Biomimetic Hydrogels Loaded with Nanofibers Mediate Sustained Release of pDNA and Promote In Situ Bone Regeneration.
Lin HuangZhijie ZhangMingtao GuoCile PanZhiguan HuangJunfei JinYuhe LiXiaohui HouWen-Qiang LiPublished in: Macromolecular bioscience (2021)
Polymer hydrogels are generally insufficient biomechanics, strong resistance to cell adhesion, and weak bioactivity which limits their application in bone tissue engineering considerably. In order to develop a bone tissue engineering material with both good mechanical properties, osteogenic and angiogenic activity. Nanofibers carrying DNA plasmid (pNF) are introduced to gelatin methacryloyl (GelMA) and thiolated chitosan (TCS) system for preparing a novel GelMA/TCS/pNF composite hydrogel with dual network structure. By characterization of the compressive measurements, the resulting composite scaffold shows greatly enhanced mechanical strength (0.53 MPa) and is not damaged after 20 cycles of compression. And the fabricated composite scaffold displays sustained release of bone morphogenetic protein-2 that can induce osteogenic differentiation and angiopoietin-1 that promotes vascularization. The cell experiment shows that this system can significantly promote MC3T3-E1 cell attachment, proliferation, as well as osteogenic-related and angiogenic-related genes expression of MC3T3-E1 cells. Moreover, the in vivo results show that the composite scaffold with activated gene fibers can significantly promote osteogenesis and vascularization leading to favorable capacity of bone regeneration, meaning that the resulting biomimetic composite hydrogel scaffolds are excellent candidates for bone repair materials.
Keyphrases
- tissue engineering
- bone regeneration
- mesenchymal stem cells
- bone marrow
- cell adhesion
- single cell
- cell therapy
- induced apoptosis
- escherichia coli
- signaling pathway
- dna methylation
- stem cells
- wound healing
- cell cycle arrest
- bone mineral density
- genome wide
- cell death
- palliative care
- genome wide identification
- cancer therapy
- binding protein
- hyaluronic acid
- cell proliferation
- bone loss
- drug release
- advanced cancer