Mapping the network for planning: a correlational PET activation study with the Tower of London task

被引:252
作者
Dagher, A
Owen, AM
Boecker, H
Brooks, DJ
机构
[1] McGill Univ, Montreal Neurol Inst, McConnell Brain Imaging Ctr, Montreal, PQ H3A 2B4, Canada
[2] MRC Cognit & Brain Sci, Cambridge, England
[3] Inst Neurol, London WC1N 3BG, England
[4] Hammersmith Hosp, Med Res Council Cyclotron Unit, London, England
基金
英国医学研究理事会;
关键词
prefrontal cortex; anterior cingulate cortex; PET; Tower of London task; basal ganglia; caudate nucleus;
D O I
10.1093/brain/122.10.1973
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
We used the Tower of London task (TOL) and (H2O)-O-15-PET to map the network of brain structures involved in planning, Six healthy right-handed subjects had 12 measurements of relative regional cerebral blood flow (rrCBF) during six conditions, each performed twice. There was one rest condition, and five sets of TOL problems at different complexity levels, performed on a touch-sensitive computer monitor with the right arm, Complexity was defined as the number of moves required to solve each problem. Activation was analysed in two ways: a category analysis comparing levels of rrCBF during rest and task was done to identify all structures involved in performance of the TOL; and a correlation analysis was carried out to delineate a subset of structures where the levels of rrCBF correlated with task complexity. Activated brain areas in which rrCBF increases did not correlate with complexity could be grouped into: (i) regions belonging to the dorsal stream of visual input processing, namely visual cortical areas 17, 18 and 19, and posterior parietal cortical areas 7 and 40; and (ii) regions involved in the execution and sequencing of arm movements (right cerebellum, left primary motor cortex and supplementary motor area), Brain regions where levels of rrCBF correlated with task complexity included lateral premotor cortex (area 6), rostral anterior cingulate cortex (areas 32 and 24), dorsolateral prefrontal cortex (areas 9 and 46) bilaterally, and right dorsal caudate nucleus, We propose that dorsolateral prefrontal, lateral premotor, anterior cingulate and caudate areas form a network for the planning of movement that interacts with brain areas primarily involved in visual processing and movement execution.
引用
收藏
页码:1973 / 1987
页数:15
相关论文
共 64 条
[1]  
Agid Y., 1987, Cognitive Neurochemistrv, P248
[2]  
ALEXANDER G, 1991, TRENDS NEUROSCI, V14, P56
[3]   Functional activation of the human brain during mental rotation [J].
Alivisatos, B ;
Petrides, M .
NEUROPSYCHOLOGIA, 1997, 35 (02) :111-118
[4]   Neural systems engaged by planning: A PET study of the Tower of London task [J].
Baker, SC ;
Rogers, RD ;
Owen, AM ;
Frith, CD ;
Dolan, RJ ;
Frackowiak, RSJ ;
Robbins, TW .
NEUROPSYCHOLOGIA, 1996, 34 (06) :515-526
[5]   Brain regions responsive to novelty in the absence of awareness [J].
Berns, GS ;
Cohen, JD ;
Mintun, MA .
SCIENCE, 1997, 276 (5316) :1272-1275
[6]  
Boecker H, 1998, J NEUROPHYSIOL, V79, pU30
[7]   Role of the human rostral supplementary motor area and the basal ganglia in motor sequence control:: Investigations with H2 15O PET [J].
Boecker, H ;
Dagher, A ;
Ceballos-Baumann, AO ;
Passingham, RE ;
Samuel, M ;
Friston, KJ ;
Poline, JB ;
Dettmers, C ;
Conrad, B ;
Brooks, DJ .
JOURNAL OF NEUROPHYSIOLOGY, 1998, 79 (02) :1070-1080
[8]   NEURAL CORRELATES OF MENTAL TRANSFORMATIONS OF THE BODY-IN-SPACE [J].
BONDA, E ;
PETRIDES, M ;
FREY, S ;
EVANS, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (24) :11180-11184
[9]   Anterior cingulate cortex, error detection, and the online monitoring of performance [J].
Carter, CS ;
Braver, TS ;
Barch, DM ;
Botvinick, MM ;
Noll, D ;
Cohen, JD .
SCIENCE, 1998, 280 (5364) :747-749
[10]   AUTOMATIC 3D INTERSUBJECT REGISTRATION OF MR VOLUMETRIC DATA IN STANDARDIZED TALAIRACH SPACE [J].
COLLINS, DL ;
NEELIN, P ;
PETERS, TM ;
EVANS, AC .
JOURNAL OF COMPUTER ASSISTED TOMOGRAPHY, 1994, 18 (02) :192-205