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Nietschmann, P.

Publications and source records attributed to Nietschmann, P..

2 recordsLinked to original sources

Learning a reversed bicycle disrupts predictive control and induces interference with the normal bicycle

Motor skills such as bicycle riding are considered robust and transferable across bicycle types. However, when the steering direction is inverted (reversed bicycle) control is disrupted to the extent that the bicycle cannot be ridden. With sufficient practice, the reversed bicycle can be learned, but this learning appears to produce impairment of normal bicycle riding suggesting modification of this long-established motor memory. Here we investigate the learning process of riding a reversed bicycle over four days of practice, while repeatedly assessing normal bicycle performance to measure any potential interference. Introduction of the reversed bicycle disrupted predictive control, reflected in a consistently increased time lag in the steering-roll coupling during reversed bicycle trials. This increase in delay suggests that predictive behavior in normal bicycle riding cannot be transferred to the reversed bicycle. With training, some participants successfully learned to ride the reversed bicycle by gradually reorganizing this coupling, whereas others failed to acquire this inverted coupling. Notably, even short-term exposure to the reversed bicycle interfered with normal bicycle riding, reducing distance ridden and increasing variability in steering rate. Together, we show that even a highly practiced whole-body motor skill is susceptible to rapid interference when control dynamics are altered.

neuroscience↗

Long-term development of a motor memory

Human behavior is developed through continuous adaptation to our environment over a range of timescales. Extensive studies have investigated the mechanisms and computations underlying this process of sensorimotor adaptation using several hundred trials. However, most of our motor skills have had countless hours of practice. Here we study a simple motor adaptation task using thousands of training trials over multiple weeks to study the long-term development of a motor memory, and examine changes in adaptation, retention, inter-limb transfer, decay, spontaneous recovery and generalization. Unlike previous studies, participants showed complete compensation to the novel dynamics, along with long-term increases in retention and spontaneous recovery. Moreover, we find narrowing in the angular generalization, suggesting continual tuning of the motor memory to the task. This demonstrates the extensive changes occurring with longer training of motor tasks, highlighting their importance in studies of sensorimotor control, rehabilitation and training.

neuroscience↗