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Increased fibroblast functionality on CNN2-loaded titania nanotubes

Infection and epithelial downgrowth are major problems associated with maxillofacial percutaneous implants. These complications are mainly due to the improper closure of the implant–skin interface. Therefore, designing a percutaneous implant that better promotes the formation of a stable soft tissue...

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Detalles Bibliográficos
Autores principales: Wei, Hongbo, Wu, Shuyi, Feng, Zhihong, Zhou, Wei, Dong, Yan, Wu, Guofeng, Bai, Shizhu, Zhao, Yimin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3292419/
https://www.ncbi.nlm.nih.gov/pubmed/22403489
http://dx.doi.org/10.2147/IJN.S28694
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author Wei, Hongbo
Wu, Shuyi
Feng, Zhihong
Zhou, Wei
Dong, Yan
Wu, Guofeng
Bai, Shizhu
Zhao, Yimin
author_facet Wei, Hongbo
Wu, Shuyi
Feng, Zhihong
Zhou, Wei
Dong, Yan
Wu, Guofeng
Bai, Shizhu
Zhao, Yimin
author_sort Wei, Hongbo
collection PubMed
description Infection and epithelial downgrowth are major problems associated with maxillofacial percutaneous implants. These complications are mainly due to the improper closure of the implant–skin interface. Therefore, designing a percutaneous implant that better promotes the formation of a stable soft tissue biologic seal around percutaneous sites is highly desirable. Additionally, the fibroblast has been proven to play an important role in the formation of biologic seals. In this study, titania nanotubes were filled with 11.2 kDa C-terminal CCN2 (connective tissue growth factor) fragment, which could exert full CCN2 activity to increase the biological functionality of fibroblasts. This drug delivery system was fabricated on a titanium implant surface. CCN2 was loaded into anodized titania nanotubes using a simplified lyophilization method and the loading efficiency was approximately 80%. Then, the release kinetics of CCN2 from these nanotubes was investigated. Furthermore, the influence of CCN2-loaded titania nanotubes on fibroblast functionality was examined. The results revealed increased fibroblast adhesion at 0.25, 0.5, 1, 2, 4, and 24 hours, increased fibroblast viability over the course of 5 days, as well as enhanced actin cytoskeleton organization on CCN2-loaded titania nanotubes surfaces compared to uncoated, unmodified counterparts. Therefore, the results from this in vitro study demonstrate that CCN2-loaded titania nanotubes have the ability to increase fibroblast functionality and should be further studied as a method of promoting the formation of a stable soft tissue biologic seal around percutaneous sites.
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spelling pubmed-32924192012-03-08 Increased fibroblast functionality on CNN2-loaded titania nanotubes Wei, Hongbo Wu, Shuyi Feng, Zhihong Zhou, Wei Dong, Yan Wu, Guofeng Bai, Shizhu Zhao, Yimin Int J Nanomedicine Original Research Infection and epithelial downgrowth are major problems associated with maxillofacial percutaneous implants. These complications are mainly due to the improper closure of the implant–skin interface. Therefore, designing a percutaneous implant that better promotes the formation of a stable soft tissue biologic seal around percutaneous sites is highly desirable. Additionally, the fibroblast has been proven to play an important role in the formation of biologic seals. In this study, titania nanotubes were filled with 11.2 kDa C-terminal CCN2 (connective tissue growth factor) fragment, which could exert full CCN2 activity to increase the biological functionality of fibroblasts. This drug delivery system was fabricated on a titanium implant surface. CCN2 was loaded into anodized titania nanotubes using a simplified lyophilization method and the loading efficiency was approximately 80%. Then, the release kinetics of CCN2 from these nanotubes was investigated. Furthermore, the influence of CCN2-loaded titania nanotubes on fibroblast functionality was examined. The results revealed increased fibroblast adhesion at 0.25, 0.5, 1, 2, 4, and 24 hours, increased fibroblast viability over the course of 5 days, as well as enhanced actin cytoskeleton organization on CCN2-loaded titania nanotubes surfaces compared to uncoated, unmodified counterparts. Therefore, the results from this in vitro study demonstrate that CCN2-loaded titania nanotubes have the ability to increase fibroblast functionality and should be further studied as a method of promoting the formation of a stable soft tissue biologic seal around percutaneous sites. Dove Medical Press 2012 2012-02-23 /pmc/articles/PMC3292419/ /pubmed/22403489 http://dx.doi.org/10.2147/IJN.S28694 Text en © 2012 Wei et al, publisher and licensee Dove Medical Press Ltd. This is an Open Access article which permits unrestricted noncommercial use, provided the original work is properly cited.
spellingShingle Original Research
Wei, Hongbo
Wu, Shuyi
Feng, Zhihong
Zhou, Wei
Dong, Yan
Wu, Guofeng
Bai, Shizhu
Zhao, Yimin
Increased fibroblast functionality on CNN2-loaded titania nanotubes
title Increased fibroblast functionality on CNN2-loaded titania nanotubes
title_full Increased fibroblast functionality on CNN2-loaded titania nanotubes
title_fullStr Increased fibroblast functionality on CNN2-loaded titania nanotubes
title_full_unstemmed Increased fibroblast functionality on CNN2-loaded titania nanotubes
title_short Increased fibroblast functionality on CNN2-loaded titania nanotubes
title_sort increased fibroblast functionality on cnn2-loaded titania nanotubes
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3292419/
https://www.ncbi.nlm.nih.gov/pubmed/22403489
http://dx.doi.org/10.2147/IJN.S28694
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