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Biomedical subjects

Marian Saling

Publications and source records attributed to Marian Saling.

2 recordsLinked to original sources

Postural reactions to neck vibration in Parkinson's disease.

To test the hypothesis that reduced reactions to proprioceptive input signals contribute to postural instability in Parkinson's disease (PD), pulses of mechanical vibration were applied to the neck muscles of PD patients and healthy controls. This stimulus elicits postural reactions in standing subjects. Participating were 13 moderately affected PD patients, 13 severely affected PD patients, and 13 age-matched healthy subjects. Patients were tested on and off medication. Three-second-long pulses of vibration were regularly (10 times) applied to the posterior neck muscles while subjects kept their eyes open or closed. Postural responses to the stimuli were measured by static posturography. No intergroup difference in the pattern and latencies of responses was found. However, the amplitudes of the postural reactions (shift of center of foot pressure) were significantly larger in advanced PD patients; those of moderately affected PD patients did not differ from those of control subjects. Moreover, the size of postural responses in both latter groups decreased across the trial contrary to that of advanced PD patients. Comparison of the measures during on and off testing revealed no significant differences. These results indicate that neither afferent proprioceptive deficits nor central integrative functions but rather scaling and habituation of erroneous proprioceptive information are disturbed in the postural control of advanced PD. Nondopaminergic structures seem to be responsible for this impairment.

Afferent Pathways↗

Alterations in transport path differentially affect temporal and spatial movement parameters.

Many studies have examined the coordination of reach-to-grasp movements. However, there is debate regarding the mechanism of coordination between the transport and grasp components. The current study investigated the stability of temporal and spatial measures for reaches in which transport path was altered early or late in the reaching action. Transport alteration was accomplished by placing an obstacle either 10 cm (near) or 20 cm (far) from the hand starting position. Obstacle location affected the formation of transport path such that maximum wrist elevation coincided with the location of the obstacle. Kinematic analyses revealed that reaches over the near obstacle significantly prolonged transport time and time to maximum velocity compared with reaches over the far obstacle. A similar pattern of results was observed for the grasp component; reaches over the near obstacle resulted in a prolongation of grip duration, time to maximum aperture, and time to maximum opening and closing velocity. Grip closing velocity was decreased in the obstacle conditions. These results confirm findings from earlier studies that have shown that changes in the transport component affect grasp formation. A spatial and temporal analysis of grasp opening and closing was also performed. Grasp closing time varied significantly between conditions, while closing distance or the distance traveled by the wrist after maximum aperture remained essentially constant across conditions. These results suggest that the central nervous system may be using a spatial controller to coordinate prehensile components.

Adult↗