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Donna S Hoffman

Publications and source records attributed to Donna S Hoffman.

3 recordsLinked to original sources

Rapid and long-lasting plasticity of input-output mapping.

Skilled use of tools requires us to learn an "input-output map" for the device, i.e., how our movements relate to the actions of the device. We used the paradigm of visuo-motor rotation to examine two questions about the plasticity of input-output maps: 1) does extensive practice on one mapping make it difficult to modify and/or to form a new input-output map and 2) once a map has been modified or a new map has been formed, does this map survive a gap in performance? Humans and monkeys made wrist movements to control the position of a cursor on a computer monitor. Humans practiced the task for approximately 1.5 h; monkeys practiced for 3-9 yr. After this practice, we gradually altered the direction of cursor movement relative to wrist movement while subjects moved either to a single target or to four targets. Subjects were unaware of the change in cursor-movement relationship. Despite their prior practice on the task, the humans and the monkeys quickly adjusted their motor output to compensate for the visuo-motor rotation. Monkeys retained the modified input-output map during a 2-wk gap in motor performance. Humans retained the altered map during a gap of >1 yr. Our results show that sensorimotor performance remains flexible despite considerable practice on a specific task, and even relatively short-term exposure to a new input-output mapping leads to a long-lasting change in motor performance.

Adult↗

Deficits in movements of the wrist ipsilateral to a stroke in hemiparetic subjects.

We examined step-tracking movements of the wrist and associated EMG activity in seven patients (age range, 27-73 yr) and in seven normal subjects that were matched to patients in age, sex, and handedness. All patients exhibited a hemiparesis that resulted from a unilateral cerebrovascular accident (CVA) that included motor areas in the frontal lobe or their efferents. The lesion in three patients was in their dominant hemisphere. The patients were tested 1-48 mo following their CVA. They had great difficulty in performing or were unable to perform step-tracking movements with the contralesional wrist. In addition, the patients displayed striking deficits in wrist movements and muscle activity of the ipsilesional wrist. These movements were >50% slower than those of controls. The initial movement step routinely undershot the target and was only 63% as large as that of controls. The patients made wrist movements with marked directional errors requiring corrective responses. These errors were due largely to inappropriate temporal sequencing of muscle activity. The deficits in movement and muscle activity in the wrist ipsilesional to a CVA were marked, regardless of whether the lesion was in the dominant or nondominant hemisphere. These observations indicate that unilateral lesions can have significant bilateral effects on the generation and control of distal limb movements.

Adult↗

Sensorimotor transformations in cortical motor areas.

A central problem in motor research has been to understand how sensory signals are transformed to generate a goal-directed movement. This problem has been formulated as a set of coordinate transformations that begins with an extrinsic coordinate frame representing the spatial location of a target and ends with an intrinsic coordinate frame describing muscle activation patterns. Insight into this process of sensorimotor transformation can be gained by examining the coordinate frames of neuronal activity in interconnected regions of the brain. We recorded the activity of neurons in primary motor cortex (M1) and ventral premotor cortex (PMv) in a monkey trained to perform a task which dissociates three major coordinate frames of wrist movement: muscle, wrist joint, and an extrinsic coordinate frame. We found three major types of neurons in M1 and PMv. The first type was termed 'extrinsic-like'. The activity of these neurons appeared to encode the direction of movement in space independent of the patterns of wrist muscle activity or joint movement that produced the movements. The second type was termed 'extrinsic-like with gain modulation'. The activity of these neurons appeared to encode the direction of movement in space, but the magnitude (gain) of neuronal activity depended on the posture of the forearm. The third type was termed 'muscle-like' since their activity co-varied with muscle activity. The great majority of the directionally-tuned neurons in the PMv were classified as 'extrinsic-like' (48/59, 81%). A smaller group was classified as 'extrinsic-like with gain modulation' (7/59, 12%). In M1, the three types of neurons were more equally represented. Our results raise the possibility that cortical processing between M1 and PMv may contribute to a sensorimotor transformation between extrinsic and intrinsic coordinate frames. Recent modeling studies have demonstrated the computational plausibility of such a process.

Animals↗