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Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage

INTRODUCTION: We devised a strategy for the fabrication of an ‘anatomy-mimicking’ cylinder-type engineered trachea combined with cartilage engineering. The engineered BIOTUBEs are used to support the architecture of the body tissue, for long-segment trachea (>5 cm) with carinal reconstruction. Th...

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Autores principales: Komura, Makoto, Komura, Hiroko, Satake, Ryosuke, Suzuki, Keisuke, Yonekawa, Hironobu, Ikebukuro, Kenichi, Komuro, Hiroaki, Hoshi, Kazuto, Takato, Tsuyoshi, Moriwaki, Takeshi, Nakayama, Yasuhide
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Japanese Society for Regenerative Medicine 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6700413/
https://www.ncbi.nlm.nih.gov/pubmed/31453272
http://dx.doi.org/10.1016/j.reth.2019.07.004
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author Komura, Makoto
Komura, Hiroko
Satake, Ryosuke
Suzuki, Keisuke
Yonekawa, Hironobu
Ikebukuro, Kenichi
Komuro, Hiroaki
Hoshi, Kazuto
Takato, Tsuyoshi
Moriwaki, Takeshi
Nakayama, Yasuhide
author_facet Komura, Makoto
Komura, Hiroko
Satake, Ryosuke
Suzuki, Keisuke
Yonekawa, Hironobu
Ikebukuro, Kenichi
Komuro, Hiroaki
Hoshi, Kazuto
Takato, Tsuyoshi
Moriwaki, Takeshi
Nakayama, Yasuhide
author_sort Komura, Makoto
collection PubMed
description INTRODUCTION: We devised a strategy for the fabrication of an ‘anatomy-mimicking’ cylinder-type engineered trachea combined with cartilage engineering. The engineered BIOTUBEs are used to support the architecture of the body tissue, for long-segment trachea (>5 cm) with carinal reconstruction. The aim of the present study was to fabricate an anatomy-mimicking cylinder-type regenerative airway, and investigate its applicability in a rabbit model. METHODS: Collagen sponge rings (diameter: 6 mm) were arranged on a silicon tube (diameter: 6 mm) at 2-mm intervals. Chondrocytes from the auricular cartilage were seeded onto collagen sponges immediately prior to implantation in an autologous manner. These constructs were embedded in dorsal subcutaneous pouches of rabbits. One month after implantation, the constructs were retrieved for histological examination. In addition, cervical tracheal sleeve resection was performed, and these engineered constructs were implanted into defective airways through end-to-end anastomosis. RESULTS: One month after implantation, the engineered constructs exhibited similar rigidity and flexibility to those observed with the native trachea. Through histological examination, the constructs showed an anatomy-mimicking tracheal architecture. In addition, the engineered constructs could be anastomosed to the native trachea without air leakage. CONCLUSION: The present study provides the possibility of generating anatomy-mimicking cylinder-type airways, termed BIO-AIR-TUBEs, that engineer cartilage in an in-vivo culture system. This approach involves the use of BIOTUBEs formed via in-body tissue architecture technology. Therefore, the BIO-AIR-TUBE may be useful as the basic architecture of artificial airways.
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spelling pubmed-67004132019-08-26 Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage Komura, Makoto Komura, Hiroko Satake, Ryosuke Suzuki, Keisuke Yonekawa, Hironobu Ikebukuro, Kenichi Komuro, Hiroaki Hoshi, Kazuto Takato, Tsuyoshi Moriwaki, Takeshi Nakayama, Yasuhide Regen Ther Original Article INTRODUCTION: We devised a strategy for the fabrication of an ‘anatomy-mimicking’ cylinder-type engineered trachea combined with cartilage engineering. The engineered BIOTUBEs are used to support the architecture of the body tissue, for long-segment trachea (>5 cm) with carinal reconstruction. The aim of the present study was to fabricate an anatomy-mimicking cylinder-type regenerative airway, and investigate its applicability in a rabbit model. METHODS: Collagen sponge rings (diameter: 6 mm) were arranged on a silicon tube (diameter: 6 mm) at 2-mm intervals. Chondrocytes from the auricular cartilage were seeded onto collagen sponges immediately prior to implantation in an autologous manner. These constructs were embedded in dorsal subcutaneous pouches of rabbits. One month after implantation, the constructs were retrieved for histological examination. In addition, cervical tracheal sleeve resection was performed, and these engineered constructs were implanted into defective airways through end-to-end anastomosis. RESULTS: One month after implantation, the engineered constructs exhibited similar rigidity and flexibility to those observed with the native trachea. Through histological examination, the constructs showed an anatomy-mimicking tracheal architecture. In addition, the engineered constructs could be anastomosed to the native trachea without air leakage. CONCLUSION: The present study provides the possibility of generating anatomy-mimicking cylinder-type airways, termed BIO-AIR-TUBEs, that engineer cartilage in an in-vivo culture system. This approach involves the use of BIOTUBEs formed via in-body tissue architecture technology. Therefore, the BIO-AIR-TUBE may be useful as the basic architecture of artificial airways. Japanese Society for Regenerative Medicine 2019-08-08 /pmc/articles/PMC6700413/ /pubmed/31453272 http://dx.doi.org/10.1016/j.reth.2019.07.004 Text en © 2019 The Japanese Society for Regenerative Medicine. Production and hosting by Elsevier B.V. http://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 Original Article
Komura, Makoto
Komura, Hiroko
Satake, Ryosuke
Suzuki, Keisuke
Yonekawa, Hironobu
Ikebukuro, Kenichi
Komuro, Hiroaki
Hoshi, Kazuto
Takato, Tsuyoshi
Moriwaki, Takeshi
Nakayama, Yasuhide
Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title_full Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title_fullStr Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title_full_unstemmed Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title_short Fabrication of an anatomy-mimicking BIO-AIR-TUBE with engineered cartilage
title_sort fabrication of an anatomy-mimicking bio-air-tube with engineered cartilage
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6700413/
https://www.ncbi.nlm.nih.gov/pubmed/31453272
http://dx.doi.org/10.1016/j.reth.2019.07.004
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