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Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity

Strategies to improve the acceptance of scaffolds by the body is crucial in tissue engineering (TE) which requires tailoring of the pore structure, mechanical properties and surface characteristics of the scaffolds. In the current study we used a 3-dimensional (3D) printing technique to tailor the p...

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Autores principales: Jose, Jiya, Sultan, Sahar, Kalarikkal, Nandakumar, Thomas, Sabu, Mathew, Aji P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057203/
https://www.ncbi.nlm.nih.gov/pubmed/35515181
http://dx.doi.org/10.1039/d0ra08295c
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author Jose, Jiya
Sultan, Sahar
Kalarikkal, Nandakumar
Thomas, Sabu
Mathew, Aji P.
author_facet Jose, Jiya
Sultan, Sahar
Kalarikkal, Nandakumar
Thomas, Sabu
Mathew, Aji P.
author_sort Jose, Jiya
collection PubMed
description Strategies to improve the acceptance of scaffolds by the body is crucial in tissue engineering (TE) which requires tailoring of the pore structure, mechanical properties and surface characteristics of the scaffolds. In the current study we used a 3-dimensional (3D) printing technique to tailor the pore structure and mechanical properties of (i) nanocellulose based hydrogel scaffolds for soft tissue engineering and (ii) poly lactic acid (PLA) based scaffolds for hard tissue engineering in combination with surface treatment by protein conjugation for tuning the scaffold bioactivity. Dopamine coating of the scaffolds enhanced the hydrophilicity and their capability to bind bioactive molecules such as fibroblast growth factor (FGF-18) for soft TE scaffolds and arginyl glycyl aspartic acid (RGD) peptide for hard TE scaffolds, which was confirmed using MALDI-TOFs. This functionalization approach enhanced the performance of the scaffolds and provided antimicrobial activity indicating that these scaffolds can be used for cartilage or bone regeneration applications. Blood compatibility studies revealed that both the materials were compatible with human red blood cells. Significant enhancement of cell attachment and proliferation confirmed the bioactivity of growth factor functionalized 3D printed soft and hard tissues. This approach of combining 3D printing with biological tuning of the interface is expected to significantly advance the development of biomedical materials related to soft and hard tissue engineering.
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spelling pubmed-90572032022-05-04 Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity Jose, Jiya Sultan, Sahar Kalarikkal, Nandakumar Thomas, Sabu Mathew, Aji P. RSC Adv Chemistry Strategies to improve the acceptance of scaffolds by the body is crucial in tissue engineering (TE) which requires tailoring of the pore structure, mechanical properties and surface characteristics of the scaffolds. In the current study we used a 3-dimensional (3D) printing technique to tailor the pore structure and mechanical properties of (i) nanocellulose based hydrogel scaffolds for soft tissue engineering and (ii) poly lactic acid (PLA) based scaffolds for hard tissue engineering in combination with surface treatment by protein conjugation for tuning the scaffold bioactivity. Dopamine coating of the scaffolds enhanced the hydrophilicity and their capability to bind bioactive molecules such as fibroblast growth factor (FGF-18) for soft TE scaffolds and arginyl glycyl aspartic acid (RGD) peptide for hard TE scaffolds, which was confirmed using MALDI-TOFs. This functionalization approach enhanced the performance of the scaffolds and provided antimicrobial activity indicating that these scaffolds can be used for cartilage or bone regeneration applications. Blood compatibility studies revealed that both the materials were compatible with human red blood cells. Significant enhancement of cell attachment and proliferation confirmed the bioactivity of growth factor functionalized 3D printed soft and hard tissues. This approach of combining 3D printing with biological tuning of the interface is expected to significantly advance the development of biomedical materials related to soft and hard tissue engineering. The Royal Society of Chemistry 2020-10-14 /pmc/articles/PMC9057203/ /pubmed/35515181 http://dx.doi.org/10.1039/d0ra08295c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jose, Jiya
Sultan, Sahar
Kalarikkal, Nandakumar
Thomas, Sabu
Mathew, Aji P.
Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title_full Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title_fullStr Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title_full_unstemmed Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title_short Fabrication and functionalization of 3D-printed soft and hard scaffolds with growth factors for enhanced bioactivity
title_sort fabrication and functionalization of 3d-printed soft and hard scaffolds with growth factors for enhanced bioactivity
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057203/
https://www.ncbi.nlm.nih.gov/pubmed/35515181
http://dx.doi.org/10.1039/d0ra08295c
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