Perseveration and Choice in Parkinson's Disease: The Impact of Progressive Frontostriatal Dysfunction on Action Decisions
暂无分享,去创建一个
Roger A. Barker | James B. Rowe | Laura E. Hughes | Ellemarije Altena | R. Barker | J. Rowe | L. Hughes | E. Altena | R. Barker
[1] P. C. Murphy,et al. Cerebral Cortex , 2017, Cerebral Cortex.
[2] T. Robbins,et al. Inhibition and the right inferior frontal cortex , 2004, Trends in Cognitive Sciences.
[3] A Baddeley,et al. Random Generation and the Executive Control of Working Memory , 1998, The Quarterly journal of experimental psychology. A, Human experimental psychology.
[4] M. Hallett,et al. Mechanisms Underlying Dopamine-Mediated Reward Bias in Compulsive Behaviors , 2010, Neuron.
[5] Robert Rogers,et al. Top–Down Attentional Control in Parkinson's Disease: Salient Considerations , 2010, Journal of Cognitive Neuroscience.
[6] T. Robbins,et al. Contrasting mechanisms of impaired attentional set-shifting in patients with frontal lobe damage or Parkinson's disease. , 1993, Brain : a journal of neurology.
[7] M. Petrides,et al. Functional role of the basal ganglia in the planning and execution of actions , 2006, Annals of neurology.
[8] P. Goldman-Rakic,et al. Dopamine D1 receptor mechanisms in the cognitive performance of young adult and aged monkeys , 1994, Psychopharmacology.
[9] H. C Lau,et al. Willed action and attention to the selection of action , 2004, NeuroImage.
[10] G. E. Alexander,et al. Parallel organization of functionally segregated circuits linking basal ganglia and cortex. , 1986, Annual review of neuroscience.
[11] Roshan Cools,et al. Switching between abstract rules reflects disease severity but not dopaminergic status in Parkinson's disease , 2009, Neuropsychologia.
[12] M. Petrides,et al. Basal ganglia and frontal involvement in self‐generated and externally‐triggered finger movements in the dominant and non‐dominant hand , 2009, The European journal of neuroscience.
[13] U Sabatini,et al. Normal activation of the supplementary motor area in patients with Parkinson's disease undergoing long-term treatment with levodopa. , 1994, Journal of neurology, neurosurgery, and psychiatry.
[14] R. Hazlewood,et al. The effects of Parkinson's disease on the capacity to generate information randomly , 1996, Neuropsychologia.
[15] Mark Hallett,et al. Impulse control disorders in Parkinson's disease: recent advances. , 2011, Current opinion in neurology.
[16] C. Marsden,et al. Recent Developments in Parkinson's Disease , 1986 .
[17] W Fernandez,et al. Impaired activation of the supplementary motor area in Parkinson's disease is reversed when akinesia is treated with apomorphine , 1992, Annals of neurology.
[18] S. Fahn. Unified Parkinson's Disease Rating Scale , 1987 .
[19] Karl J. Friston,et al. Cortical areas and the selection of movement: a study with positron emission tomography , 1991, Experimental Brain Research.
[20] M. D’Esposito,et al. Inverted-U–Shaped Dopamine Actions on Human Working Memory and Cognitive Control , 2011, Biological Psychiatry.
[21] R. G Brown,et al. Executive processes in Parkinsons disease—random number generation and response suppression , 1998, Neuropsychologia.
[22] T. Robbins,et al. Discrimination, reversal, and shift learning in Huntington’s disease: mechanisms of impaired response selection , 1999, Neuropsychologia.
[23] M. Gluck,et al. Dopaminergic Drugs Modulate Learning Rates and Perseveration in Parkinson's Patients in a Dynamic Foraging Task , 2009, The Journal of Neuroscience.
[24] James B. Rowe,et al. Action selection: A race model for selected and non-selected actions distinguishes the contribution of premotor and prefrontal areas , 2010, NeuroImage.
[25] H. Braak,et al. Stanley Fahn Lecture 2005: The staging procedure for the inclusion body pathology associated with sporadic Parkinson's disease reconsidered , 2006, Movement disorders : official journal of the Movement Disorder Society.
[26] Jonathan D. Cohen,et al. Computational perspectives on dopamine function in prefrontal cortex , 2002, Current Opinion in Neurobiology.
[27] M. Petrides,et al. Dissociating the role of the caudate nucleus and dorsolateral prefrontal cortex in the monitoring of events within human working memory , 2010, The European journal of neuroscience.
[28] Karl J. Friston,et al. Attention to Action: Specific Modulation of Corticocortical Interactions in Humans , 2001, NeuroImage.
