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Biomedical subjects

R E Passingham

Publications and source records attributed to R E Passingham.

At least 91 records · Page 5Linked to original sources

Overactive prefrontal and underactive motor cortical areas in idiopathic dystonia.

Regional cerebral blood flow was measured using H2(15)O and positron emission tomography in a group of 6 patients with idiopathic torsion dystonia and in a group of 6 control subjects. Subjects were scanned while at rest and when performing paced joystick movements in freely chosen directions with the right hand. Patients with idiopathic torsion dystonia showed significant overactivity in the contralateral lateral premotor cortex, rostral supplementary motor area, Brodmann area 8, anterior cingulate area 32, ipsilateral dorsolateral prefrontal cortex, and bilateral lentiform nucleus. Significant underactivity was found in the caudal supplementary motor area, bilateral sensorimotor cortex, posterior cingulate, and mesial parietal cortex. These results are consistent with inappropriate overactivity of striatofrontal projections and impaired activity of motor executive areas in idiopathic torsion dystonia and may explain the simultaneous dystonic posturing and bradykinesia evident in these patients.

Adult↗

Motor reorganization in acquired hemidystonia.

Regional cerebral blood flow (rCBF) was measured with H2(15)O positron emission tomography in 5 patients with acquired hemidystonia (AHD) due to structural lesions of the basal ganglia or posterior thalamus contralateral to the dystonic limb. Patients were scanned at rest and when performing paced joystick movements in freely chosen directions with the dystonic and then the unaffected arm. Findings were compared with those of 5 age-matched controls performing joystick movements with the right arm. At rest, there was decreased activity in ventroanterior thalamus, posterior thalamus, angular gyrus ipsilateral to the lesion, and bilateral frontoorbital cortex. At a similar level of significance, increased resting activity was found in lentiform nucleus, hippocampus, and anterior insula contralateral to the lesion. Using the affected arm, AHD cases showed significant overactivity of contralateral prefrontal, lateral premotor cortex, rostral supplementary motor area, anterior cingulate area 32, bilateral sensorimotor cortex (SMC) and insula, mesial parietal cortex, and ipsilateral cerebellum. There was similar frontal overactivity when the unaffected arm performed the joystick movements, though SMC and insula overactivity was contralateral rather than bilateral. The associated frontal overactivity on movement is consistent with acquired dystonia being a syndrome of thalamofrontal disinhibition due to structural disruption of basal ganglia inhibitory control. Our findings also suggest that cortical activation during movement of the unaffected limb is abnormal in acquired hemidystonia.

Adult↗

The functions of the medial premotor cortex. I. Simple learned movements.

We report several studies on the effects of removing the medial premotor cortex (supplementary motor area) in monkeys. The removal of this area alone does not cause either paralysis or akinesia. However, the animals were poor at performing a simple learned task in which they had to carry out an arbitrary action: they were taught to raise their arm in order to obtain food in a foodwell below. They were impaired whether they worked in the light or the dark. They were impaired when they had to perform the movements at their own pace, but much less impaired when a tone paced performance. Monkeys with lesions in the anterior cingulate cortex were as impaired as monkeys with medial premotor lesions at performing this task at their own pace. However, monkeys with lateral premotor lesions were less impaired. We conclude that the medial premotor areas play a crucial role in the performance of learned movements when there is no external stimulus to prompt performance.

Animals↗

The functions of the medial premotor cortex. II. The timing and selection of learned movements.

Monkeys with medial premotor cortex (MPC) lesions are impaired on a simple learned task that requires them to raise their arm at their own pace. However, they can succeed on this task if they are given tones to guide performance. In the externally paced task the tones could aid performance in several ways. They tell the animal when to act (trigger), they remind the animal that food is available and so motivate (predictor), and they remind the animal of what to do (instruction). Monkeys with MPC lesions can respond quickly to visual cues (experiment 1), and they can respond as well as normal monkeys when there is no immediate trigger (experiment 2). They are also quick to relearn a task in which external cues tell them what to do (experiment 5). However, they are poor at selecting between movements on a simple motor sequence task (experiment 3), and they are poor at changing between two movements (experiment 4). On these tasks there were cues to act as triggers and predictors, but there were no external instructions. We conclude that the reason why animals with MPC lesions perform better with external cues is that these cues act as instructions. The cues prompt retrieval of the appropriate action. This is true whether the task requires the animal to perform one action (experiments 1 and 2) or to select between actions (experiments 3 and 4).

