Modular Microgel‐Based Bioassembly Scaffold Induced Chondrogenic and Osteogenic Differentiation of BMSCs

Author:

Wang Yanyan1,Yan Ruyu1,Yang Hai1,Liu Ying1,Zhong Xiupeng1,Liu Sa1ORCID,Xie Renjian2,Ren Li1ORCID

Affiliation:

1. School of Materials Science and Engineering National Engineering Research Center for Tissue Restoration and Reconstruction Key Laboratory of Biomedical Engineering of Guangdong Province Key Laboratory of Biomedical Materials and Engineering of the Ministry of Education Innovation Center for Tissue Restoration and Reconstruction South China University of Technology Guangzhou 510006 China

2. School of Medical Information Engineering Jiangxi Key Laboratory of Tissue Engineering Key Laboratory of Prevention and Treatment of Cardiovascular and Cerebrovascular Diseases (Ministry of Education) Gannan Medical University Ganzhou 341000 China

Abstract

AbstractBioactive scaffolds capable of simultaneously repairing osteochondral defects remain a big challenge due to the heterogeneity of bone and cartilage. Currently modular microgel‐based bioassembly scaffolds are emerged as potential solution to this challenge. Here, microgels based on methacrylic anhydride (MA) and dopamine modified gelatin (GelMA‐DA) are loaded with chondroitin sulfate (CS) (the obtained microgel named GC Ms) or bioactive glass (BG) (the obtained microgel named GB Ms), respectively. GC Ms and GB Ms show good biocompatibility with BMSCs, which suggested by the adhesion and proliferation of BMSCs on their surfaces. Specially, GC Ms promote chondrogenic differentiation of BMSCs, while GB Ms promote osteogenic differentiation. Furthermore, the injectable GC Ms and GB Ms are assembled integrally by bottom‐up in situ cross‐linking to obtain modular microgel‐based bioassembly scaffold (GC‐GB/HM), which show a distinct bilayer structure and good porous properties and swelling properties. Particularly, the results of in vivo and in vitro experiments show that GC‐GB/HM can simultaneously regulate the expression levels of chondrogenic‐ and osteogenesis‐related genes and proteins. Therefore, modular microgel‐based assembly scaffold in this work with the ability to promote bidirectional differentiation of BMSCs and has great potential for application in the minimally invasive treatment of osteochondral tissue defects.

Funder

Natural Science Foundation of Guangdong Province

National Natural Science Foundation of China

Publisher

Wiley

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