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The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration

The development of surface modification techniques has brought about a major paradigm shift in the clinical applications of bone tissue regeneration. Biofabrication strategies enable the creation of scaffolds with specific microstructural environments and biological components. Lithium (Li) has been...

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Autores principales: Lin, Tsung-Li, Lin, Yen-Hong, Lee, Alvin Kai-Xing, Kuo, Ting-You, Chen, Cheng-Yu, Chen, Kun-Hao, Chou, Yun-Ting, Chen, Yi-Wen, Shie, Ming-You
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393792/
https://www.ncbi.nlm.nih.gov/pubmed/37538916
http://dx.doi.org/10.1016/j.mtbio.2023.100728
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author Lin, Tsung-Li
Lin, Yen-Hong
Lee, Alvin Kai-Xing
Kuo, Ting-You
Chen, Cheng-Yu
Chen, Kun-Hao
Chou, Yun-Ting
Chen, Yi-Wen
Shie, Ming-You
author_facet Lin, Tsung-Li
Lin, Yen-Hong
Lee, Alvin Kai-Xing
Kuo, Ting-You
Chen, Cheng-Yu
Chen, Kun-Hao
Chou, Yun-Ting
Chen, Yi-Wen
Shie, Ming-You
author_sort Lin, Tsung-Li
collection PubMed
description The development of surface modification techniques has brought about a major paradigm shift in the clinical applications of bone tissue regeneration. Biofabrication strategies enable the creation of scaffolds with specific microstructural environments and biological components. Lithium (Li) has been reported to exhibit anti-inflammatory, osteogenic, and chondrogenic properties by promoting several intracellular signaling pathways. Currently, research focuses on fabricating scaffolds with simultaneous dual bioactivities to enhance osteochondral regeneration. In this study, we modified the surface of calcium silicate (CS) scaffolds with Li using a simple immersion technique and evaluated their capabilities for bone regeneration. The results showed that Li ions could be easily coated onto the surfaces of CS scaffolds without affecting the microstructural properties of CS itself. Furthermore, the modifications did not affect the printing capabilities of the CS, and porous scaffolds could be fabricated via extrusion. Moreover, the presence of Li improved the surface roughness and hydrophilicity, thus leading to enhanced secretion of osteochondral-related regeneration factors, such as alkaline phosphatase (ALP), bone sialoprotein (BSP), and collagen II (Col II) proteins. Subsequent in vivo studies, including histological and micro-CT analyses, confirmed that the Li-modified CS scaffolds promoted osteochondral regeneration. The transcriptome analysis suggested that the enhanced osteochondrogenic capabilities of our scaffolds were influenced by paracrine exosomes. We hope this study will inspire further research on osteochondral regeneration.
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spelling pubmed-103937922023-08-03 The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration Lin, Tsung-Li Lin, Yen-Hong Lee, Alvin Kai-Xing Kuo, Ting-You Chen, Cheng-Yu Chen, Kun-Hao Chou, Yun-Ting Chen, Yi-Wen Shie, Ming-You Mater Today Bio Full Length Article The development of surface modification techniques has brought about a major paradigm shift in the clinical applications of bone tissue regeneration. Biofabrication strategies enable the creation of scaffolds with specific microstructural environments and biological components. Lithium (Li) has been reported to exhibit anti-inflammatory, osteogenic, and chondrogenic properties by promoting several intracellular signaling pathways. Currently, research focuses on fabricating scaffolds with simultaneous dual bioactivities to enhance osteochondral regeneration. In this study, we modified the surface of calcium silicate (CS) scaffolds with Li using a simple immersion technique and evaluated their capabilities for bone regeneration. The results showed that Li ions could be easily coated onto the surfaces of CS scaffolds without affecting the microstructural properties of CS itself. Furthermore, the modifications did not affect the printing capabilities of the CS, and porous scaffolds could be fabricated via extrusion. Moreover, the presence of Li improved the surface roughness and hydrophilicity, thus leading to enhanced secretion of osteochondral-related regeneration factors, such as alkaline phosphatase (ALP), bone sialoprotein (BSP), and collagen II (Col II) proteins. Subsequent in vivo studies, including histological and micro-CT analyses, confirmed that the Li-modified CS scaffolds promoted osteochondral regeneration. The transcriptome analysis suggested that the enhanced osteochondrogenic capabilities of our scaffolds were influenced by paracrine exosomes. We hope this study will inspire further research on osteochondral regeneration. Elsevier 2023-07-19 /pmc/articles/PMC10393792/ /pubmed/37538916 http://dx.doi.org/10.1016/j.mtbio.2023.100728 Text en © 2023 The Authors. Published by Elsevier Ltd. https://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 Full Length Article
Lin, Tsung-Li
Lin, Yen-Hong
Lee, Alvin Kai-Xing
Kuo, Ting-You
Chen, Cheng-Yu
Chen, Kun-Hao
Chou, Yun-Ting
Chen, Yi-Wen
Shie, Ming-You
The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title_full The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title_fullStr The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title_full_unstemmed The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title_short The exosomal secretomes of mesenchymal stem cells extracted via 3D-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
title_sort exosomal secretomes of mesenchymal stem cells extracted via 3d-printed lithium-doped calcium silicate scaffolds promote osteochondral regeneration
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393792/
https://www.ncbi.nlm.nih.gov/pubmed/37538916
http://dx.doi.org/10.1016/j.mtbio.2023.100728
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