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The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia

Intracortical brain-computer interfaces (iBCIs) have the potential to restore hand grasping and object interaction to individuals with tetraplegia. Optimal grasping and object interaction require simultaneous production of both force and grasp outputs. However, since overlapping neural populations a...

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Autores principales: Rastogi, Anisha, Willett, Francis R., Abreu, Jessica, Crowder, Douglas C., Murphy, Brian A., Memberg, William D., Vargas-Irwin, Carlos E., Miller, Jonathan P., Sweet, Jennifer, Walter, Benjamin L., Rezaii, Paymon G., Stavisky, Sergey D., Hochberg, Leigh R., Shenoy, Krishna V., Henderson, Jaimie M., Kirsch, Robert F., Ajiboye, A. Bolu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7920535/
https://www.ncbi.nlm.nih.gov/pubmed/33495242
http://dx.doi.org/10.1523/ENEURO.0231-20.2020
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author Rastogi, Anisha
Willett, Francis R.
Abreu, Jessica
Crowder, Douglas C.
Murphy, Brian A.
Memberg, William D.
Vargas-Irwin, Carlos E.
Miller, Jonathan P.
Sweet, Jennifer
Walter, Benjamin L.
Rezaii, Paymon G.
Stavisky, Sergey D.
Hochberg, Leigh R.
Shenoy, Krishna V.
Henderson, Jaimie M.
Kirsch, Robert F.
Ajiboye, A. Bolu
author_facet Rastogi, Anisha
Willett, Francis R.
Abreu, Jessica
Crowder, Douglas C.
Murphy, Brian A.
Memberg, William D.
Vargas-Irwin, Carlos E.
Miller, Jonathan P.
Sweet, Jennifer
Walter, Benjamin L.
Rezaii, Paymon G.
Stavisky, Sergey D.
Hochberg, Leigh R.
Shenoy, Krishna V.
Henderson, Jaimie M.
Kirsch, Robert F.
Ajiboye, A. Bolu
author_sort Rastogi, Anisha
collection PubMed
description Intracortical brain-computer interfaces (iBCIs) have the potential to restore hand grasping and object interaction to individuals with tetraplegia. Optimal grasping and object interaction require simultaneous production of both force and grasp outputs. However, since overlapping neural populations are modulated by both parameters, grasp type could affect how well forces are decoded from motor cortex in a closed-loop force iBCI. Therefore, this work quantified the neural representation and offline decoding performance of discrete hand grasps and force levels in two human participants with tetraplegia. Participants attempted to produce three discrete forces (light, medium, hard) using up to five hand grasp configurations. A two-way Welch ANOVA was implemented on multiunit neural features to assess their modulation to force and grasp. Demixed principal component analysis (dPCA) was used to assess for population-level tuning to force and grasp and to predict these parameters from neural activity. Three major findings emerged from this work: (1) force information was neurally represented and could be decoded across multiple hand grasps (and, in one participant, across attempted elbow extension as well); (2) grasp type affected force representation within multiunit neural features and offline force classification accuracy; and (3) grasp was classified more accurately and had greater population-level representation than force. These findings suggest that force and grasp have both independent and interacting representations within cortex, and that incorporating force control into real-time iBCI systems is feasible across multiple hand grasps if the decoder also accounts for grasp type.
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spelling pubmed-79205352021-03-02 The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia Rastogi, Anisha Willett, Francis R. Abreu, Jessica Crowder, Douglas C. Murphy, Brian A. Memberg, William D. Vargas-Irwin, Carlos E. Miller, Jonathan P. Sweet, Jennifer Walter, Benjamin L. Rezaii, Paymon G. Stavisky, Sergey D. Hochberg, Leigh R. Shenoy, Krishna V. Henderson, Jaimie M. Kirsch, Robert F. Ajiboye, A. Bolu eNeuro Research Article: New Research Intracortical brain-computer interfaces (iBCIs) have the potential to restore hand grasping and object interaction to individuals with tetraplegia. Optimal grasping and object interaction require simultaneous production of both force and grasp outputs. However, since overlapping neural populations are modulated by both parameters, grasp type could affect how well forces are decoded from motor cortex in a closed-loop force iBCI. Therefore, this work quantified the neural representation and offline decoding performance of discrete hand grasps and force levels in two human participants with tetraplegia. Participants attempted to produce three discrete forces (light, medium, hard) using up to five hand grasp configurations. A two-way Welch ANOVA was implemented on multiunit neural features to assess their modulation to force and grasp. Demixed principal component analysis (dPCA) was used to assess for population-level tuning to force and grasp and to predict these parameters from neural activity. Three major findings emerged from this work: (1) force information was neurally represented and could be decoded across multiple hand grasps (and, in one participant, across attempted elbow extension as well); (2) grasp type affected force representation within multiunit neural features and offline force classification accuracy; and (3) grasp was classified more accurately and had greater population-level representation than force. These findings suggest that force and grasp have both independent and interacting representations within cortex, and that incorporating force control into real-time iBCI systems is feasible across multiple hand grasps if the decoder also accounts for grasp type. Society for Neuroscience 2021-02-23 /pmc/articles/PMC7920535/ /pubmed/33495242 http://dx.doi.org/10.1523/ENEURO.0231-20.2020 Text en Copyright © 2021 Rastogi et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article: New Research
Rastogi, Anisha
Willett, Francis R.
Abreu, Jessica
Crowder, Douglas C.
Murphy, Brian A.
Memberg, William D.
Vargas-Irwin, Carlos E.
Miller, Jonathan P.
Sweet, Jennifer
Walter, Benjamin L.
Rezaii, Paymon G.
Stavisky, Sergey D.
Hochberg, Leigh R.
Shenoy, Krishna V.
Henderson, Jaimie M.
Kirsch, Robert F.
Ajiboye, A. Bolu
The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title_full The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title_fullStr The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title_full_unstemmed The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title_short The Neural Representation of Force across Grasp Types in Motor Cortex of Humans with Tetraplegia
title_sort neural representation of force across grasp types in motor cortex of humans with tetraplegia
topic Research Article: New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7920535/
https://www.ncbi.nlm.nih.gov/pubmed/33495242
http://dx.doi.org/10.1523/ENEURO.0231-20.2020
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