Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium

Titainum (Ti) implants have been successfully used in orthopaedic and dental surgery. However, poor early bone tissue integration is still a common cause of implant failure. This could be modulated by improving the material bonding or adhesion directly to the bone by surface roughening and/or a bior...

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Main Authors: Thi, Le Bang, Shi, Rui, Long, Bui Duc, Ramesh, S., Shi, Xingling, Sugiura, Yuki, Ishikawa, Kunio
Format: Article
Published: IOP Publishing 2020
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Online Access:http://eprints.um.edu.my/36739/
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Institution: Universiti Malaya
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spelling my.um.eprints.367392024-11-05T08:26:12Z http://eprints.um.edu.my/36739/ Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium Thi, Le Bang Shi, Rui Long, Bui Duc Ramesh, S. Shi, Xingling Sugiura, Yuki Ishikawa, Kunio TJ Mechanical engineering and machinery Titainum (Ti) implants have been successfully used in orthopaedic and dental surgery. However, poor early bone tissue integration is still a common cause of implant failure. This could be modulated by improving the material bonding or adhesion directly to the bone by surface roughening and/or a bioresorbable and osteoconductive coating. In this study, we report on the biological behaviours of the Ti substrate with modified surface roughness and/or a calcium carbonate (CaCO3) coating. The roughened Ti surface was prepared using an acid etching reaction, and the CaCO3 coating on the substrates was synthesized by the hydrothermal treatment of Ti in calcium citrate complexes. This study demonstrates that surface roughening of Ti alone does not improve the biological response of the MC3T3-E1 cells, but a CaCO3 coating on the smooth Ti surface increases cell responses, and these effects are further enhanced by the combination of coating a roughened Ti surface with CaCO3. The larger the cell area, the greater the cell proliferation and increased bone-like nodule formation were observed on the CaCO3 coating of the roughened Ti surface. This observation was also supported by a higher ALP value. The cell behaviours found in the current study further support the development of CaCO3 coatings towards clinical application. IOP Publishing 2020-05 Article PeerReviewed Thi, Le Bang and Shi, Rui and Long, Bui Duc and Ramesh, S. and Shi, Xingling and Sugiura, Yuki and Ishikawa, Kunio (2020) Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium. Biomedical Materials, 15 (3). ISSN 1748-6041, DOI https://doi.org/10.1088/1748-605X/ab6939 <https://doi.org/10.1088/1748-605X/ab6939>. 10.1088/1748-605X/ab6939
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Thi, Le Bang
Shi, Rui
Long, Bui Duc
Ramesh, S.
Shi, Xingling
Sugiura, Yuki
Ishikawa, Kunio
Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
description Titainum (Ti) implants have been successfully used in orthopaedic and dental surgery. However, poor early bone tissue integration is still a common cause of implant failure. This could be modulated by improving the material bonding or adhesion directly to the bone by surface roughening and/or a bioresorbable and osteoconductive coating. In this study, we report on the biological behaviours of the Ti substrate with modified surface roughness and/or a calcium carbonate (CaCO3) coating. The roughened Ti surface was prepared using an acid etching reaction, and the CaCO3 coating on the substrates was synthesized by the hydrothermal treatment of Ti in calcium citrate complexes. This study demonstrates that surface roughening of Ti alone does not improve the biological response of the MC3T3-E1 cells, but a CaCO3 coating on the smooth Ti surface increases cell responses, and these effects are further enhanced by the combination of coating a roughened Ti surface with CaCO3. The larger the cell area, the greater the cell proliferation and increased bone-like nodule formation were observed on the CaCO3 coating of the roughened Ti surface. This observation was also supported by a higher ALP value. The cell behaviours found in the current study further support the development of CaCO3 coatings towards clinical application.
format Article
author Thi, Le Bang
Shi, Rui
Long, Bui Duc
Ramesh, S.
Shi, Xingling
Sugiura, Yuki
Ishikawa, Kunio
author_facet Thi, Le Bang
Shi, Rui
Long, Bui Duc
Ramesh, S.
Shi, Xingling
Sugiura, Yuki
Ishikawa, Kunio
author_sort Thi, Le Bang
title Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
title_short Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
title_full Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
title_fullStr Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
title_full_unstemmed Biological responses of MC3T3-E1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
title_sort biological responses of mc3t3-e1 on calcium carbonate coatings fabricated by hydrothermal reaction on titanium
publisher IOP Publishing
publishDate 2020
url http://eprints.um.edu.my/36739/
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