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The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study

Autologous nerve grafting is widely accepted as the gold standard treatment for segmental nerve defects. To overcome the inevitable disadvantages of the original method, alternative methods such as the tubulization technique have been developed. Several studies have investigated the characteristics...

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Autores principales: Mitsuzawa, Sadaki, Ikeguchi, Ryosuke, Aoyama, Tomoki, Takeuchi, Hisataka, Yurie, Hirofumi, Oda, Hiroki, Ohta, Souichi, Ushimaru, Mika, Ito, Tatsuya, Tanaka, Mai, Kunitomi, Yoshihiro, Tsuji, Manami, Akieda, Shizuka, Nakayama, Koichi, Matsuda, Shuichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6767885/
https://www.ncbi.nlm.nih.gov/pubmed/31185736
http://dx.doi.org/10.1177/0963689719855346
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author Mitsuzawa, Sadaki
Ikeguchi, Ryosuke
Aoyama, Tomoki
Takeuchi, Hisataka
Yurie, Hirofumi
Oda, Hiroki
Ohta, Souichi
Ushimaru, Mika
Ito, Tatsuya
Tanaka, Mai
Kunitomi, Yoshihiro
Tsuji, Manami
Akieda, Shizuka
Nakayama, Koichi
Matsuda, Shuichi
author_facet Mitsuzawa, Sadaki
Ikeguchi, Ryosuke
Aoyama, Tomoki
Takeuchi, Hisataka
Yurie, Hirofumi
Oda, Hiroki
Ohta, Souichi
Ushimaru, Mika
Ito, Tatsuya
Tanaka, Mai
Kunitomi, Yoshihiro
Tsuji, Manami
Akieda, Shizuka
Nakayama, Koichi
Matsuda, Shuichi
author_sort Mitsuzawa, Sadaki
collection PubMed
description Autologous nerve grafting is widely accepted as the gold standard treatment for segmental nerve defects. To overcome the inevitable disadvantages of the original method, alternative methods such as the tubulization technique have been developed. Several studies have investigated the characteristics of an ideal nerve conduit in terms of supportive cells, scaffolds, growth factors, and vascularity. Previously, we confirmed that biological scaffold-free conduits fabricated from human dermal fibroblasts promote nerve regeneration in a rat sciatic nerve injury model. The purpose of this study is to evaluate the feasibility of biological scaffold-free conduits composed of autologous dermal fibroblasts using a large-animal model. Six male beagle dogs were used in this study. Eight weeks before surgery, dermal fibroblasts were harvested from their groin skin and grown in culture. Bio 3D conduits were assembled from proliferating dermal fibroblasts using a Bio 3D printer. The ulnar nerve in each dog’s forelimb was exposed under general anesthesia and sharply cut to create a 5 mm interstump gap, which was bridged by the prepared 8 mm Bio 3D conduit. Ten weeks after surgery, nerve regeneration was investigated. Electrophysiological studies detected compound muscle action potentials (CMAPs) of the hypothenar muscles and motor nerve conduction velocity (MNCV) in all animals. Macroscopic observation showed regenerated ulnar nerves. Low-level hypothenar muscle atrophy was confirmed. Immunohistochemical, histological, and morphometric studies confirmed the existence of many myelinated axons through the Bio 3D conduit. No severe adverse event was reported. Hypothenar muscles were re-innervated by regenerated nerve fibers through the Bio 3D conduit. The scaffold-free Bio 3D conduit fabricated from autologous dermal fibroblasts is effective for nerve regeneration in a canine ulnar nerve injury model. This technology was feasible as a treatment for peripheral nerve injury and segmental nerve defects in a preclinical setting.
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spelling pubmed-67678852019-10-18 The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study Mitsuzawa, Sadaki Ikeguchi, Ryosuke Aoyama, Tomoki Takeuchi, Hisataka Yurie, Hirofumi Oda, Hiroki Ohta, Souichi Ushimaru, Mika Ito, Tatsuya Tanaka, Mai Kunitomi, Yoshihiro Tsuji, Manami Akieda, Shizuka Nakayama, Koichi Matsuda, Shuichi Cell Transplant Original Articles Autologous nerve grafting is widely accepted as the gold standard treatment for segmental nerve defects. To overcome the inevitable disadvantages of the original method, alternative methods such as the tubulization technique have been developed. Several studies have investigated the characteristics of an ideal nerve conduit in terms of supportive cells, scaffolds, growth factors, and vascularity. Previously, we confirmed that biological scaffold-free conduits fabricated from human dermal fibroblasts promote nerve regeneration in a rat sciatic nerve injury model. The purpose of this study is to evaluate the feasibility of biological scaffold-free conduits composed of autologous dermal fibroblasts using a large-animal model. Six male beagle dogs were used in this study. Eight weeks before surgery, dermal fibroblasts were harvested from their groin skin and grown in culture. Bio 3D conduits were assembled from proliferating dermal fibroblasts using a Bio 3D printer. The ulnar nerve in each dog’s forelimb was exposed under general anesthesia and sharply cut to create a 5 mm interstump gap, which was bridged by the prepared 8 mm Bio 3D conduit. Ten weeks after surgery, nerve regeneration was investigated. Electrophysiological studies detected compound muscle action potentials (CMAPs) of the hypothenar muscles and motor nerve conduction velocity (MNCV) in all animals. Macroscopic observation showed regenerated ulnar nerves. Low-level hypothenar muscle atrophy was confirmed. Immunohistochemical, histological, and morphometric studies confirmed the existence of many myelinated axons through the Bio 3D conduit. No severe adverse event was reported. Hypothenar muscles were re-innervated by regenerated nerve fibers through the Bio 3D conduit. The scaffold-free Bio 3D conduit fabricated from autologous dermal fibroblasts is effective for nerve regeneration in a canine ulnar nerve injury model. This technology was feasible as a treatment for peripheral nerve injury and segmental nerve defects in a preclinical setting. SAGE Publications 2019-06-12 2019-09 /pmc/articles/PMC6767885/ /pubmed/31185736 http://dx.doi.org/10.1177/0963689719855346 Text en © The Author(s) 2019 http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (http://www.creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Articles
Mitsuzawa, Sadaki
Ikeguchi, Ryosuke
Aoyama, Tomoki
Takeuchi, Hisataka
Yurie, Hirofumi
Oda, Hiroki
Ohta, Souichi
Ushimaru, Mika
Ito, Tatsuya
Tanaka, Mai
Kunitomi, Yoshihiro
Tsuji, Manami
Akieda, Shizuka
Nakayama, Koichi
Matsuda, Shuichi
The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title_full The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title_fullStr The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title_full_unstemmed The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title_short The Efficacy of a Scaffold-free Bio 3D Conduit Developed from Autologous Dermal Fibroblasts on Peripheral Nerve Regeneration in a Canine Ulnar Nerve Injury Model: A Preclinical Proof-of-Concept Study
title_sort efficacy of a scaffold-free bio 3d conduit developed from autologous dermal fibroblasts on peripheral nerve regeneration in a canine ulnar nerve injury model: a preclinical proof-of-concept study
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6767885/
https://www.ncbi.nlm.nih.gov/pubmed/31185736
http://dx.doi.org/10.1177/0963689719855346
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