3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering

The construction of bioactive scaffolds with a suitable microenvironment for tissue regeneration provides a great promise for improving clinical treatment of osteochondral and full-thickness articular cartilage defects. Hydrogels of polysaccharides, such as alginate, agarose, chitosan, cellulose, hy...

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Published in:Designed Monomers and Polymers
Main Authors: Jianghong Huang, Zhiwang Huang, Jianyi Xiong, Jiang Xia, Youquan Wang, Lei Yang, Yujie Liang
Format: Article
Language:English
Published: Taylor & Francis Group 2023-12-01
Subjects:
Online Access:http://dx.doi.org/10.1080/15685551.2023.2284482
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author Jianghong Huang
Zhiwang Huang
Jianyi Xiong
Jiang Xia
Youquan Wang
Lei Yang
Yujie Liang
author_facet Jianghong Huang
Zhiwang Huang
Jianyi Xiong
Jiang Xia
Youquan Wang
Lei Yang
Yujie Liang
author_sort Jianghong Huang
collection DOAJ
container_title Designed Monomers and Polymers
description The construction of bioactive scaffolds with a suitable microenvironment for tissue regeneration provides a great promise for improving clinical treatment of osteochondral and full-thickness articular cartilage defects. Hydrogels of polysaccharides, such as alginate, agarose, chitosan, cellulose, hyaluronic acid, and dextran, biomimic the structure of the extracellular matrix (ECM), are exceptionally biocompatible scaffold material for tissue regeneration. The application of polysaccharide hydrogels combined with 3-dimensional (3D) printing technology can precisely distribute cell-loaded biomaterials, construct complex 3D living tissues with optimal structure and mechanical properties for osteochondral and cartilage repair. This review highlights recent advances in the development of polysaccharide-based hydrogel materials for promoting bone and cartilage tissue repair. We also highlight recent advances in 3D bioprinting polysaccharide-based hydrogel materials in cartilage regeneration. The cell type and the development of 3D bioprinting technology were described. In addition, the formation of polysaccharide – protein-based is also discussed. We outline the future trends of 3D printing including machine learning, near-infrared photopolymerization, 4D printing, and a combination of self-assembly and live-cell 3D printing-based methods.
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spelling doaj-art-e5d69ffa5cd94c14bce36d3db8bf01e02025-08-19T22:52:46ZengTaylor & Francis GroupDesigned Monomers and Polymers1385-772X1568-55512023-12-0126125827210.1080/15685551.2023.228448222844823D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineeringJianghong Huang0Zhiwang Huang1Jianyi Xiong2Jiang Xia3Youquan Wang4Lei Yang5Yujie Liang6Shenzhen Second People’s Hospital (First Affiliated Hospital of Shenzhen University , Health Science Center)Bao’an District People’s HospitalShenzhen Second People’s Hospital (First Affiliated Hospital of Shenzhen University , Health Science Center)the Chinese University of Hong KongJining Medical UniversityShenzhen Second People’s Hospital (First Affiliated Hospital of Shenzhen University , Health Science Center)Jining Medical UniversityThe construction of bioactive scaffolds with a suitable microenvironment for tissue regeneration provides a great promise for improving clinical treatment of osteochondral and full-thickness articular cartilage defects. Hydrogels of polysaccharides, such as alginate, agarose, chitosan, cellulose, hyaluronic acid, and dextran, biomimic the structure of the extracellular matrix (ECM), are exceptionally biocompatible scaffold material for tissue regeneration. The application of polysaccharide hydrogels combined with 3-dimensional (3D) printing technology can precisely distribute cell-loaded biomaterials, construct complex 3D living tissues with optimal structure and mechanical properties for osteochondral and cartilage repair. This review highlights recent advances in the development of polysaccharide-based hydrogel materials for promoting bone and cartilage tissue repair. We also highlight recent advances in 3D bioprinting polysaccharide-based hydrogel materials in cartilage regeneration. The cell type and the development of 3D bioprinting technology were described. In addition, the formation of polysaccharide – protein-based is also discussed. We outline the future trends of 3D printing including machine learning, near-infrared photopolymerization, 4D printing, and a combination of self-assembly and live-cell 3D printing-based methods.http://dx.doi.org/10.1080/15685551.2023.2284482articular cartilageosteochondral tissueosteochondral injuries3d bioprintingpolysaccharide hydrogels
spellingShingle Jianghong Huang
Zhiwang Huang
Jianyi Xiong
Jiang Xia
Youquan Wang
Lei Yang
Yujie Liang
3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
articular cartilage
osteochondral tissue
osteochondral injuries
3d bioprinting
polysaccharide hydrogels
title 3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
title_full 3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
title_fullStr 3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
title_full_unstemmed 3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
title_short 3D bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
title_sort 3d bioprinted scaffolds of polysaccharide hydrogels in osteochondral and cartilage tissue engineering
topic articular cartilage
osteochondral tissue
osteochondral injuries
3d bioprinting
polysaccharide hydrogels
url http://dx.doi.org/10.1080/15685551.2023.2284482
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