Acoustic Stimulation↗

The nucleus accumbens in monkeys (Macaca fascicularis). III. Reversal learning.

The nucleus accumbens (NA), which receives inputs from limbic structures and projects to the motor system, may be important for the association of reinforcement with action. There are projections to the NA from the amygdala and hippocampus. Discrimination and reversal learning tasks which are known to be disrupted by lesions to these areas in monkeys were given to monkeys with lesions of the NA. Twelve monkeys (Macaca fascicularis) were used in the present study. Six of these received ibotenic acid lesions which resulted in considerable cell loss in the NA; the remaining six acted as controls. The first group of six monkeys were taught a visual discrimination task pre-operatively. Post-operatively, these monkeys were tested on visual and spatial discrimination and reversal tasks. A second group of six monkeys were tested on a motor reversal task. The results indicate that ibotenic acid lesions of the NA transiently impair spatial but not visual reversal learning in monkeys. The NA lesions did not impair a monkey's ability to perform visual or spatial discriminations, or the ability to perform the motor learning or motor reversal tasks. Our results suggest that bilateral lesions of the NA in monkeys do not disrupt the ability to discriminate basic properties of reward-related stimuli or the formation of visual stimulus-reward associations. In addition, our results argue against theories which suggest that the NA is important for behavioural switching or general behavioural flexibility. We conclude that the NA may play a more specific role in the association of temporal and spatial cues with movement and reward.

Animals↗

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.

We investigated the functional anatomy of self-initiated and externally triggered movements. Six patients with Parkinson's disease off medication and six age-matched normals were assessed. All subjects had regional cerebral blood flow (rCBF) measurement with PET and recording of movement-related cortical potentials (MRPs) from frontal (F), fronto-central (FC), central (C) and parietal (P) sites to obtain measures of the Bereitschaftspotential (BP). The tasks were (i) self-initiated extension of the right index finger on average once every 3 s, (ii) externally triggered finger extension with the rate yoked to the self-initiated task, and (iii) rest condition with tones presented at a rate yoked with the self-initiated task. For the self-initiated movements, the amplitude of the early and peak BP were lower in Parkinson's disease relative to normals. For the externally triggered movements, the patients and the normals did not differ on any of the measures of cortical negativity prior to movement. For both groups, the late and peak BP components, but not the early component, had a lower amplitude in the externally triggered than the self-initiated movements. In normals, the left primary sensorimotor cortex, the supplementary motor area bilaterally, anterior cingulate, the lateral premotor cortex bilaterally, the insular cortex bilaterally, the left thalamus and the left putamen, parietal area 40 bilaterally and the right dorsolateral prefrontal cortex (DLPFC) were significantly activated during the self-initiated movements relative to rest. For the normals, greater activation of the right DLPFC during the self-initiated movements was the only area that significantly differentiated them from the externally triggered movements. When Parkinson's disease patients and normals were compared for the self-initiated movements relative to rest, normals showed greater activation of the supplementary motor area and anterior cingulate, left putamen, left insular cortex, right DLPFC and right parietal area 40. When the groups were compared for the externally triggered movements relative to rest, the global pattern of blood flow and rCBF change in the two groups did not differ, confirming the absence of group differences in BPs for the externally triggered movements. During the self-initiated movements, the lower amplitude of the early BP in patients with Parkinson's disease as well as the underactivation of the supplementary motor area relative to normals support the premises that (i) the supplementary motor area contributes to the early BP, and (ii) the deficit is self-initiated movements in Parkinson's disease is due to supplementary motor area underactivation. The DLPFC is activated in situations requiring non-routine decision making as in the self-initiated movements.

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Functional anatomy of the mental representation of upper extremity movements in healthy subjects.

