Chem Neuroanat 26:317–330CrossRefPubMed
5.
go back to reference Calzavara R, Mailly P, Haber SN (2007) Relationship between the corticostriatal terminals from areas 9 and 46, and those from area 8A, dorsal and rostral premotor cortex and area 24c: an anatomical substrate for cognition to action. Eur J Neurosci 26:2005–2024CrossRefPubMed Calzavara R, Mailly P, Haber SN (2007) Relationship between the corticostriatal terminals from areas 9 and 46, and those from area 8A, dorsal and rostral premotor cortex and area 24c: an anatomical substrate for cognition to action. Eur J Neurosci 26:2005–2024CrossRefPubMed
6.
go back to reference Divac I, Rosvold HE, Scwarcbart MK (1967) Behavioural effects of selective ablation of the caudate nucleus. J Comp Physiol Psych 63:184–190CrossRef Divac I, Rosvold HE, Scwarcbart MK (1967) Behavioural effects of selective ablation of the caudate nucleus. J Comp Physiol Psych 63:184–190CrossRef
7.
go back to reference Richfield EK, Twyman R, Berent S (1987) Neurological syndrome following bilateral damage to the head of the caudate nuclei. Ann Neurol 22:768–771CrossRefPubMed Richfield EK, Twyman R, Berent S (1987) Neurological syndrome following bilateral damage to the head of the caudate nuclei. Ann Neurol 22:768–771CrossRefPubMed
8.
go back to reference Mendez MF, Adams NL, Lewandowski KS (1989) Neurobehavioral changes associated with caudate lesions. Neurology 39:349–354PubMed Mendez MF, Adams NL, Lewandowski KS (1989) Neurobehavioral changes associated with caudate lesions. Neurology 39:349–354PubMed
9.
go back to reference Caplan LR, Schmahmann JD, Kase CS, Feldmann E, Baquis G, Greenberg JP, Gorelick PB, Helgason C, Hier DB (1990) Caudate infarcts. Arch Neurol 47:133–143PubMed Caplan LR, Schmahmann JD, Kase CS, Feldmann E, Baquis G, Greenberg JP, Gorelick PB, Helgason C, Hier DB (1990) Caudate infarcts. Arch Neurol 47:133–143PubMed
10.
go back to reference Stern CE, Passingham RE (1994) The nucleus accumbens in monkeys (Macaca fascicularis): I. The organization of behaviour. Behav Brain Res 61:9–21CrossRefPubMed Stern CE, Passingham RE (1994) The nucleus accumbens in monkeys (Macaca fascicularis): I. The organization of behaviour. Behav Brain Res 61:9–21CrossRefPubMed
11.
go back to reference Kumral E, Evyapan D, Balkir K (1999) Acute caudate vascular lesions. Stroke 30:100–108PubMed Kumral E, Evyapan D, Balkir K (1999) Acute caudate vascular lesions. Stroke 30:100–108PubMed
12.
go back to reference Calder AJ, Keane J, Lawrence AD, Manes F (2004) Impaired recognition of anger following damage to the ventral striatum. Brain 127:1958–1969CrossRefPubMed Calder AJ, Keane J, Lawrence AD, Manes F (2004) Impaired recognition of anger following damage to the ventral striatum. Brain 127:1958–1969CrossRefPubMed
13.
go back to reference Narumoto J, Matsushima N, Oka S, Shimizu H, Kooguchi Y, Kitabayashi Y, Kunizawa M, Ueda H, Fukui K (2005) Neurobehavioral changes associated with bilateral caudate nucleus infarctions. Psychiatry Clin Neurosci 59:109–110CrossRefPubMed Narumoto J, Matsushima N, Oka S, Shimizu H, Kooguchi Y, Kitabayashi Y, Kunizawa M, Ueda H, Fukui K (2005) Neurobehavioral changes associated with bilateral caudate nucleus infarctions. Psychiatry Clin Neurosci 59:109–110CrossRefPubMed
14.
go back to reference Grober E, Buschke H (1987) Genuine memory deficits in dementia. Dev Neuropsychol. 3:13–36CrossRef Grober E, Buschke H (1987) Genuine memory deficits in dementia. Dev Neuropsychol. 3:13–36CrossRef
15.
