Photopolymerized maleilated chitosan/methacrylated silk fibroin micro/nanocomposite hydrogels as potential scaffolds for cartilage tissue engineering

•Photocrosslinkable water-soluble maleilated chitosan was synthesized.•The composite hydrogels based on all-natural biomacromolecules were obtained by photopolymerization.•The natural MCS/MSF composite hydrogels had the modulus comparative to articular cartilage and good biocompatibility to articula...

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Veröffentlicht in:International journal of biological macromolecules 2018-03, Vol.108, p.383-390
Hauptverfasser: Zhou, Yingshan, Liang, Kaili, Zhao, Shuyan, Zhang, Can, Li, Jun, Yang, Hongjun, Liu, Xin, Yin, Xianze, Chen, Dongzhi, Xu, Weilin, Xiao, Pu
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Sprache:eng
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Zusammenfassung:•Photocrosslinkable water-soluble maleilated chitosan was synthesized.•The composite hydrogels based on all-natural biomacromolecules were obtained by photopolymerization.•The natural MCS/MSF composite hydrogels had the modulus comparative to articular cartilage and good biocompatibility to articular chondrocytes. Hydrogels composed of natural materials exhibit great application potential in artificial scaffolds for cartilage repair as they can resemble the extracellular matrices of cartilage tissues comprised of various glycosaminoglycan and collagen. Herein, the natural polymers with vinyl groups, i.e. maleilated chitosan (MCS) and methacrylated silk fibroin (MSF) micro/nanoparticles, were firstly synthesized. The chemical structures of MCS and MSF micro/nanoparticles were investigated using Fourier transform infrared (FTIR) spectroscopy, proton nuclear magnetic resonance (1H NMR) spectroscopy, and X-ray photoelectron spectroscopy (XPS). Then MCS/MSF micro/nanocomposite hydrogels were prepared by the photocrosslinking of MCS and MSF micro/nanoparticles in aqueous solutions in the presence of the photoinitiator Darocur 2959 under UV light irradiation. A series of properties of the MCS/MSF micro/nanocomposite hydrogels including rheological property, equilibrium swelling, sol content, compressive modulus, and morphology were examined. The results showed that these behaviors could be tunable via the control of MSF content. When the MSF content was 0.1%, the hydrogel had the compressive modulus of 0.32±0.07MPa, which was in the range of that of articular cartilage. The in vitro cytotoxic evaluation and cell culture of the micro/nanocomposite hydrogels in combination with mouse articular chondrocytes were also investigated. The results demonstrated that the micro/nanocomposite hydrogels with TGF-β1 was biocompatible to mouse articular chondrocytes and could support cells attachment well, indicating their potential as tissue engineering scaffolds for cartilage repair.
ISSN:0141-8130
1879-0003
DOI:10.1016/j.ijbiomac.2017.12.032