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Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation

Cell-based regenerative therapy has the potential to repair bone injuries or large defects that are recalcitrant to conventional treatment methods, including drugs and surgery. Here, we developed a multilayered cell-based bone formation system using cells coated with fibronectin-gelatin (FN-G) nanof...

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Autores principales: Uchida, Kentaro, Inoue, Gen, Matsushita, Osamu, Horikawa, Kyosuke, Sekiguchi, Hiroyuki, Saito, Wataru, Takano, Shotaro, Fujimaki, Hisako, Miyagi, Masayuki, Takaso, Masashi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5518495/
https://www.ncbi.nlm.nih.gov/pubmed/28761877
http://dx.doi.org/10.1155/2017/4371460
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author Uchida, Kentaro
Inoue, Gen
Matsushita, Osamu
Horikawa, Kyosuke
Sekiguchi, Hiroyuki
Saito, Wataru
Takano, Shotaro
Fujimaki, Hisako
Miyagi, Masayuki
Takaso, Masashi
author_facet Uchida, Kentaro
Inoue, Gen
Matsushita, Osamu
Horikawa, Kyosuke
Sekiguchi, Hiroyuki
Saito, Wataru
Takano, Shotaro
Fujimaki, Hisako
Miyagi, Masayuki
Takaso, Masashi
author_sort Uchida, Kentaro
collection PubMed
description Cell-based regenerative therapy has the potential to repair bone injuries or large defects that are recalcitrant to conventional treatment methods, including drugs and surgery. Here, we developed a multilayered cell-based bone formation system using cells coated with fibronectin-gelatin (FN-G) nanofilms. The multilayered mesenchymal cells (MLMCs) were formed after two days of culture and were shown to express higher levels of BMP-2 and VEGF compared to monolayer cultures of MCs. The MLMCs were used as a graft material in combination with a fusion protein consisting of basic fibroblast growth factor (bFGF), polycystic kidney disease (PKD) domain, and the collagen-binding domain (CBD) of Clostridium histolyticum collagenase. In femur sites grafted with the MLMCs, significantly higher levels of callus volume and bone mineral content were observed compared to the sham controls. The callus volume and bone mineral content were further increased in femur sites grafted with bFGF-PKD-CBD/MLMCs. Taken together, these results suggest that bFGF-PKD-CBD/MLMCs, which can be simply and rapidly generated in vitro, have the potential to promote bone repair when grafted into large defect sites.
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spelling pubmed-55184952017-07-31 Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation Uchida, Kentaro Inoue, Gen Matsushita, Osamu Horikawa, Kyosuke Sekiguchi, Hiroyuki Saito, Wataru Takano, Shotaro Fujimaki, Hisako Miyagi, Masayuki Takaso, Masashi Biomed Res Int Research Article Cell-based regenerative therapy has the potential to repair bone injuries or large defects that are recalcitrant to conventional treatment methods, including drugs and surgery. Here, we developed a multilayered cell-based bone formation system using cells coated with fibronectin-gelatin (FN-G) nanofilms. The multilayered mesenchymal cells (MLMCs) were formed after two days of culture and were shown to express higher levels of BMP-2 and VEGF compared to monolayer cultures of MCs. The MLMCs were used as a graft material in combination with a fusion protein consisting of basic fibroblast growth factor (bFGF), polycystic kidney disease (PKD) domain, and the collagen-binding domain (CBD) of Clostridium histolyticum collagenase. In femur sites grafted with the MLMCs, significantly higher levels of callus volume and bone mineral content were observed compared to the sham controls. The callus volume and bone mineral content were further increased in femur sites grafted with bFGF-PKD-CBD/MLMCs. Taken together, these results suggest that bFGF-PKD-CBD/MLMCs, which can be simply and rapidly generated in vitro, have the potential to promote bone repair when grafted into large defect sites. Hindawi 2017 2017-07-06 /pmc/articles/PMC5518495/ /pubmed/28761877 http://dx.doi.org/10.1155/2017/4371460 Text en Copyright © 2017 Kentaro Uchida et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Uchida, Kentaro
Inoue, Gen
Matsushita, Osamu
Horikawa, Kyosuke
Sekiguchi, Hiroyuki
Saito, Wataru
Takano, Shotaro
Fujimaki, Hisako
Miyagi, Masayuki
Takaso, Masashi
Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title_full Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title_fullStr Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title_full_unstemmed Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title_short Basic Fibroblast Growth Factor-Anchored Multilayered Mesenchymal Cell Sheets Accelerate Periosteal Bone Formation
title_sort basic fibroblast growth factor-anchored multilayered mesenchymal cell sheets accelerate periosteal bone formation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5518495/
https://www.ncbi.nlm.nih.gov/pubmed/28761877
http://dx.doi.org/10.1155/2017/4371460
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