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The effects of a spaceflight analog with elevated CO2 on sensorimotor adaptation.

Authors :
Banker, Lauren A.
Salazar, Ana Paula
Lee, Jessica K.
Beltran, Nichole E.
Kofman, Igor S.
De Dios, Yiri E.
Mulder, Edwin
Bloomberg, Jacob J.
Mulavara, Ajitkumar P.
Seidler, Rachael D.
Source :
Journal of Neurophysiology; Feb2021, Vol. 125 Issue 2, p426-436, 11p
Publication Year :
2021

Abstract

Aboard the International Space Station (ISS), astronauts must adapt to altered vestibular and somatosensory inputs due to microgravity. Sensorimotor adaptation on Earth is often studied with a task that introduces visuomotor conflict. Retention of the adaptation process, known as savings, can be measured when subjects are exposed to the same adaptive task multiple times. It is unclear how adaptation demands found on the ISS might interfere with the ability to adapt to other sensory conflict at the same time. In the present study, we investigated the impact of 30 days' head-down tilt bed rest combined with elevated carbon dioxide (HDBR þ CO<subscript>2</subscript>) as a spaceflight analog on sensorimotor adaptation. Eleven subjects used a joystick to move a cursor to targets presented on a computer screen under veridical cursor feedback and 45° rotated feedback. During this NASA campaign, five individuals presented with optic disk edema, a sign of spaceflight-associated neuro-ocular syndrome (SANS). Thus, we also performed post hoc exploratory analyses between subgroups who did and did not show signs of SANS. HDBR þ CO<subscript>2</subscript> had some impact on sensorimotor adaptation, with a lack of savings across the whole group. SANS individuals showed larger, more persistent after-effects, suggesting a shift from relying on cognitive to more implicit processing of adaptive behaviors. Overall, these findings suggest that HDBR þ CO<subscript>2</subscript> alters the way in which individuals engage in sensorimotor processing. These findings have important implications for missions and mission training, which require individuals to adapt to altered sensory inputs over long periods in space. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00223077
Volume :
125
Issue :
2
Database :
Complementary Index
Journal :
Journal of Neurophysiology
Publication Type :
Academic Journal
Accession number :
148607843
Full Text :
https://doi.org/10.1152/jn.00306.2020