go back to reference Dubois B, Slachevsky A, Litvan I, Pillon B (2000) The FAB: a frontal assessment battery at bedside. Neurology 55:1621–1626PubMed Dubois B, Slachevsky A, Litvan I, Pillon B (2000) The FAB: a frontal assessment battery at bedside. Neurology 55:1621–1626PubMed
16.
go back to reference Starkstein SE, Mayberg HS, Preziosi TJ, Andrezejewski P, Leiguarda R, Robinson RG (1992) Reliability, validity, and clinical correlates of apathy in Parkinson’s disease. J Neuropsychiatry Clin Neurosci 4:134–139PubMed Starkstein SE, Mayberg HS, Preziosi TJ, Andrezejewski P, Leiguarda R, Robinson RG (1992) Reliability, validity, and clinical correlates of apathy in Parkinson’s disease. J Neuropsychiatry Clin Neurosci 4:134–139PubMed
17.
go back to reference Bechara A, Damasio H, Damasio AR (2000) Emotion, decision making and the orbitofrontal cortex. Cereb Cortex 10:295–307CrossRefPubMed Bechara A, Damasio H, Damasio AR (2000) Emotion, decision making and the orbitofrontal cortex. Cereb Cortex 10:295–307CrossRefPubMed
18.
go back to reference Selemon LD, Goldman-Rakic PS (1985) Longitudinal topography and interdigitation of corticostriatal projections in the rhesus monkeys. J Neurosci 5:776–794PubMed Selemon LD, Goldman-Rakic PS (1985) Longitudinal topography and interdigitation of corticostriatal projections in the rhesus monkeys. J Neurosci 5:776–794PubMed
19.
go back to reference Levy R, Dubois B (2006) Apathy and the functional anatomy of the prefrontal cortex-basal ganglia circuits. Cereb Cortex 16:916–928CrossRefPubMed Levy R, Dubois B (2006) Apathy and the functional anatomy of the prefrontal cortex-basal ganglia circuits. Cereb Cortex 16:916–928CrossRefPubMed
20.
go back to reference American Psychiatric Association (2000) Diagnostic and statistical manual of mental disorders, text revision, 4th edn American Psychiatric Association (2000) Diagnostic and statistical manual of mental disorders, text revision, 4th edn
21.
go back to reference Eslinger PJ, Damasio AR (1985) Severe disturbance of higher cognition after bilateral frontal lobe ablation: patient EVR. Neurology 35:1731–1741PubMed Eslinger PJ, Damasio AR (1985) Severe disturbance of higher cognition after bilateral frontal lobe ablation: patient EVR. Neurology 35:1731–1741PubMed
22.
go back to reference O’Sullivan SS, Evans AH, Lees AJ (2009) Dopamine dysregulation syndrome: an overview of its epidemiology, mechanisms and management. CNS Drugs 23:157–170CrossRefPubMed O’Sullivan SS, Evans AH, Lees AJ (2009) Dopamine dysregulation syndrome: an overview of its epidemiology, mechanisms and management. CNS Drugs 23:157–170CrossRefPubMed
23.
go back to reference Potenza MN (2008) Review the neurobiology of pathological gambling and drug addiction: an overview and new findings. Philos Trans R Soc Lond B Biol Sci 363(1507):3181–3189CrossRefPubMed Potenza MN (2008) Review the neurobiology of pathological gambling and drug addiction: an overview and new findings. Philos Trans R Soc Lond B Biol Sci 363(1507):3181–3189CrossRefPubMed
Metadata
Title
“Habit” gambling behaviour caused by ischemic lesions affecting the cognitive territories of the basal ganglia
Authors
Emmanuel Cognat
Julien Lagarde
Caroline Decaix
Elodie Hainque
Louisa Azizi
Veronique Gaura-Schmidt
Valerie Mesnage
Richard Levy
Publication date
01-10-2010
Publisher
Springer-Verlag
Published in
Journal of Neurology / Issue 10/2010
Print ISSN: 0340-5354
Electronic ISSN: 1432-1459
DOI
https://doi.org/10.1007/s00415-010-5579-3

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