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Sarlegna, F. R.

Publications and source records attributed to Sarlegna, F. R..

2 recordsLinked to original sources

Implicit motor adaptation and perceived hand position without proprioception: A kinesthetic error may be derived from efferent signals

Implicit sensorimotor adaptation keeps our movements well-calibrated amid changes in the body and environment. We have recently postulated that implicit adaptation is driven by a perceptual error: the difference between the desired and perceived movement outcome. According to this perceptual re-alignment model, implicit adaptation ceases when the perceived movement outcome - a multimodal percept determined by a prior belief conveying the intended action, the motor command, and feedback from proprioception and vision - is aligned with the desired movement outcome. Here, we examined the role of proprioception in implicit motor adaptation and perceived movement outcome by examining individuals who lack proprioception. We used a modified visuomotor rotation task designed to isolate implicit adaptation and probe perceived outcome throughout the experiment. Surprisingly, implicit adaptation and perceived outcome were minimally impacted by deafferentation, posing a challenge to the perceptual re-alignment model of implicit adaptation.

neuroscience↗

Performance During Whole Body Reaching Movements Is Impaired In Hypergravity While Preserved In Microgravity

While recent findings demonstrated the importance of contextual estimates about gravity for optimal motor control, it remains unclear how gravitational changes are taken into account by the central nervous system to perform complex motor skills. Here, we investigated the effect of microgravity and hypergravity on the neuromuscular control of whole-body reaching movements compared to normogravity. Standing participants (n=9) had to reach toward visual targets during parabolic flights, which allowed us to test the influence of gravity level on sensorimotor planning and control processes. Also, to specifically test the efficiency of online motor control mechanisms, unexpected mechanical perturbations were used. Whole-body kinematics and muscular activity were adjusted in microgravity, allowing arm reaching to be as accurate as in normogravity. In contrast, systematic undershooting was observed in hypergravity, where main parameters of whole-body kinematics remained unchanged and muscle activations insufficiently adjusted to keep the same accuracy as in normogravity. Conversely, muscular synergies exhibited during whole-body reaching were found similar in the various gravitational contexts, as were local muscular adjustments in response to unexpected mechanical perturbations. This suggests that online feedback control remains functional across very distinct gravitational environments. Overall, our findings demonstrates that hypergravity creates challenges that the human sensorimotor system is unable to solve rapidly, contrary to microgravity.

neuroscience↗