材料科学
膜
生物相容性
纳米复合材料
纳米技术
再生(生物学)
聚偏氟乙烯
静电纺丝
细胞外基质
骨组织
表面改性
生物医学工程
粘附
骨愈合
成骨细胞
铁电性
化学工程
复合材料
化学
聚合物
解剖
细胞生物学
电介质
生物
医学
冶金
生物化学
体外
光电子学
工程类
作者
Yu Fu,Si Huang,Zeru Feng,Lirong Huang,Xiaoqing Zhang,Hua Lin,Anchun Mo
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2023-01-30
卷期号:9 (2): 900-917
被引量:22
标识
DOI:10.1021/acsbiomaterials.2c01174
摘要
Rapid and effective bone defect repair remains a challenging issue for clinical treatment. Applying biomaterials with endogenous surface potential has been widely studied to enhance bone regeneration, but how to regulate the electric potential and surface morphology of the implanted materials precisely to achieve an optimal bioelectric microenvironment is still a major challenge. The aim of this study is to develop electroactive biomaterials that better mimic the extracellular microenvironment for bone regeneration. Hence, MXene/polyvinylidene fluoride (MXene/PVDF) ferroelectric nanocomposite membranes were prepared by electrospinning. Physicochemical characterization demonstrated that Ti3C2Tx MXene nanosheets were wrapped in PVDF shell layer and the surface morphology and potential were modulated by altering the content of MXene, where uniform distribution of fibers and enhanced electric potential can be obtained and precisely assembled into a natural extracellular matrix (ECM) in bone tissue. Consequently, the MXene/PVDF membranes facilitated cell adhesion, stretching, and growth, showing good biocompatibility; meanwhile, their intrinsic electric potential promoted the recruitment of osteogenic cells and accelerated the differentiation of osteoblast. Furthermore, 1 wt % MXene/PVDF membrane with a suitable surface potential and better topographical structure for bone regeneration qualitatively and quantitatively promoted bone tissue formation in a rat calvarial bone defect after 4 and 8 weeks of healing. The fabricated MXene/PVDF ferroelectric nanocomposite membranes show a biomimetic microenvironment with a sustainable electric potential and optimal 3D topographical structure, providing an innovative and well-suited strategy for application in bone regeneration.
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