1. Differences in the distribution of relative regional cerebral blood flow during motor imagery and execution of a joy-stick movement were investigated in six healthy volunteers with the use of positron emission tomography (PET). Both tasks were compared with a common baseline condition, motor preparation, and with each other. Data were analyzed for individual subjects and for the group, and areas of significant flow differences were related to anatomy by magnetic resonance imaging (MRI). 2. Imagining movements activated a number of frontal and parietal regions: medial and lateral premotor areas, anterior cingulate areas, ventral opercular premotor areas, and parts of superior and inferior parietal areas were all activated bilaterally when compared with preparation to move. 3. Execution of movements compared with imagining movements led to additional activations of the left primary sensorimotor cortex and adjacent areas: dorsal parts of the medial and lateral premotor cortex; adjacent cingulate areas; and rostral parts of the left superior parietal cortex. 4. Functionally distinct rostral and caudal parts of the posterior supplementary motor area (operationally defined as the SMA behind the coronal plane at the level of the anterior commissure) were identified. In the group, the rostral part of posterior SMA was activated by imagining movements, and a more caudoventral part was additionally activated during their execution. A similar dissociation was observed in the cingulate areas. Individual subjects showed that the precise site of these activations varied with the individual anatomy; however, a constant pattern of preferential activation within separate but adjacent gyri of the left hemisphere was preserved. 5. Functionally distinct regions were also observed in the parietal lobe: the caudal part of the superior parietal cortex [medial Brodmann area (BA) 7] was activated by imagining movements compared with preparing to execute them, whereas the more rostral parts of the superior parietal lobe (BA 5), mainly on the left, were additionally activated by execution of the movements. 6. Within the operculum, three functionally distinct areas were observed: rostrally, prefrontal areas (BA 44 and 45) were more active during imagined than executed movements; a ventral premotor area (BA 6) was activated during both imagined and executed movements; and more caudally in the parietal lobe, an area was found that was mainly activated by execution presumably SII. 7. These data suggest that imagined movements can be viewed as a special form of "motor behavior' that, when compared with preparing to move, activate areas associated heretofore with selection of actions and multisensory integration.(ABSTRACT TRUNCATED AT 400 WORDS)

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Relation between cerebral activity and force in the motor areas of the human brain.

1. Positron emission tomography (PET) studies were performed in six normal right-handed male volunteers (age 30 +/- 3) to investigate the relationship between cerebral activation as measured by relative regional cerebral blood flow (rCBF) and force peak exerted during right index finger flexion. The purpose was to determine in which central motor structures activity is directly correlated with force for repeatedly executed movements. 2. Twelve PET rCBF measurements were performed in each volunteer with the use of H2(15)O as a perfusion tracer. Volunteers pressed a Morse-key repetitively with their right index finger for 2 min while lying in a supine position in the PET camera. The device was fitted with strain gauges to measure the force peaks exerted upon it. Scans were collected twice each at five different levels of exerted force peak and in a resting state. Individual and group results were co-registered with anatomic magnetic resonance images (MRI). 3. Group analysis revealed four major regions with a high correlation between rCBF and different degrees of repetitively exerted force peaks. One was located in the arm area of the left lateral surface [primary somatosensory and motor cortex (SI, MI)]. The second area was situated on the left mesial surface of the brain, posterior to the anterior commissure (AC) and encompassing the first gyrus dorsal to the cingulate sulcus. This area is thought to be homologous to the posterior part of the supplementary motor area (SMA) in the monkey. The third area was the dorsal bank of the posterior cingulate sulcus. The fourth area showing a significant correlation between rCBF and force peaks was in the cerebellar vermis. 4. Individual PET data were co-registered with each individual's MRI in order to identify precisely the locations of structures demonstrating a positive correlation between rCBF and force peak. Activated areas on the mesial surface consisted of the same two distinct regions seen in the group data. In three subjects the focus on the lateral surface of the cortex appeared to extend into the caudal premotor area; in two it extended into the rostral part of the superior parietal area. In no subject did blood flow in the anterior cingulate areas and anterior SMA show a correlation with the force exerted. Cerebellar correlations were present in the vermis in all subjects.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

The nucleus accumbens in monkeys (Macaca fascicularis): I. The organization of behaviour.

