Osteochondral tissue engineering-based subchondral bone plate repair (Review)

被引:0
作者
Zhang, Xiaoyang [1 ]
Jiang, Weibo [2 ]
Danzeng, Quezhu [2 ]
Shen, Yi [2 ]
Cui, Mengying [1 ]
机构
[1] Second Hosp Jilin Univ, Jilin Prov Key Lab Mol & Chem Genet, 218 Ziqiang St, Changchun 130000, Jilin, Peoples R China
[2] Second Hosp Jilin Univ, Orthoped Med Ctr, Changchun 130000, Jilin, Peoples R China
关键词
osteochondral defect; subchondral bone plate; tissue engineering strategy; translational animal; osteochondral regeneration; ARTICULAR-CARTILAGE; COMPOSITE SCAFFOLD; REGENERATION; ARCHITECTURE; DEFECTS; CELLS; GUIDE;
D O I
10.3892/mmr.2025.13517
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Osteochondral defects are a series of pathological changes from the chondral surface to the deeper trabecular bone caused by trauma or degenerative changes; they typically induce serious joint dysfunction. Over the past few decades, various techniques have been attempted to repair these defects. Tissue-engineered osteochondral grafts (TEOGs) with sophisticated architecture have been extensively explored for osteochondral regeneration. However, controversies persist regarding standards for clinical application of TEOGs. The present review focused on the design of TEOGs, emphasizing their capacity to repair the subchondral bone plate (SBP). The effect of animal models on techniques to repair osteochondral defects was also reviewed. To improve the evaluation of SBP regeneration, four typical histological characteristics (abnormal height, uneven surface, poor integration and loose internal structure) are summarized based on cases of unsatisfactory SBP regeneration. Incorporating mesenchymal stem cells with appropriate growth factors into trilayer or multilayer tissue-engineered scaffolds is a promising strategy to avoid unsatisfactory SBP regeneration. Large animal models are recommended for translation to the clinic and there is a need to establish detailed and comprehensive osteochondral defect models in the future.
引用
收藏
页数:16
相关论文
共 99 条
[11]   3D printing of fibre-reinforced cartilaginous templates for the regeneration of osteochondral defects [J].
Critchley, Susan ;
Sheehy, Eamon J. ;
Cunniffe, Grainne ;
Diaz-Payno, Pedro ;
Carroll, Simon F. ;
Jeon, Oju ;
Alsberg, Eben ;
Brama, Pieter A. J. ;
Kelly, Daniel J. .
ACTA BIOMATERIALIA, 2020, 113 :130-143
[12]   A composite bilayer scaffold functionalized for osteochondral tissue regeneration in rat animal model [J].
Dargoush, Shabnam Abedin ;
Hanaee-Ahvaz, Hana ;
Irani, Shiva ;
Soleimani, Masoud ;
Khatami, Seyedeh Mahsa ;
Sohi, Alireza Naderi .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2022, 16 (06) :559-574
[13]   3D-Printed Porous Scaffolds of Hydrogels Modified with TGF-β1 Binding Peptides to Promote In Vivo Cartilage Regeneration and Animal Gait Restoration [J].
Ding, Xiaoquan ;
Gao, Jingming ;
Yu, Xiaoye ;
Shi, Jiayue ;
Chen, Jun ;
Yu, Lin ;
Chen, Shiyi ;
Ding, Jiandong .
ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (14) :15982-15995
[14]   Selective laser sintering scaffold with hierarchical architecture and gradient composition for osteochondral repair in rabbits [J].
Du, Yingying ;
Liu, Haoming ;
Yang, Qin ;
Wang, Shuai ;
Wang, Jianglin ;
Ma, Jun ;
Noh, Insup ;
Mikos, Antonios G. ;
Zhang, Shengmin .
BIOMATERIALS, 2017, 137 :37-48
[15]   High-Strength, Biomimetic Functional Chitosan-Based Hydrogels for Full-Thickness Osteochondral Defect Repair [J].
Fang, Ju ;
Liao, Junchen ;
Zhong, Chuanxin ;
Lu, Xiong ;
Ren, Fuzeng .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2022, 8 (10) :4449-4461
[16]   Influence of pore architectures of silk fibroin/collagen composite scaffolds on the regeneration of osteochondral defects in vivo [J].
Feng, Xue ;
Xu, Peifang ;
Shen, Tao ;
Zhang, Yihan ;
Ye, Juan ;
Gao, Changyou .
JOURNAL OF MATERIALS CHEMISTRY B, 2020, 8 (03) :391-405
[17]   Bone-cartilage crosstalk: a conversation for understanding osteoarthritis [J].
Findlay, David M. ;
Kuliwaba, Julia S. .
BONE RESEARCH, 2016, 4
[18]   Cartilage Tissue Engineering Using Stem Cells and Bioprinting Technology-Barriers to Clinical Translation [J].
Francis, Sam L. ;
Di Bella, Claudia ;
Wallace, Gordon G. ;
Choong, Peter F. M. .
FRONTIERS IN SURGERY, 2018, 5
[19]   Cell-Free Bilayered Porous Scaffolds for Osteochondral Regeneration Fabricated by Continuous 3D-Printing Using Nascent Physical Hydrogel as Ink [J].
Gao, Jingming ;
Ding, Xiaoquan ;
Yu, Xiaoye ;
Chen, Xiaobin ;
Zhang, Xingyu ;
Cui, Shuquan ;
Shi, Jiayue ;
Chen, Jun ;
Yu, Lin ;
Chen, Shiyi ;
Ding, Jiandong .
ADVANCED HEALTHCARE MATERIALS, 2021, 10 (03)
[20]   Integrated polycaprolactone microsphere-based scaffolds with biomimetic hierarchy and tunable vascularization for osteochondral repair [J].
Gu, Xiang ;
Zha, Yao ;
Li, Yawu ;
Chen, Jia ;
Liu, Shuaibing ;
Du, Yingying ;
Zhang, Shengmin ;
Wang, Jianglin .
ACTA BIOMATERIALIA, 2022, 141 :190-197