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Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models

Peripheral nerve injuries may result in severe long-gap interruptions that are challenging to repair. Autografting is the gold standard surgical approach for repairing long-gap nerve injuries but can result in prominent donor-site complications. Instead, imitating the native neural microarchitecture...

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Autores principales: Dong, Xianhao, Yang, Yueyue, Bao, Zheheng, Midgley, Adam C., Li, Feiyi, Dai, Shuxin, Yang, Zhuangzhuang, Wang, Jin, Liu, Lihua, Li, Wenlei, Zheng, Yayuan, Liu, Siyang, Liu, Yang, Yu, Weijian, Liu, Jun, Fan, Meng, Zhu, Meifeng, Shen, Zhongyang, Xiaosong, Gu, Kong, Deling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10406865/
https://www.ncbi.nlm.nih.gov/pubmed/37560200
http://dx.doi.org/10.1016/j.bioactmat.2023.06.015
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author Dong, Xianhao
Yang, Yueyue
Bao, Zheheng
Midgley, Adam C.
Li, Feiyi
Dai, Shuxin
Yang, Zhuangzhuang
Wang, Jin
Liu, Lihua
Li, Wenlei
Zheng, Yayuan
Liu, Siyang
Liu, Yang
Yu, Weijian
Liu, Jun
Fan, Meng
Zhu, Meifeng
Shen, Zhongyang
Xiaosong, Gu
Kong, Deling
author_facet Dong, Xianhao
Yang, Yueyue
Bao, Zheheng
Midgley, Adam C.
Li, Feiyi
Dai, Shuxin
Yang, Zhuangzhuang
Wang, Jin
Liu, Lihua
Li, Wenlei
Zheng, Yayuan
Liu, Siyang
Liu, Yang
Yu, Weijian
Liu, Jun
Fan, Meng
Zhu, Meifeng
Shen, Zhongyang
Xiaosong, Gu
Kong, Deling
author_sort Dong, Xianhao
collection PubMed
description Peripheral nerve injuries may result in severe long-gap interruptions that are challenging to repair. Autografting is the gold standard surgical approach for repairing long-gap nerve injuries but can result in prominent donor-site complications. Instead, imitating the native neural microarchitecture using synthetic conduits is expected to offer an alternative strategy for improving nerve regeneration. Here, we designed nerve conduits composed of high-resolution anisotropic microfiber grid-cordes with randomly organized nanofiber sheaths to interrogate the positive effects of these biomimetic structures on peripheral nerve regeneration. Anisotropic microfiber-grids demonstrated the capacity to directionally guide Schwann cells and neurites. Nanofiber sheaths conveyed adequate elasticity and permeability, whilst exhibiting a barrier function against the infiltration of fibroblasts. We then used the composite nerve conduits bridge 30-mm long sciatic nerve defects in canine models. At 12 months post-implant, the morphometric and histological recovery, gait recovery, electrophysiological function, and degree of muscle atrophy were assessed. The newly regenerated nerve tissue that formed within the composite nerve conduits showed restored neurological functions that were superior compared to sheaths-only scaffolds and Neurolac nerve conduit controls. Our findings demonstrate the feasibility of using synthetic biophysical cues to effectively bridge long-gap peripheral nerve injuries and indicates the promising clinical application prospects of biomimetic composite nerve conduits.
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spelling pubmed-104068652023-08-09 Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models Dong, Xianhao Yang, Yueyue Bao, Zheheng Midgley, Adam C. Li, Feiyi Dai, Shuxin Yang, Zhuangzhuang Wang, Jin Liu, Lihua Li, Wenlei Zheng, Yayuan Liu, Siyang Liu, Yang Yu, Weijian Liu, Jun Fan, Meng Zhu, Meifeng Shen, Zhongyang Xiaosong, Gu Kong, Deling Bioact Mater Article Peripheral nerve injuries may result in severe long-gap interruptions that are challenging to repair. Autografting is the gold standard surgical approach for repairing long-gap nerve injuries but can result in prominent donor-site complications. Instead, imitating the native neural microarchitecture using synthetic conduits is expected to offer an alternative strategy for improving nerve regeneration. Here, we designed nerve conduits composed of high-resolution anisotropic microfiber grid-cordes with randomly organized nanofiber sheaths to interrogate the positive effects of these biomimetic structures on peripheral nerve regeneration. Anisotropic microfiber-grids demonstrated the capacity to directionally guide Schwann cells and neurites. Nanofiber sheaths conveyed adequate elasticity and permeability, whilst exhibiting a barrier function against the infiltration of fibroblasts. We then used the composite nerve conduits bridge 30-mm long sciatic nerve defects in canine models. At 12 months post-implant, the morphometric and histological recovery, gait recovery, electrophysiological function, and degree of muscle atrophy were assessed. The newly regenerated nerve tissue that formed within the composite nerve conduits showed restored neurological functions that were superior compared to sheaths-only scaffolds and Neurolac nerve conduit controls. Our findings demonstrate the feasibility of using synthetic biophysical cues to effectively bridge long-gap peripheral nerve injuries and indicates the promising clinical application prospects of biomimetic composite nerve conduits. KeAi Publishing 2023-07-27 /pmc/articles/PMC10406865/ /pubmed/37560200 http://dx.doi.org/10.1016/j.bioactmat.2023.06.015 Text en © 2023 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
Dong, Xianhao
Yang, Yueyue
Bao, Zheheng
Midgley, Adam C.
Li, Feiyi
Dai, Shuxin
Yang, Zhuangzhuang
Wang, Jin
Liu, Lihua
Li, Wenlei
Zheng, Yayuan
Liu, Siyang
Liu, Yang
Yu, Weijian
Liu, Jun
Fan, Meng
Zhu, Meifeng
Shen, Zhongyang
Xiaosong, Gu
Kong, Deling
Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title_full Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title_fullStr Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title_full_unstemmed Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title_short Micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
title_sort micro-nanofiber composite biomimetic conduits promote long-gap peripheral nerve regeneration in canine models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10406865/
https://www.ncbi.nlm.nih.gov/pubmed/37560200
http://dx.doi.org/10.1016/j.bioactmat.2023.06.015
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