A behavioural comparison was made between six unoperated control monkeys and six monkeys which received bilateral ibotenic acid lesions of the nucleus accumbens. Two of the control monkeys were subsequently given bilateral lesions of the anterior cingulate and medial frontal cortex (areas 24, 25 and 32) and were retested on the behavioural tasks. The NA lesioned monkeys, but not the anterior cingulate lesioned monkeys, were significantly impaired on a hoarding task in which they were required to remove 18 peanuts from their shells and store them in their cheek pouches. These same monkeys were not impaired when the nuts were presented without shells. Evidence is provided which suggests that this deficit is not motivational or due to gross motor impairments. A second task in which the animals were required to search through four boxes to retrieve food revealed a decrease in the tendency for the NA and cingulate lesioned animals to use an organized pattern of searching. Both groups were found to return to a previously opened box more often than controls. However, neither group showed signs of perseverative behaviour. Data from a ten-box version of this task suggest that these return errors were not due to a decrease in working memory. Together these studies suggest that both the NA and the anterior cingulate cortex contribute to the ability to organize behaviour temporally and spatially.

Animals↗

Identification of the central vestibular projections in man: a positron emission tomography activation study.

The cerebral representation of space depends on the integration of many different sensory inputs. The vestibular system provides one such input and its dysfunction can cause profound spatial disorientation. Using positron emission tomography (PET), we measured regional cerebral perfusion with various vestibular stimulations to map central vestibular projections and to investigate the cerebral basis of spatial disorientation. We showed that the temporoparietal cortex, the insula, the putamen, and the anterior cingulate cortex are the cerebral projections of the vestibular system in man and that the spatial disorientation caused by unilateral vestibular stimulation is associated with their asymmetric activation.

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Reorganization of cortical blood flow and transcranial magnetic stimulation maps in human subjects after upper limb amputation.

1. Two complimentary techniques were used to study cortical function in six human upper limb amputees: positron emission tomographic (PET) measurements of regional cerebral blood flow (rCBF) were made in subjects during limb movements to study activation of the primary motor (M1), primary somatosensory (S1), and association cortices; and electromyographic responses to transcranial magnetic stimulation (TMS) were measured in proximal upper limb muscles to assess the excitability of corticospinal neurons in subjects at rest. 2. To explore possible cortical mechanisms governing the phantom limb phenomenon, PET and TMS findings were compared between subjects with acquired, traumatic upper limb amputations (n = 3), in whom phantom limb symptoms were prominent, and congenital upper limb amputees (n = 3) without phantom limbs. 3. Paced shoulder movements were associated with significant blood flow increases in the contralateral M1/S1 cortex of both groups of amputees. In traumatic amputees, these increases were present over a wider area and were of significantly greater magnitude in the partially deafferented cortex contralateral to the amputation. In congenital amputees blood flow increases were also present over a wider area in the partially deafferented M1/S1 cortex, but their magnitude was not significantly different from that in the normally afferented M1/S1 cortex. 4. Abnormal blood flow increases also were present in the partially deafferented M1/S1 cortex of traumatic amputees during movement of the ipsilateral, intact arm. Abnormal ipsilateral M1/S1 responses were not present during movement of the intact arm in the congenital group. 5. TMS studies showed that the abnormal blood flow increases in the partially deafferented M1 cortex of traumatic amputees were associated with increased corticospinal excitability.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Cortical function in progressive lower motor neuron disorders and amyotrophic lateral sclerosis: a comparative PET study.

OBJECTIVE: To compare cortical function at rest and during limb movement in patients with progressive lower motor neuron degeneration (LMND) and amyotrophic lateral sclerosis (ALS). METHODS: PET was used to measure regional cerebral blood flow (rCBF) in five patients with progressive LMND, six patients with classic ALS with a similar degree of motor impairment, and six age-matched control subjects; measurements were taken in the resting state and while subjects moved a joystick with their right hand. RESULTS: rCBF at rest in the primary sensorimotor cortex (SMC) was significantly (p < 0.001) lower in ALS patients than in control subjects or LMND patients. rCBF at rest did not differ significantly between LMND patients and controls. During joystick movement, ALS patients showed significantly (p < 0.001) greater rCBF increases than controls or LMND patients in the hand/arm area of the SMC bilaterally, the face area of the contralateral SMC, the second somatic sensory (SII) cortex bilaterally, and the contralateral premotor and supplementary motor cortices. LMND patients showed significantly (p < 0.001) greater rCBF increases than controls and ALS patients only in the anterior insular cortex bilaterally. CONCLUSIONS: The finding of reduced rCBF at rest, together with abnormal bilateral activation and altered somatotopy during movement, in the sensorimotor cortex of ALS but not LMND patients suggests that these abnormalities reflect loss of pyramidal neurons. Abnormal activation of perisylvian areas (insular and SII cortices) during limb movement in both LMND and ALS patients suggests that these may be accessory sensorimotor areas that are recruited nonspecifically in response to limb weakness.

