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The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model

BACKGROUND: Although autologous nerve grafting is the gold standard treatment of peripheral nerve injuries, several alternative methods have been developed, including nerve conduits that use supportive cells. However, the seeding efficacy and viability of supportive cells injected in nerve grafts re...

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Autores principales: Yurie, Hirofumi, Ikeguchi, Ryosuke, Aoyama, Tomoki, Kaizawa, Yukitoshi, Tajino, Junichi, Ito, Akira, Ohta, Souichi, Oda, Hiroki, Takeuchi, Hisataka, Akieda, Shizuka, Tsuji, Manami, Nakayama, Koichi, Matsuda, Shuichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5305253/
https://www.ncbi.nlm.nih.gov/pubmed/28192527
http://dx.doi.org/10.1371/journal.pone.0171448
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author Yurie, Hirofumi
Ikeguchi, Ryosuke
Aoyama, Tomoki
Kaizawa, Yukitoshi
Tajino, Junichi
Ito, Akira
Ohta, Souichi
Oda, Hiroki
Takeuchi, Hisataka
Akieda, Shizuka
Tsuji, Manami
Nakayama, Koichi
Matsuda, Shuichi
author_facet Yurie, Hirofumi
Ikeguchi, Ryosuke
Aoyama, Tomoki
Kaizawa, Yukitoshi
Tajino, Junichi
Ito, Akira
Ohta, Souichi
Oda, Hiroki
Takeuchi, Hisataka
Akieda, Shizuka
Tsuji, Manami
Nakayama, Koichi
Matsuda, Shuichi
author_sort Yurie, Hirofumi
collection PubMed
description BACKGROUND: Although autologous nerve grafting is the gold standard treatment of peripheral nerve injuries, several alternative methods have been developed, including nerve conduits that use supportive cells. However, the seeding efficacy and viability of supportive cells injected in nerve grafts remain unclear. Here, we focused on a novel completely biological, tissue-engineered, scaffold-free conduit. METHODS: We developed six scaffold-free conduits from human normal dermal fibroblasts using a Bio 3D Printer. Twelve adult male rats with immune deficiency underwent mid-thigh-level transection of the right sciatic nerve. The resulting 5-mm nerve gap was bridged using 8-mm Bio 3D conduits (Bio 3D group, n = 6) and silicone tube (silicone group, n = 6). Several assessments were conducted to examine nerve regeneration eight weeks post-surgery. RESULTS: Kinematic analysis revealed that the toe angle to the metatarsal bone at the final segment of the swing phase was significantly higher in the Bio 3D group than the silicone group (-35.78 ± 10.68 versus -62.48 ± 6.15, respectively; p < 0.01). Electrophysiological studies revealed significantly higher compound muscle action potential in the Bio 3D group than the silicone group (53.60 ± 26.36% versus 2.93 ± 1.84%; p < 0.01). Histological and morphological studies revealed neural cell expression in all regions of the regenerated nerves and the presence of many well-myelinated axons in the Bio 3D group. The wet muscle weight of the tibialis anterior muscle was significantly higher in the Bio 3D group than the silicone group (0.544 ± 0.063 versus 0.396 ± 0.031, respectively; p < 0.01). CONCLUSIONS: We confirmed that scaffold-free Bio 3D conduits composed entirely of fibroblast cells promote nerve regeneration in a rat sciatic nerve model.
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spelling pubmed-53052532017-02-28 The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model Yurie, Hirofumi Ikeguchi, Ryosuke Aoyama, Tomoki Kaizawa, Yukitoshi Tajino, Junichi Ito, Akira Ohta, Souichi Oda, Hiroki Takeuchi, Hisataka Akieda, Shizuka Tsuji, Manami Nakayama, Koichi Matsuda, Shuichi PLoS One Research Article BACKGROUND: Although autologous nerve grafting is the gold standard treatment of peripheral nerve injuries, several alternative methods have been developed, including nerve conduits that use supportive cells. However, the seeding efficacy and viability of supportive cells injected in nerve grafts remain unclear. Here, we focused on a novel completely biological, tissue-engineered, scaffold-free conduit. METHODS: We developed six scaffold-free conduits from human normal dermal fibroblasts using a Bio 3D Printer. Twelve adult male rats with immune deficiency underwent mid-thigh-level transection of the right sciatic nerve. The resulting 5-mm nerve gap was bridged using 8-mm Bio 3D conduits (Bio 3D group, n = 6) and silicone tube (silicone group, n = 6). Several assessments were conducted to examine nerve regeneration eight weeks post-surgery. RESULTS: Kinematic analysis revealed that the toe angle to the metatarsal bone at the final segment of the swing phase was significantly higher in the Bio 3D group than the silicone group (-35.78 ± 10.68 versus -62.48 ± 6.15, respectively; p < 0.01). Electrophysiological studies revealed significantly higher compound muscle action potential in the Bio 3D group than the silicone group (53.60 ± 26.36% versus 2.93 ± 1.84%; p < 0.01). Histological and morphological studies revealed neural cell expression in all regions of the regenerated nerves and the presence of many well-myelinated axons in the Bio 3D group. The wet muscle weight of the tibialis anterior muscle was significantly higher in the Bio 3D group than the silicone group (0.544 ± 0.063 versus 0.396 ± 0.031, respectively; p < 0.01). CONCLUSIONS: We confirmed that scaffold-free Bio 3D conduits composed entirely of fibroblast cells promote nerve regeneration in a rat sciatic nerve model. Public Library of Science 2017-02-13 /pmc/articles/PMC5305253/ /pubmed/28192527 http://dx.doi.org/10.1371/journal.pone.0171448 Text en © 2017 Yurie et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Yurie, Hirofumi
Ikeguchi, Ryosuke
Aoyama, Tomoki
Kaizawa, Yukitoshi
Tajino, Junichi
Ito, Akira
Ohta, Souichi
Oda, Hiroki
Takeuchi, Hisataka
Akieda, Shizuka
Tsuji, Manami
Nakayama, Koichi
Matsuda, Shuichi
The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title_full The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title_fullStr The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title_full_unstemmed The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title_short The efficacy of a scaffold-free Bio 3D conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
title_sort efficacy of a scaffold-free bio 3d conduit developed from human fibroblasts on peripheral nerve regeneration in a rat sciatic nerve model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5305253/
https://www.ncbi.nlm.nih.gov/pubmed/28192527
http://dx.doi.org/10.1371/journal.pone.0171448
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