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Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats

Nerve injury requiring surgical repair often results in poor functional recovery due to the inability of host axons to re-grow long distances and reform meaningful connections with the target muscle. While surgeons can re-route local axon fascicles to the target muscle, there are no technologies to...

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Autores principales: Burrell, Justin C., Das, Suradip, Laimo, Franco A., Katiyar, Kritika S., Browne, Kevin D., Shultz, Robert B., Tien, Vishal J., Vu, Phuong T., Petrov, Dmitriy, Ali, Zarina S., Rosen, Joseph M., Cullen, D. Kacy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8965778/
https://www.ncbi.nlm.nih.gov/pubmed/35415305
http://dx.doi.org/10.1016/j.bioactmat.2022.03.018
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author Burrell, Justin C.
Das, Suradip
Laimo, Franco A.
Katiyar, Kritika S.
Browne, Kevin D.
Shultz, Robert B.
Tien, Vishal J.
Vu, Phuong T.
Petrov, Dmitriy
Ali, Zarina S.
Rosen, Joseph M.
Cullen, D. Kacy
author_facet Burrell, Justin C.
Das, Suradip
Laimo, Franco A.
Katiyar, Kritika S.
Browne, Kevin D.
Shultz, Robert B.
Tien, Vishal J.
Vu, Phuong T.
Petrov, Dmitriy
Ali, Zarina S.
Rosen, Joseph M.
Cullen, D. Kacy
author_sort Burrell, Justin C.
collection PubMed
description Nerve injury requiring surgical repair often results in poor functional recovery due to the inability of host axons to re-grow long distances and reform meaningful connections with the target muscle. While surgeons can re-route local axon fascicles to the target muscle, there are no technologies to provide an exogenous source of axons without sacrificing healthy nerves. Accordingly, we have developed tissue engineered neuromuscular interfaces (TE-NMIs) as the first injectable microtissue containing motor and sensory neurons in an anatomically-inspired architecture. TE-NMIs provide axon tracts that are intended to integrate with denervated distal structures and preserve regenerative capacity during prolonged periods without host innervation. Following implant, we found that TE-NMI axons promoted Schwann cell maintenance, integrated with distal muscle, and preserved an evoked muscle response out to 20-weeks post nerve transection in absence of innervation from host axons. By repopulating the distal sheath with exogenous axons, TE-NMIs also enabled putative delayed fusion with proximal host axons, a phenomenon previously not achievable in delayed repair scenarios due to distal axon degeneration. Here, we found immediate electrophysiological recovery after fusion with proximal host axons and improved axon maturation and muscle reinnervation at 24-weeks post-transection (4-weeks following delayed nerve fusion). These findings show that TE-NMIs provide the potential to improve functional recovery following delayed nerve repair.
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spelling pubmed-89657782022-04-11 Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats Burrell, Justin C. Das, Suradip Laimo, Franco A. Katiyar, Kritika S. Browne, Kevin D. Shultz, Robert B. Tien, Vishal J. Vu, Phuong T. Petrov, Dmitriy Ali, Zarina S. Rosen, Joseph M. Cullen, D. Kacy Bioact Mater Article Nerve injury requiring surgical repair often results in poor functional recovery due to the inability of host axons to re-grow long distances and reform meaningful connections with the target muscle. While surgeons can re-route local axon fascicles to the target muscle, there are no technologies to provide an exogenous source of axons without sacrificing healthy nerves. Accordingly, we have developed tissue engineered neuromuscular interfaces (TE-NMIs) as the first injectable microtissue containing motor and sensory neurons in an anatomically-inspired architecture. TE-NMIs provide axon tracts that are intended to integrate with denervated distal structures and preserve regenerative capacity during prolonged periods without host innervation. Following implant, we found that TE-NMI axons promoted Schwann cell maintenance, integrated with distal muscle, and preserved an evoked muscle response out to 20-weeks post nerve transection in absence of innervation from host axons. By repopulating the distal sheath with exogenous axons, TE-NMIs also enabled putative delayed fusion with proximal host axons, a phenomenon previously not achievable in delayed repair scenarios due to distal axon degeneration. Here, we found immediate electrophysiological recovery after fusion with proximal host axons and improved axon maturation and muscle reinnervation at 24-weeks post-transection (4-weeks following delayed nerve fusion). These findings show that TE-NMIs provide the potential to improve functional recovery following delayed nerve repair. KeAi Publishing 2022-03-24 /pmc/articles/PMC8965778/ /pubmed/35415305 http://dx.doi.org/10.1016/j.bioactmat.2022.03.018 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Burrell, Justin C.
Das, Suradip
Laimo, Franco A.
Katiyar, Kritika S.
Browne, Kevin D.
Shultz, Robert B.
Tien, Vishal J.
Vu, Phuong T.
Petrov, Dmitriy
Ali, Zarina S.
Rosen, Joseph M.
Cullen, D. Kacy
Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title_full Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title_fullStr Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title_full_unstemmed Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title_short Engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
title_sort engineered neuronal microtissue provides exogenous axons for delayed nerve fusion and rapid neuromuscular recovery in rats
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8965778/
https://www.ncbi.nlm.nih.gov/pubmed/35415305
http://dx.doi.org/10.1016/j.bioactmat.2022.03.018
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