Adult↗

Motor sequence learning: a study with positron emission tomography.

We have used positron emission tomography to study the functional anatomy of motor sequence learning. Subjects learned sequences of keypresses by trial and error using auditory feedback. They were scanned with eyes closed under three conditions: at rest, while performing a sequence that was practiced before scanning until overlearned, and while learning new sequences at the same rate of performance. Compared with rest, both sequence tasks activated the contralateral sensorimotor cortex to the same extent. Comparing new learning with performance of the prelearned sequence, differences in activation were identified in other areas. (1) Prefrontal cortex was only activated during new sequence learning. (2) Lateral premotor cortex was significantly more activated during new learning, whereas the supplementary motor area was more activated during performance of the prelearned sequence. (3) Activation of parietal association cortex was present during both motor tasks, but was significantly greater during new learning. (4) The putamen was equally activated by both conditions. (5) The cerebellum was activated by both conditions, but the activation was more extensive and greater in degree during new learning. There was an extensive decrease in the activity of prestriate cortex, inferotemporal cortex, and the hippocampus in both active conditions, when compared with rest. These decreases were significantly greater during new learning. We draw three main conclusions. (1) The cerebellum is involved in the process by which motor tasks become automatic, whereas the putamen is equally activated by sequence learning and retrieval, and may play a similar role in both. (2) When subjects learn new sequences of motor actions, prefrontal cortex is activated. This may reflect the need to generate new responses. (3) Reduced activity of areas concerned with visual processing, particularly during new learning, suggests that selective attention may involve depressing the activity of cells in modalities that are not engaged by the task.

Adult↗

Cortical function in amyotrophic lateral sclerosis. A positron emission tomography study.

Positron emission tomography was used to measure regional cerebral blood flow (rCBF) in 12 patients with amyotrophic lateral sclerosis (ALS) and six age-matched controls. Scans were performed at rest, and while subjects performed stereotyped and freely selected movements of a joystick with their right hand. Statistical parametric mapping was used to determine significant differences in rCBF between the two groups at rest and during activation. The ALS group showed no significant difference in global cerebral blood flow at rest compared with controls. However, rCBF at rest was significantly (P < 0.01) reduced in the ALS group in the primary sensorimotor cortex, the lateral premotor cortex, the supplementary motor area, the anterior cingulate cortex, the paracentral lobule and the superior and inferior parietal cortex. Comparison of the increase in rCBF caused by freely selected joystick movements over the resting state between the two groups of subjects showed significantly (P < 0.001) greater activation in ALS patients in the ventral third (face area) of the contralateral primary sensorimotor cortex and in the adjacent contralateral ventral premotor and parietal association cortices; significantly (P < 0.01) greater activation of the contralateral anterior insula and the ipsilateral anterior cingulate cortex (dorso-caudal area 24) was also present in ALS patients. When a comparison of the rCBF response to the free selection task with that to the stereotyped task was performed between the two groups of subjects, ALS patients showed significantly impaired (P < 0.01) activation of the rostral anterior cingulate cortex (area 32), medial prefrontal cortex (area 10), left parahippocampal gyrus and retrosplenial cortex. The pattern of reduced rCBF at rest in ALS patients probably reflects a combination of neuronal loss in all areas of cortex projecting through the pyramidal tract together with loss of projections from the sensorimotor cortex to the motor association areas. The expansion of the upper limb output zone of the sensorimotor cortex in ALS patients during contralateral upper limb movement may represent cortical reorganization in response to Betz cell loss or corticospinal tract disruption. Abnormal recruitment of non-primary motor areas may also represent functional adaptation to a corticospinal tract lesion. Focally impaired activation of the medial prefrontal cortex and parahippocampal gyrus in ALS patients during the process of internal generation of movement could underlie the frontal lobe cognitive deficits reported in previous neuropsychological studies of ALS.

Adult↗

The relationship between abnormalities of cognitive function and cerebral activation in amyotrophic lateral sclerosis. A neuropsychological and positron emission tomography study.