[29] R. Passingham,et al. The prefrontal cortex: response selection or maintenance within working memory? , 2000, 5th IEEE EMBS International Summer School on Biomedical Imaging, 2002..
[30] Jan Derrfuss,et al. When the Choice Is Ours: Context and Agency Modulate the Neural Bases of Decision-Making , 2008, PloS one.
[31] R. Passingham,et al. Self-initiated versus externally triggered movements. I. An investigation using measurement of regional cerebral blood flow with PET and movement-related potentials in normal and Parkinson's disease subjects. , 1996, Brain : a journal of neurology.
[32] C. D. Frith,et al. The Role of the Dorsolateral Prefrontal Cortex in Random Number Generation: A Study with Positron Emission Tomography , 2000, NeuroImage.
[33] T. Robbins,et al. Mechanisms of cognitive set flexibility in Parkinson's disease. , 2001, Brain : a journal of neurology.
[34] G. Williams,et al. Under the curve: Critical issues for elucidating D1 receptor function in working memory , 2006, Neuroscience.
[35] John Duncan,et al. Selective tuning of the right inferior frontal gyrus during target detection , 2009, Cognitive, affective & behavioral neuroscience.
[36] J. Villablanca,et al. Why do we have a caudate nucleus? , 2010, Acta neurobiologiae experimentalis.
[37] Michael Petrides,et al. The Mid-ventrolateral Prefrontal Cortex and Active Mnemonic Retrieval , 2002, Neurobiology of Learning and Memory.
[38] R. Cools. Dopaminergic modulation of cognitive function-implications for l-DOPA treatment in Parkinson's disease , 2006, Neuroscience & Biobehavioral Reviews.
[39] Richard S. J. Frackowiak,et al. Impaired mesial frontal and putamen activation in Parkinson's disease: A positron emission tomography study , 1992, Annals of neurology.
[40] Tao Wu,et al. Effective connectivity of brain networks during self-initiated movement in Parkinson's disease , 2011, NeuroImage.
[41] Scott T. Grafton,et al. Network analysis of motor system connectivity in Parkinson's disease: Modulation of thalamocortical interactions after pallidotomy , 1994 .
[42] J. Desmond,et al. Dissociation of Frontal and Cerebellar Activity in a Cognitive Task: Evidence for a Distinction between Selection and Search , 1998, NeuroImage.
[43] J. Narumoto,et al. Neurobehavioral changes associated with bilateral caudate nucleus infarctions , 2005, Psychiatry and clinical neurosciences.
[44] T. Robbins,et al. Dopaminergic basis for deficits in working memory but not attentional set-shifting in Parkinson's disease , 2005, Neuropsychologia.
[45] Marjan Jahanshahi,et al. Executive dysfunction in Parkinson's disease is associated with altered pallidal–frontal processing , 2005, NeuroImage.
[46] Paul J. Laurienti,et al. An automated method for neuroanatomic and cytoarchitectonic atlas-based interrogation of fMRI data sets , 2003, NeuroImage.
[47] Young T. Hong,et al. Dopamine Release in Dissociable Striatal Subregions Predicts the Different Effects of Oral Methylphenidate on Reversal Learning and Spatial Working Memory , 2009, The Journal of Neuroscience.
[48] M. D’Esposito,et al. Impulsive Personality Predicts Dopamine-Dependent Changes in Frontostriatal Activity during Component Processes of Working Memory , 2007, The Journal of Neuroscience.
[49] A. Aron. The Neural Basis of Inhibition in Cognitive Control , 2007, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[50] Mark D'Esposito,et al. From cognitive to neural models of working memory , 2007, Philosophical Transactions of the Royal Society B: Biological Sciences.
[51] M. Schwaiger,et al. Event-related functional magnetic resonance imaging in Parkinson's disease before and after levodopa. , 2001, Brain : a journal of neurology.
[52] T. Robbins,et al. l-Dopa medication remediates cognitive inflexibility, but increases impulsivity in patients with Parkinson’s disease , 2003, Neuropsychologia.
[53] Mark D'Esposito,et al. The Dopamine Agonist Bromocriptine Differentially Affects Fronto-Striatal Functional Connectivity During Working Memory , 2011, Front. Hum. Neurosci..
[54] Roger A. Barker,et al. Dynamic causal modelling of effective connectivity from fMRI: Are results reproducible and sensitive to Parkinson's disease and its treatment? , 2010, NeuroImage.
[55] R. Barker,et al. The val158met COMT polymorphism's effect on atrophy in healthy aging and Parkinson's disease , 2010, Neurobiology of Aging.
