DocumentCode :
1135354
Title :
Multiple Types of Movement-Related Information Encoded in Hindlimb/Trunk Cortex in Rats and Potentially Available for Brain–Machine Interface Controls
Author :
Song, Weiguo ; Ramakrishnan, Arun ; Udoekwere, Ubong I. ; Giszter, Simon F.
Author_Institution :
Dept. of Neurobiol. & Anatomy, Drexel Univ., Philadelphia, PA, USA
Volume :
56
Issue :
11
fYear :
2009
Firstpage :
2712
Lastpage :
2716
Abstract :
Brain-machine interface (BMI) systems hold the potential to return lost functions to patients with motor disorders. To date, most efforts in BMI have concentrated on decoding neural activity from forearm areas of cortex to operate a robotic arm or perform other manipulation tasks. Efforts have neglected the locomotion functions of hindlimb/trunk cortex. However, the role of cortex in hindlimb locomotion of intact rats, which are often model systems for BMI testing, is usually considered to be small. Thus, the quality of representations of locomotion available in this area was uncertain. We designed a new rodent BMI system, and tested decoding of the kinematics of trunk and hindlimbs during locomotion using linear regression. Recordings were made from the motor cortex of the hindlimb/trunk area in rats using arrays of six tetrodes (24 channels total). We found that multiple movement-related variables could be decoded simultaneously during locomotion, ranging from the proximal robot/pelvis attachment point, and the distal toe position, through hindlimb joint angles and limb endpoint in a polar coordinate system. Remarkably, the best reconstructed motion parameters were the more proximal kinematics, which might relate to global task variables. The pelvis motion was significantly better reconstructed than any other motion features.
Keywords :
biomechanics; brain-computer interfaces; decoding; medical robotics; neurophysiology; brain-machine interface controls; distal toe position; hindlimb-trunk cortex; linear regression; locomotion; motor disorders; movement-related information; neural activity decoding; proximal robot-pelvis attachment point; rats; robotic arm; tetrode arrays; Anatomy; Animals; Biological materials; Biomedical engineering; Biomedical materials; Brain; Brain modeling; Decoding; Medical treatment; Pelvis; Permission; Rats; Robot kinematics; Rodents; System testing; Brain–machine interface (BMI); locomotion; motor cortex; trunk/hindlimb; Animals; Brain Mapping; Electroencephalography; Evoked Potentials, Motor; Hindlimb; Locomotion; Motor Cortex; Rats; Rats, Sprague-Dawley; User-Computer Interface;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2009.2026284
Filename :
5165083
Link To Document :
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