Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury

Recent studies have shown the potential of artificially synthesized conduits in the repair of peripheral nerve injury. Natural biopolymers have received much attention because of their biocompatibility. To investigate the effects of novel electrospun absorbable poly(ε-caprolactone)/type I collagen n...

Full description

Bibliographic Details
Main Authors: Chun-Ming Yen, Chiung-Chyi Shen, Yi-Chin Yang, Bai-Shuan Liu, Hsu-Tung Lee, Meei-Ling Sheu, Meng-Hsiun Tsai, Wen-Yu Cheng
Format: Article
Language:English
Published: Wolters Kluwer Medknow Publications 2019-01-01
Series:Neural Regeneration Research
Subjects:
Online Access:http://www.nrronline.org/article.asp?issn=1673-5374;year=2019;volume=14;issue=9;spage=1617;epage=1625;aulast=Yen
id doaj-8e8dc71325a3443887b18c9408abb0eb
record_format Article
spelling doaj-8e8dc71325a3443887b18c9408abb0eb2020-11-25T03:53:42ZengWolters Kluwer Medknow PublicationsNeural Regeneration Research1673-53742019-01-011491617162510.4103/1673-5374.255997Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injuryChun-Ming YenChiung-Chyi ShenYi-Chin YangBai-Shuan LiuHsu-Tung LeeMeei-Ling SheuMeng-Hsiun TsaiWen-Yu ChengRecent studies have shown the potential of artificially synthesized conduits in the repair of peripheral nerve injury. Natural biopolymers have received much attention because of their biocompatibility. To investigate the effects of novel electrospun absorbable poly(ε-caprolactone)/type I collagen nanofiber conduits (biopolymer nanofiber conduits) on the repair of peripheral nerve injury, we bridged 10-mm-long sciatic nerve defects with electrospun absorbable biopolymer nanofiber conduits, poly(ε-caprolactone) or silicone conduits in Sprague-Dawley rats. Rat neurologica1 function was weekly evaluated using sciatic function index within 8 weeks after repair. Eight weeks after repair, sciatic nerve myelin sheaths and axon morphology were observed by osmium tetroxide staining, hematoxylin-eosin staining, and transmission electron microscopy. S-100 (Schwann cell marker) and CD4 (inflammatory marker) immunoreactivities in sciatic nerve were detected by immunohistochemistry. In rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits, no serious inflammatory reactions were observed in rat hind limbs, the morphology of myelin sheaths in the injured sciatic nerve was close to normal. CD4 immunoreactivity was obviously weaker in rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits than in those subjected to repair with poly(ε-caprolactone) or silicone. Rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits tended to have greater sciatic nerve function recovery than those receiving poly(ε-caprolactone) or silicone repair. These results suggest that electrospun absorbable poly(ε-caprolactone)/type I collagen nanofiber conduits have the potential of repairing sciatic nerve defects and exhibit good biocompatibility. All experimental procedures were approved by Institutional Animal Care and Use Committee of Taichung Veteran General Hospital, Taiwan, China (La-1031218) on October 2, 2014.http://www.nrronline.org/article.asp?issn=1673-5374;year=2019;volume=14;issue=9;spage=1617;epage=1625;aulast=Yenpoly(ε-caprolactone); type I collagen; electrospinning; sciatic nerve; nerve conduit; immunohistostaining; walking track analysis; peripheral nerve injury
collection DOAJ
language English
format Article
sources DOAJ
author Chun-Ming Yen
Chiung-Chyi Shen
Yi-Chin Yang
Bai-Shuan Liu
Hsu-Tung Lee
Meei-Ling Sheu
Meng-Hsiun Tsai
Wen-Yu Cheng
spellingShingle Chun-Ming Yen
Chiung-Chyi Shen
Yi-Chin Yang
Bai-Shuan Liu
Hsu-Tung Lee
Meei-Ling Sheu
Meng-Hsiun Tsai
Wen-Yu Cheng
Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
Neural Regeneration Research
poly(ε-caprolactone); type I collagen; electrospinning; sciatic nerve; nerve conduit; immunohistostaining; walking track analysis; peripheral nerve injury
author_facet Chun-Ming Yen
Chiung-Chyi Shen
Yi-Chin Yang
Bai-Shuan Liu
Hsu-Tung Lee
Meei-Ling Sheu
Meng-Hsiun Tsai
Wen-Yu Cheng
author_sort Chun-Ming Yen
title Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
title_short Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
title_full Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
title_fullStr Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
title_full_unstemmed Novel electrospun poly(ε-caprolactone)/type I collagen nanofiber conduits for repair of peripheral nerve injury
title_sort novel electrospun poly(ε-caprolactone)/type i collagen nanofiber conduits for repair of peripheral nerve injury
publisher Wolters Kluwer Medknow Publications
series Neural Regeneration Research
issn 1673-5374
publishDate 2019-01-01
description Recent studies have shown the potential of artificially synthesized conduits in the repair of peripheral nerve injury. Natural biopolymers have received much attention because of their biocompatibility. To investigate the effects of novel electrospun absorbable poly(ε-caprolactone)/type I collagen nanofiber conduits (biopolymer nanofiber conduits) on the repair of peripheral nerve injury, we bridged 10-mm-long sciatic nerve defects with electrospun absorbable biopolymer nanofiber conduits, poly(ε-caprolactone) or silicone conduits in Sprague-Dawley rats. Rat neurologica1 function was weekly evaluated using sciatic function index within 8 weeks after repair. Eight weeks after repair, sciatic nerve myelin sheaths and axon morphology were observed by osmium tetroxide staining, hematoxylin-eosin staining, and transmission electron microscopy. S-100 (Schwann cell marker) and CD4 (inflammatory marker) immunoreactivities in sciatic nerve were detected by immunohistochemistry. In rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits, no serious inflammatory reactions were observed in rat hind limbs, the morphology of myelin sheaths in the injured sciatic nerve was close to normal. CD4 immunoreactivity was obviously weaker in rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits than in those subjected to repair with poly(ε-caprolactone) or silicone. Rats subjected to repair with electrospun absorbable biopolymer nanofiber conduits tended to have greater sciatic nerve function recovery than those receiving poly(ε-caprolactone) or silicone repair. These results suggest that electrospun absorbable poly(ε-caprolactone)/type I collagen nanofiber conduits have the potential of repairing sciatic nerve defects and exhibit good biocompatibility. All experimental procedures were approved by Institutional Animal Care and Use Committee of Taichung Veteran General Hospital, Taiwan, China (La-1031218) on October 2, 2014.
topic poly(ε-caprolactone); type I collagen; electrospinning; sciatic nerve; nerve conduit; immunohistostaining; walking track analysis; peripheral nerve injury
url http://www.nrronline.org/article.asp?issn=1673-5374;year=2019;volume=14;issue=9;spage=1617;epage=1625;aulast=Yen
work_keys_str_mv AT chunmingyen novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT chiungchyishen novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT yichinyang novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT baishuanliu novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT hsutunglee novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT meeilingsheu novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT menghsiuntsai novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
AT wenyucheng novelelectrospunpolyecaprolactonetypeicollagennanofiberconduitsforrepairofperipheralnerveinjury
_version_ 1724477140875870208