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Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges

[Image: see text] Multichannel nerve guide conduits (MCNGCs) have been widely studied and exhibited outstanding nerve repair function. However, the effect of the geometric structure of MCNGCs on the nerve repair function was still not clear. Herein, we postulated that MCNGCs with different inner sur...

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Autores principales: Zhao, Yanteng, Zhang, Qiang, Zhao, Lei, Gan, Li, Yi, Li, Zhao, Yanan, Xue, Jingling, Luo, Lihua, Du, Qiaoyue, Geng, Rongxin, Sun, Zhihong, Benkirane-Jessel, Nadia, Chen, Pu, Li, Yinping, Chen, Yun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044839/
https://www.ncbi.nlm.nih.gov/pubmed/30023554
http://dx.doi.org/10.1021/acsomega.7b01003
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author Zhao, Yanteng
Zhang, Qiang
Zhao, Lei
Gan, Li
Yi, Li
Zhao, Yanan
Xue, Jingling
Luo, Lihua
Du, Qiaoyue
Geng, Rongxin
Sun, Zhihong
Benkirane-Jessel, Nadia
Chen, Pu
Li, Yinping
Chen, Yun
author_facet Zhao, Yanteng
Zhang, Qiang
Zhao, Lei
Gan, Li
Yi, Li
Zhao, Yanan
Xue, Jingling
Luo, Lihua
Du, Qiaoyue
Geng, Rongxin
Sun, Zhihong
Benkirane-Jessel, Nadia
Chen, Pu
Li, Yinping
Chen, Yun
author_sort Zhao, Yanteng
collection PubMed
description [Image: see text] Multichannel nerve guide conduits (MCNGCs) have been widely studied and exhibited outstanding nerve repair function. However, the effect of the geometric structure of MCNGCs on the nerve repair function was still not clear. Herein, we postulated that MCNGCs with different inner surface area-to-volume ratios (ISA/V) of the channels inside the nerve guide conduits (NGCs) would show different nerve repair functions. Therefore, in current work, we constructed a series of hydroxyethyl cellulose/soy protein sponge-based nerve conduit (HSSN) with low, medium, and high ISA/V from hydroxyethyl cellulose (HEC)/soy protein isolate (SPI) composite sponges, which were abbreviated as HSSN-L, HSSN-M and HSSN-H, respectively. These NGCs were applied to bridge and repair a 10 mm long sciatic nerve defect in a rat model. Finally, the influence of ISA/V on nerve repair function was evaluated by electrophysiological assessment, histological investigation, and in vivo biodegradability testing. The results of electrophysiological assessment and histological investigation showed that the regenerative nerve tissues bridged with HSSN-H and HSSN-M had higher compound muscle action potential amplitude ratio, higher percentage of positive NF200 and S100 staining, larger axon diameter, lower G-ratio, and greater myelination thickness. Furthermore, the regenerative nerve tissues bridged with HSSN-H also showed higher density of regenerated myelinated nerve fibers and more number of myelin sheath layers. On the whole, the repair efficiency of the peripheral nerve in HSSN-H and HSSN-M groups might be better than that in HSSN-L. These results indicated that higher ISA/V based on HEC/SPI composite sponge may result in greater nerve repair functions. The conclusion provided a probable guiding principle for the structural designs of NGCs in the future.
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spelling pubmed-60448392018-07-16 Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges Zhao, Yanteng Zhang, Qiang Zhao, Lei Gan, Li Yi, Li Zhao, Yanan Xue, Jingling Luo, Lihua Du, Qiaoyue Geng, Rongxin Sun, Zhihong Benkirane-Jessel, Nadia Chen, Pu Li, Yinping Chen, Yun ACS Omega [Image: see text] Multichannel nerve guide conduits (MCNGCs) have been widely studied and exhibited outstanding nerve repair function. However, the effect of the geometric structure of MCNGCs on the nerve repair function was still not clear. Herein, we postulated that MCNGCs with different inner surface area-to-volume ratios (ISA/V) of the channels inside the nerve guide conduits (NGCs) would show different nerve repair functions. Therefore, in current work, we constructed a series of hydroxyethyl cellulose/soy protein sponge-based nerve conduit (HSSN) with low, medium, and high ISA/V from hydroxyethyl cellulose (HEC)/soy protein isolate (SPI) composite sponges, which were abbreviated as HSSN-L, HSSN-M and HSSN-H, respectively. These NGCs were applied to bridge and repair a 10 mm long sciatic nerve defect in a rat model. Finally, the influence of ISA/V on nerve repair function was evaluated by electrophysiological assessment, histological investigation, and in vivo biodegradability testing. The results of electrophysiological assessment and histological investigation showed that the regenerative nerve tissues bridged with HSSN-H and HSSN-M had higher compound muscle action potential amplitude ratio, higher percentage of positive NF200 and S100 staining, larger axon diameter, lower G-ratio, and greater myelination thickness. Furthermore, the regenerative nerve tissues bridged with HSSN-H also showed higher density of regenerated myelinated nerve fibers and more number of myelin sheath layers. On the whole, the repair efficiency of the peripheral nerve in HSSN-H and HSSN-M groups might be better than that in HSSN-L. These results indicated that higher ISA/V based on HEC/SPI composite sponge may result in greater nerve repair functions. The conclusion provided a probable guiding principle for the structural designs of NGCs in the future. American Chemical Society 2017-11-01 /pmc/articles/PMC6044839/ /pubmed/30023554 http://dx.doi.org/10.1021/acsomega.7b01003 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Zhao, Yanteng
Zhang, Qiang
Zhao, Lei
Gan, Li
Yi, Li
Zhao, Yanan
Xue, Jingling
Luo, Lihua
Du, Qiaoyue
Geng, Rongxin
Sun, Zhihong
Benkirane-Jessel, Nadia
Chen, Pu
Li, Yinping
Chen, Yun
Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title_full Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title_fullStr Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title_full_unstemmed Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title_short Enhanced Peripheral Nerve Regeneration by a High Surface Area to Volume Ratio of Nerve Conduits Fabricated from Hydroxyethyl Cellulose/Soy Protein Composite Sponges
title_sort enhanced peripheral nerve regeneration by a high surface area to volume ratio of nerve conduits fabricated from hydroxyethyl cellulose/soy protein composite sponges
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044839/
https://www.ncbi.nlm.nih.gov/pubmed/30023554
http://dx.doi.org/10.1021/acsomega.7b01003
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