[56] Karl J. Friston,et al. Frontal, midbrain and striatal dopaminergic function in early and advanced Parkinson's disease A 3D [(18)F]dopa-PET study. , 1999, Brain : a journal of neurology.
[57] Penny A. MacDonald,et al. Differential Effects of Dopaminergic Therapies on Dorsal and Ventral Striatum in Parkinson's Disease: Implications for Cognitive Function , 2011, Parkinson's Disease.
[58] R. Passingham,et al. Self-initiated versus externally triggered movements. II. The effect of movement predictability on regional cerebral blood flow. , 2000, Brain : a journal of neurology.
[59] C. Büchel,et al. Pharmacologically modulated fMRI--cortical responsiveness to levodopa in drug-naive hemiparkinsonian patients. , 2003, Brain : a journal of neurology.
[60] R. Barker,et al. Parkinson's disease and healthy aging: Independent and interacting effects on action selection , 2010, Human brain mapping.
[61] T. Robbins,et al. Response Perseveration in Stimulant Dependence Is Associated with Striatal Dysfunction and Can Be Ameliorated by a D2/3 Receptor Agonist , 2011, Biological Psychiatry.
[62] G. E. Alexander,et al. Functional architecture of basal ganglia circuits: neural substrates of parallel processing , 1990, Trends in Neurosciences.
[63] T. Robbins,et al. Enhanced or impaired cognitive function in Parkinson's disease as a function of dopaminergic medication and task demands. , 2001, Cerebral cortex.
[64] John Duncan,et al. The Target Selective Neural Response — Similarity, Ambiguity, and Learning Effects , 2008, PloS one.
[65] Karl J. Friston,et al. The prefrontal cortex shows context-specific changes in effective connectivity to motor or visual cortex during the selection of action or colour. , 2004, Cerebral cortex.
[66] Tao Wu,et al. Effective connectivity of neural networks in automatic movements in Parkinson's disease , 2010, NeuroImage.
[67] I. McKeith,et al. Cerebral atrophy in Parkinson's disease with and without dementia: a comparison with Alzheimer's disease, dementia with Lewy bodies and controls. , 2004, Brain : a journal of neurology.
[68] A M Owen,et al. Prefrontal dopamine levels determine the balance between cognitive stability and flexibility. , 2013, Cerebral cortex.
[69] D. Durstewitz,et al. The Dual-State Theory of Prefrontal Cortex Dopamine Function with Relevance to Catechol-O-Methyltransferase Genotypes and Schizophrenia , 2008, Biological Psychiatry.
[70] M. Hallett,et al. Dopamine agonists and risk: impulse control disorders in Parkinson's disease. , 2011, Brain : a journal of neurology.
[71] M. Hoehn,et al. Parkinsonism , 1967, Neurology.
[72] D. Eckstein,et al. Parkinson's disease and dopaminergic therapy—differential effects on movement, reward and cognition , 2008, Brain : a journal of neurology.
[73] Stephen Monsell,et al. Task-Set Switching Deficits in Early-Stage Huntington's Disease: Implications for Basal Ganglia Function , 2003, Journal of Cognitive Neuroscience.
[74] Penny A. MacDonald,et al. The effect of dopamine therapy on ventral and dorsal striatum-mediated cognition in Parkinson's disease: support from functional MRI. , 2011, Brain : a journal of neurology.
[75] Keith A. Young,et al. The functional connectivity of the human caudate: An application of meta-analytic connectivity modeling with behavioral filtering , 2012, NeuroImage.
[76] S. Lewis,et al. The role of learned irrelevance in attentional set-shifting impairments in Parkinson's disease. , 2006, Neuropsychology.
[77] Ivan Toni,et al. The prefrontal cortex: response selection or maintenance within working memory? , 2000, 5th IEEE EMBS International Summer School on Biomedical Imaging, 2002..
[78] D. Eckstein,et al. Rule-Selection and Action-Selection have a Shared Neuroanatomical Basis in the Human Prefrontal and Parietal Cortex , 2008, Cerebral cortex.
[79] Floris P. de Lange,et al. Increased Dependence of Action Selection on Recent Motor History in Parkinson's Disease , 2009, The Journal of Neuroscience.
[80] M. Frank,et al. Striatal Dopamine Predicts Outcome-Specific Reversal Learning and Its Sensitivity to Dopaminergic Drug Administration , 2009, The Journal of Neuroscience.
[81] T. Robbins,et al. Catechol O-Methyltransferase val158met Genotype Influences Frontoparietal Activity during Planning in Patients with Parkinson's Disease , 2007, The Journal of Neuroscience.
[82] Joseph A Maldjian,et al. Precentral gyrus discrepancy in electronic versions of the Talairach atlas , 2004, NeuroImage.