Neuropsychological assessment of 16 clinically non-demented patients with amyotrophic lateral sclerosis (ALS) and 16 age-matched controls revealed significantly (P < 0.05) impaired verbal fluency and picture recall in the ALS patients. On the basis of their verbal fluency scores, two subgroups of the ALS patients (five high, five low scores) and a different group of five age-matched controls then underwent positron emission tomographic (PET) measurement of regional cerebral blood flow (rCBF). Scans were performed in the resting state and while subjects performed stereotyped or freely selected movements of a joystick with their right hand. The pattern of cerebral activation associated with self-generated activity was determined by comparing the profile of rCBF during freely selected and stereotyped joystick movements. Statistical parametric mapping was used to determine significant differences in rCBF between the groups at rest and during activation. Regional cerebral blood flow at rest was significantly (P < 0.01) reduced in the anterior cingulate cortex of both ALS subgroups in comparison with controls. The profile of cortical and subcortical activation during performance of freely selected joystick movements relative to stereotyped movements was abnormal in ALS patients: (i) ALS patients with a normal fluency score showed significantly (P < 0.01) attenuated rCBF responses in comparison with controls in the left medial prefrontal cortex (Brodmann area 10) and the right and left parahippocampal gyri; (ii) ALS patients with impaired verbal fluency showed significantly (P < 0.01) attenuated rCBF responses in comparison with controls in the right and left medial prefrontal cortex (areas 9 and 10), the rostral aspects of the right anterior cingulate cortex (areas 24 and 32), the right parahippocampal gyrus and the anterior thalamic nuclear complex; (iii) ALS patients with impaired verbal fluency showed significantly (P < 0.01) attenuated rCBF responses in comparison with patients with normal verbal fluency in the right parahippocampal gyrus, the anterior thalamic nuclear complex and the rostral anterior cingulate cortex (area 24). Regional cerebral blood flow at rest in the right parahippocampal gyrus of ALS patients was significantly correlated with verbal fluency score (P = 0.01) and picture recall score (P = 0.01). Activation of the anterior thalamic nuclear complex in ALS patients was also significantly correlated with verbal fluency score (P = 0.001) and picture recall score (P = 0.01). The results show that abnormalities of function are present in regions along a limbo-thalamo-cortical pathway in some ALS patients during performance of a self-generated motor task.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Motor practice and neurophysiological adaptation in the cerebellum: a positron tomography study.

We have used positron tomography (PET) to demonstrate that some parts of the motor system exhibit physiological adaptation during the repeated performance of a simple motor task, but others do not. In contrast to the primary sensori-motor cortex, the cerebellum exhibits a decrease in physiological activation (increases in regional blood flow during performance) with practice. A new application of factorial experimental design to PET activation studies was used to make these measurements in four normal males. This design allowed adaptation to be examined by testing for an interaction between regional cerebral blood flow (rCBF) increases brought about by a motor task and the number of trials (time). These findings are interpreted as the neurophysiological correlates of synaptic changes in the cerebellum associated with motor learning in man.

Adaptation, Physiological↗

Impaired mesial frontal and putamen activation in Parkinson's disease: a positron emission tomography study.

Selection of movement in normal subjects has been shown to involve the premotor, supplementary motor, anterior cingulate, posterior parietal, and dorsolateral prefrontal areas. In Parkinson's disease (PD), the primary pathological change is degeneration of the nigrostriatal dopaminergic projections, and this is associated with difficulty in initiating actions. We wished to investigate the effect of the nigral abnormality in PD on cortical activation during movement. Using C15O2 and positron emission tomography (PET), we studied regional cerebral blood flow in 6 patients with PD and 6 control subjects while they performed motor tasks. Subjects were scanned while at rest, while repeatedly moving a joystick forward, and while freely choosing which of four possible directions to move the joystick. Significant increases in regional cerebral blood flow were determined with covariance analysis. In normal subjects, compared to the rest condition, the free-choice task activated the left primary sensorimotor cortex, left premotor cortex, left putamen, right dorsolateral prefrontal cortex and supplementary motor area, anterior cingulate area, and parietal association areas bilaterally. In the patients with PD, for the free-choice task, compared with the rest condition, there was significant activation in the left sensorimotor and premotor cortices but there was impaired activation of the contralateral putamen, the anterior cingulate, supplementary motor area, and dorsolateral prefrontal cortex. Impaired activation of the medial frontal areas may account for the difficulties PD patients have in initiating movements.

Aged↗