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An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications

The present study was conducted to manipulate various biomaterials to find potential hydrogel formulations through three-dimensional (3D) bioprinting fabrication for tissue repair, reconstruction, or regeneration. The hydrogels were prepared using sodium alginate and gelatin combined with different...

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Autores principales: Mappa, Taufik Abdullah, Liu, Chung-Ming, Tseng, Chung-Chih, Ruslin, Muhammad, Cheng, Jui-Hung, Lan, Wen-Chien, Huang, Bai-Hung, Cho, Yung-Chieh, Hsieh, Chia-Chien, Kuo, Hsin-Hui, Tsou, Chen-Han, Shen, Yung-Kang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10421221/
https://www.ncbi.nlm.nih.gov/pubmed/37571117
http://dx.doi.org/10.3390/polym15153223
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author Mappa, Taufik Abdullah
Liu, Chung-Ming
Tseng, Chung-Chih
Ruslin, Muhammad
Cheng, Jui-Hung
Lan, Wen-Chien
Huang, Bai-Hung
Cho, Yung-Chieh
Hsieh, Chia-Chien
Kuo, Hsin-Hui
Tsou, Chen-Han
Shen, Yung-Kang
author_facet Mappa, Taufik Abdullah
Liu, Chung-Ming
Tseng, Chung-Chih
Ruslin, Muhammad
Cheng, Jui-Hung
Lan, Wen-Chien
Huang, Bai-Hung
Cho, Yung-Chieh
Hsieh, Chia-Chien
Kuo, Hsin-Hui
Tsou, Chen-Han
Shen, Yung-Kang
author_sort Mappa, Taufik Abdullah
collection PubMed
description The present study was conducted to manipulate various biomaterials to find potential hydrogel formulations through three-dimensional (3D) bioprinting fabrication for tissue repair, reconstruction, or regeneration. The hydrogels were prepared using sodium alginate and gelatin combined with different concentrations of Pluronic F127 (6% (3 g), 8% (4 g), and 10% (5 g)) and were marked as AGF-6%, AGF-8%, and AGF-10%, respectively. The properties of the hydrogels were investigated using a contact angle goniometer, rheometer, and 3D bioprinter. In addition, the osteoblast-like cell line (MG-63) was used to evaluate the cell viability including hydrogels before and after 3D bioprinting. It was found that the ratio of contact angle was lowest at AGF-6%, and the rheological results were higher for all samples of AGF-6%, AGF-8%, and AGF-10% compared with the control sample. The printability indicated that the AGF-6% hydrogel possessed great potential in creating a cell scaffold with shape integrity. Moreover, the live/dead assay also presented the highest numbers of live cells before printing compared with after printing. However, the number of live cells on day 7 was higher than on day 1 before and after printing (** p < 0.01). Therefore, the combination of AGF-6% could be developed as a biofunctional hydrogel formulation for potential tissue regeneration applications.
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spelling pubmed-104212212023-08-12 An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications Mappa, Taufik Abdullah Liu, Chung-Ming Tseng, Chung-Chih Ruslin, Muhammad Cheng, Jui-Hung Lan, Wen-Chien Huang, Bai-Hung Cho, Yung-Chieh Hsieh, Chia-Chien Kuo, Hsin-Hui Tsou, Chen-Han Shen, Yung-Kang Polymers (Basel) Article The present study was conducted to manipulate various biomaterials to find potential hydrogel formulations through three-dimensional (3D) bioprinting fabrication for tissue repair, reconstruction, or regeneration. The hydrogels were prepared using sodium alginate and gelatin combined with different concentrations of Pluronic F127 (6% (3 g), 8% (4 g), and 10% (5 g)) and were marked as AGF-6%, AGF-8%, and AGF-10%, respectively. The properties of the hydrogels were investigated using a contact angle goniometer, rheometer, and 3D bioprinter. In addition, the osteoblast-like cell line (MG-63) was used to evaluate the cell viability including hydrogels before and after 3D bioprinting. It was found that the ratio of contact angle was lowest at AGF-6%, and the rheological results were higher for all samples of AGF-6%, AGF-8%, and AGF-10% compared with the control sample. The printability indicated that the AGF-6% hydrogel possessed great potential in creating a cell scaffold with shape integrity. Moreover, the live/dead assay also presented the highest numbers of live cells before printing compared with after printing. However, the number of live cells on day 7 was higher than on day 1 before and after printing (** p < 0.01). Therefore, the combination of AGF-6% could be developed as a biofunctional hydrogel formulation for potential tissue regeneration applications. MDPI 2023-07-28 /pmc/articles/PMC10421221/ /pubmed/37571117 http://dx.doi.org/10.3390/polym15153223 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mappa, Taufik Abdullah
Liu, Chung-Ming
Tseng, Chung-Chih
Ruslin, Muhammad
Cheng, Jui-Hung
Lan, Wen-Chien
Huang, Bai-Hung
Cho, Yung-Chieh
Hsieh, Chia-Chien
Kuo, Hsin-Hui
Tsou, Chen-Han
Shen, Yung-Kang
An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title_full An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title_fullStr An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title_full_unstemmed An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title_short An Innovative Biofunctional Composite Hydrogel with Enhanced Printability, Rheological Properties, and Structural Integrity for Cell Scaffold Applications
title_sort innovative biofunctional composite hydrogel with enhanced printability, rheological properties, and structural integrity for cell scaffold applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10421221/
https://www.ncbi.nlm.nih.gov/pubmed/37571117
http://dx.doi.org/10.3390/polym15153223
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