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Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration

The incidence of articular cartilage defects is increasing year by year. In order to repair the cartilage tissue at the defect, scaffolds with nanofiber structure and biocompatibility have become a research hotspot. In this study, we designed and fabricated a bi-layer scaffold prepared from an upper...

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Autores principales: Yue, Yunqing, Xu, Peihu, Lei, Zhixin, Li, Kebi, Xu, Jingyi, Wen, Jing, Wang, Sining, Cheng, Wanting, Lin, Sihui, Huang, Zhijun, Xu, Haixing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8985181/
https://www.ncbi.nlm.nih.gov/pubmed/35424939
http://dx.doi.org/10.1039/d2ra00311b
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author Yue, Yunqing
Xu, Peihu
Lei, Zhixin
Li, Kebi
Xu, Jingyi
Wen, Jing
Wang, Sining
Cheng, Wanting
Lin, Sihui
Huang, Zhijun
Xu, Haixing
author_facet Yue, Yunqing
Xu, Peihu
Lei, Zhixin
Li, Kebi
Xu, Jingyi
Wen, Jing
Wang, Sining
Cheng, Wanting
Lin, Sihui
Huang, Zhijun
Xu, Haixing
author_sort Yue, Yunqing
collection PubMed
description The incidence of articular cartilage defects is increasing year by year. In order to repair the cartilage tissue at the defect, scaffolds with nanofiber structure and biocompatibility have become a research hotspot. In this study, we designed and fabricated a bi-layer scaffold prepared from an upper layer of drug-dispersed gelatin methacrylate (GELMA) hydrogel and a lower layer of a drug-encapsulated coaxial fiber scaffold prepared from silk fiber (SF) and polylactic acid (PLA). These bi-layer scaffolds have porosity (91.26 ± 3.94%) sufficient to support material exchange and pore size suitable for cell culture and infiltration, as well as mechanical properties (2.65 ± 0.31 MPa) that meet the requirements of cartilage tissue engineering. The coaxial fiber structure exhibited excellent drug release properties, maintaining drug release for 14 days in PBS. In vitro experiments indicated that the scaffolds were not toxic to cells and were amenable to chondrocyte migration. Notably, the growth of cells in a bi-layer scaffold presented two states. In the hydrogel layer, cells grow through interconnected pores and take on a connective tissue-like shape. In the coaxial fiber layer, cells grow on the surface of the coaxial fiber mats and appeared tablet-like. This is similar to the structure of the functional partitions of natural cartilage tissue. Together, the bi-layer scaffold can play a positive role in cartilage regeneration, which could be a potential therapeutic choice to solve the current problems of clinical cartilage repair.
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spelling pubmed-89851812022-04-13 Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration Yue, Yunqing Xu, Peihu Lei, Zhixin Li, Kebi Xu, Jingyi Wen, Jing Wang, Sining Cheng, Wanting Lin, Sihui Huang, Zhijun Xu, Haixing RSC Adv Chemistry The incidence of articular cartilage defects is increasing year by year. In order to repair the cartilage tissue at the defect, scaffolds with nanofiber structure and biocompatibility have become a research hotspot. In this study, we designed and fabricated a bi-layer scaffold prepared from an upper layer of drug-dispersed gelatin methacrylate (GELMA) hydrogel and a lower layer of a drug-encapsulated coaxial fiber scaffold prepared from silk fiber (SF) and polylactic acid (PLA). These bi-layer scaffolds have porosity (91.26 ± 3.94%) sufficient to support material exchange and pore size suitable for cell culture and infiltration, as well as mechanical properties (2.65 ± 0.31 MPa) that meet the requirements of cartilage tissue engineering. The coaxial fiber structure exhibited excellent drug release properties, maintaining drug release for 14 days in PBS. In vitro experiments indicated that the scaffolds were not toxic to cells and were amenable to chondrocyte migration. Notably, the growth of cells in a bi-layer scaffold presented two states. In the hydrogel layer, cells grow through interconnected pores and take on a connective tissue-like shape. In the coaxial fiber layer, cells grow on the surface of the coaxial fiber mats and appeared tablet-like. This is similar to the structure of the functional partitions of natural cartilage tissue. Together, the bi-layer scaffold can play a positive role in cartilage regeneration, which could be a potential therapeutic choice to solve the current problems of clinical cartilage repair. The Royal Society of Chemistry 2022-03-25 /pmc/articles/PMC8985181/ /pubmed/35424939 http://dx.doi.org/10.1039/d2ra00311b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yue, Yunqing
Xu, Peihu
Lei, Zhixin
Li, Kebi
Xu, Jingyi
Wen, Jing
Wang, Sining
Cheng, Wanting
Lin, Sihui
Huang, Zhijun
Xu, Haixing
Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title_full Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title_fullStr Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title_full_unstemmed Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title_short Preparation and characterization of a novel drug-loaded Bi-layer scaffold for cartilage regeneration
title_sort preparation and characterization of a novel drug-loaded bi-layer scaffold for cartilage regeneration
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8985181/
https://www.ncbi.nlm.nih.gov/pubmed/35424939
http://dx.doi.org/10.1039/d2ra00311b
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