| Literature DB >> 31423735 |
Zhenming Wang1,2, Jin Zhao1, Wanze Tang1, Liqiu Hu1, Xin Chen1, Yiping Su3, Chang Zou4, Jianhong Wang4, William W Lu5, Wanxin Zhen1, Ronghua Zhang2,6, Dazhi Yang1, Songlin Peng1,4.
Abstract
Tissue-engineered hydrogels have received extensive attention as their mechanical properties, chemical compositions, and biological signals can be dynamically modified for mimicking extracellular matrices (ECM). Herein, the synthesis of novel double network (DN) hydrogels with tunable mechanical properties using combinatorial screening methods is reported. Furthermore, nanoengineered (NE) hydrogels are constructed by addition of ultrathin 2D black phosphorus (BP) nanosheets to the DN hydrogels with multiple functions for mimicking the ECM microenvironment to induce tissue regeneration. Notably, it is found that the BP nanosheets exhibit intrinsic properties for induced CaP crystal particle formation and therefore improve the mineralization ability of NE hydrogels. Finally, in vitro and in vivo data demonstrate that the BP nanosheets, mineralized CaP crystal nanoparticles, and excellent mechanical properties provide a favorable ECM microenvironment to mediate greater osteogenic cell differentiation and bone regeneration. Consequently, the combination of bioactive chemical materials and excellent mechanical stimuli of NE hydrogels inspire novel engineering strategies for bone-tissue regeneration.Entities:
Keywords: ECM microenvironment; biomimetic mineralization; black phosphorus nanosheets; bone-tissue engineering; high-strength nanoengineered hydrogels
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Year: 2019 PMID: 31423735 DOI: 10.1002/smll.201901560
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281