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Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation

Surface structures and physicochemical properties critically influence osseointegration of titanium (Ti) implants. Previous studies have shown that the surface with both micro- and nanoscale roughness may provide multiple features comparable to cell dimensions and thus efficiently regulate cell-mate...

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Detalles Bibliográficos
Autores principales: Jiang, Pinliang, Zhang, Yanmei, Hu, Ren, Wang, Xiankuan, Lai, Yuekun, Rui, Gang, Lin, Changjian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7577196/
https://www.ncbi.nlm.nih.gov/pubmed/33134605
http://dx.doi.org/10.1016/j.bioactmat.2020.10.006
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author Jiang, Pinliang
Zhang, Yanmei
Hu, Ren
Wang, Xiankuan
Lai, Yuekun
Rui, Gang
Lin, Changjian
author_facet Jiang, Pinliang
Zhang, Yanmei
Hu, Ren
Wang, Xiankuan
Lai, Yuekun
Rui, Gang
Lin, Changjian
author_sort Jiang, Pinliang
collection PubMed
description Surface structures and physicochemical properties critically influence osseointegration of titanium (Ti) implants. Previous studies have shown that the surface with both micro- and nanoscale roughness may provide multiple features comparable to cell dimensions and thus efficiently regulate cell-material interaction. However, less attention has been made to further optimize the physicochemical properties (e.g., crystalline phase) and to further improve the bioactivity of micro/nanostructured surfaces. Herein, micro/nanostructured titania surfaces with different crystalline phases (amorphous, anatase and anatase/rutile) were prepared and hydroxyapatite (HA) nanorods were deposited onto the as-prepared surfaces by a spin-assisted layer-by-layer assembly method without greatly altering the initial multi-scale morphology and wettability. The effects of crystalline phase, chemical composition and wettability on osteoblast response were investigated. It is noted that all the micro/nanostructured surfaces with/without HA modification presented superamphiphilic. The activities of MC3T3-E1 cells suggested that the proliferation trend on the micro/nanostructured surfaces was greatly influenced by different crystalline phases, and the highest proliferation rate was obtained on the anatase/rutile surface, followed by the anatase; but the cell differentiation and extracellular matrix mineralization were almost the same among them. After ultrathin HA modification on the micro/nanostructured surfaces with different crystalline phases, it exhibited similar proliferation trend as the original surfaces; however, the cell differentiation and extracellular matrix mineralization were significantly improved. The results indicate that the introduction of ultrathin HA to the micro/nanostructured surfaces with optimized crystalline phase benefits cell proliferation, differentiation and maturation, which suggests a favorable biomimetic microenvironment and provides the potential for enhanced implant osseointegration in vivo.
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spelling pubmed-75771962020-10-30 Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation Jiang, Pinliang Zhang, Yanmei Hu, Ren Wang, Xiankuan Lai, Yuekun Rui, Gang Lin, Changjian Bioact Mater Article Surface structures and physicochemical properties critically influence osseointegration of titanium (Ti) implants. Previous studies have shown that the surface with both micro- and nanoscale roughness may provide multiple features comparable to cell dimensions and thus efficiently regulate cell-material interaction. However, less attention has been made to further optimize the physicochemical properties (e.g., crystalline phase) and to further improve the bioactivity of micro/nanostructured surfaces. Herein, micro/nanostructured titania surfaces with different crystalline phases (amorphous, anatase and anatase/rutile) were prepared and hydroxyapatite (HA) nanorods were deposited onto the as-prepared surfaces by a spin-assisted layer-by-layer assembly method without greatly altering the initial multi-scale morphology and wettability. The effects of crystalline phase, chemical composition and wettability on osteoblast response were investigated. It is noted that all the micro/nanostructured surfaces with/without HA modification presented superamphiphilic. The activities of MC3T3-E1 cells suggested that the proliferation trend on the micro/nanostructured surfaces was greatly influenced by different crystalline phases, and the highest proliferation rate was obtained on the anatase/rutile surface, followed by the anatase; but the cell differentiation and extracellular matrix mineralization were almost the same among them. After ultrathin HA modification on the micro/nanostructured surfaces with different crystalline phases, it exhibited similar proliferation trend as the original surfaces; however, the cell differentiation and extracellular matrix mineralization were significantly improved. The results indicate that the introduction of ultrathin HA to the micro/nanostructured surfaces with optimized crystalline phase benefits cell proliferation, differentiation and maturation, which suggests a favorable biomimetic microenvironment and provides the potential for enhanced implant osseointegration in vivo. KeAi Publishing 2020-10-20 /pmc/articles/PMC7577196/ /pubmed/33134605 http://dx.doi.org/10.1016/j.bioactmat.2020.10.006 Text en © 2020 The Authors. Production and hosting by Elsevier B.V. on behalf of KeAi Communications Co., Ltd. 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 Article
Jiang, Pinliang
Zhang, Yanmei
Hu, Ren
Wang, Xiankuan
Lai, Yuekun
Rui, Gang
Lin, Changjian
Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title_full Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title_fullStr Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title_full_unstemmed Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title_short Hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
title_sort hydroxyapatite-modified micro/nanostructured titania surfaces with different crystalline phases for osteoblast regulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7577196/
https://www.ncbi.nlm.nih.gov/pubmed/33134605
http://dx.doi.org/10.1016/j.bioactmat.2020.10.006
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