机构:[a]Shenzhen Key Laboratory of Tissue Engineering, Shenzhen Laboratory of Digital Orthopeadic Engineering, Shenzhen Second Peoples Hospital (The First Hospital Affiliated to Shenzhen University), Shenzhen, 518035, Guangdong Province, China深圳市第二人民医院深圳医学信息中心[b]Guangdong Provincial Research Center for Artificial Intelligence and Digital Orthopedic Technology, Shenzhen 518035, China[c]Postgraduate Institution, Guangzhou Medical University, Guangzhou 511436, Guangdong Province, China[d]School of Chinese Medicine, Faculty of Medicine, The Chinese University of Hong Kong, Hong Kong 999077, China
The regeneration of hyaline articular cartilage remains a major challenge due to the limited potential for cartilage to self-repair. Mesenchymal stem cell and hydrogel scaffold-based cartilage tissue engineering is a promising technique for articular cartilage therapy. The purpose of this study was to investigate the use of rabbit synovial fluid mesenchymal stem cells (rbSF-MSCs) encapsulated in an injectable chitosan-based hydrogel to repair full-thickness cartilage defects in femoral patellar grooves in rabbits. The rbSF-MSCs were obtained from rabbit synovial fluid and the surface markers of rbSF-MSCs were coincidental to the identification criteria of MSCs according to flow cytometry. The rbSF-MSCs were able to differentiate into osteogenic, adipogenic and chondrogenic lineages. In the present study, rbSF-MSCs encapsulated in glycol chitosan (GC) and benzaldehyde capped poly (ethylene oxide) (OHC-PEO-CHO) hydrogel were introduced into rabbits to repair articular cartilage defects. The modulus of the hydrogel could be regulated by the concentrations of GC and OHC-PEO-CHO and the hydrogel has a good biocompatibility to rbSF-MSCs. Assessment of in vivo repair indicates using hydrogel/rbSF-MSCs was superior to using the hydrogel scaffold only and the untreated control based on gross appearance and histological grading and evaluation. These preliminary findings suggest using the injectable chitosan-based hydrogel as a scaffold and rbSF-MSCs as seed cells is an altemative for tissue engineering of in vivo treatments for cartilage defects and these rbSF-MSCs allografts may be promising for use in clinical applications.
基金:
This study was supported financially by the National Natural
Science Foundation of China (grant no. 81572198, 81772394); Fund for
High Level Medical Discipline Construction of Shenzhen University
(grant no. 2016031638); Natural Science Foundation of Guangdong
Province, China (grant no. 2018A030310027); The Medical Research
Foundation of Guangdong Province, China (grant no. A2016314);
Shenzhen Science and Technology Projects (grant no. JCYJ20170
306093213555, JCYJ20170817171930009, JCYJ20170306092215
436, JCYJ20170412150609690, JCYJ20170413161800287, SGLH201
61209105517753, JCYJ20160301111338144, JCYJ20160429185235132).
第一作者机构:[a]Shenzhen Key Laboratory of Tissue Engineering, Shenzhen Laboratory of Digital Orthopeadic Engineering, Shenzhen Second Peoples Hospital (The First Hospital Affiliated to Shenzhen University), Shenzhen, 518035, Guangdong Province, China[b]Guangdong Provincial Research Center for Artificial Intelligence and Digital Orthopedic Technology, Shenzhen 518035, China[c]Postgraduate Institution, Guangzhou Medical University, Guangzhou 511436, Guangdong Province, China
共同第一作者:
通讯作者:
通讯机构:[a]Shenzhen Key Laboratory of Tissue Engineering, Shenzhen Laboratory of Digital Orthopeadic Engineering, Shenzhen Second Peoples Hospital (The First Hospital Affiliated to Shenzhen University), Shenzhen, 518035, Guangdong Province, China[b]Guangdong Provincial Research Center for Artificial Intelligence and Digital Orthopedic Technology, Shenzhen 518035, China[c]Postgraduate Institution, Guangzhou Medical University, Guangzhou 511436, Guangdong Province, China[*1]Department of Shenzhen Key Laboratory of Tissue Engineering, Shenzhen Laboratory of Digital Orthopeadic Engineering, Shenzhen Second People's Hospital (The First Hospital Affiliated to Shenzhen University), Shenzhen, 518035, Guangdong Province, China.
推荐引用方式(GB/T 7714):
Zhaofeng Jia,Feiyan Zhu,Xingfu Li,et al.Repair of osteochondral defects using injectable chitosan-based hydrogel encapsulated synovial fluid-derived mesenchymal stem cells in a rabbit model[J].MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS.2019,99:541-551.doi:10.1016/j.msec.2019.01.115.
APA:
Zhaofeng Jia,Feiyan Zhu,Xingfu Li,Qian Liang,Zhenjian Zhuo...&Daping Wang.(2019).Repair of osteochondral defects using injectable chitosan-based hydrogel encapsulated synovial fluid-derived mesenchymal stem cells in a rabbit model.MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS,99,
MLA:
Zhaofeng Jia,et al."Repair of osteochondral defects using injectable chitosan-based hydrogel encapsulated synovial fluid-derived mesenchymal stem cells in a rabbit model".MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS 99.(2019):541-551