Polydopamine-mediated immobilization of BMP-2 onto electrospun nanofibers enhances bone regeneration

静电纺丝 材料科学 再生(生物学) 纳米纤维 骨形态发生蛋白2 化学工程 体外 纳米技术 细胞生物学 聚合物 复合材料 化学 生物化学 生物 工程类
作者
Zhuo Chen,Jing Li,Zichen Wang,Yuehui Chen,Mingchao Jin,Shuo Chen,Jinlu Xie,Shuhui Ge,Hongyi He,Juntao Xu,Fengfeng Wu
出处
期刊:Nanotechnology [IOP Publishing]
卷期号:35 (32): 325101-325101 被引量:3
标识
DOI:10.1088/1361-6528/ad4554
摘要

Abstract Dealing with bone defects is a significant challenge to global health. Electrospinning in bone tissue engineering has emerged as a solution to this problem. In this study, we designed a PVDF-b-PTFE block copolymer by incorporating TFE, which induced a phase shift in PVDF from α to β , thereby enhancing the piezoelectric effect. Utilizing the electrospinning process, we not only converted the material into a film with a significant surface area and high porosity but also intensified the piezoelectric effect. Then we used polydopamine to immobilize BMP-2 onto PVDF-b-PTFE electrospun nanofibrous membranes, achieving a controlled release of BMP-2. The scaffold’s characters were examined using SEM and XRD. To assess its osteogenic effects in vitro , we monitored the proliferation of MC3T3-E1 cells on the fibers, conducted ARS staining, and measured the expression of osteogenic genes. In vivo , bone regeneration effects were analyzed through micro-CT scanning and HE staining. ELISA assays confirmed that the sustained release of BMP-2 can be maintained for at least 28 d. SEM images and CCK-8 results demonstrated enhanced cell viability and improved adhesion in the experimental group. Furthermore, the experimental group exhibited more calcium nodules and higher expression levels of osteogenic genes, including COL-I, OCN, and RUNX2. HE staining and micro-CT scans revealed enhanced bone tissue regeneration in the defective area of the PDB group. Through extensive experimentation, we evaluated the scaffold’s effectiveness in augmenting osteoblast proliferation and differentiation. This study emphasized the potential of piezoelectric PVDF-b-PTFE nanofibrous membranes with controlled BMP-2 release as a promising approach for bone tissue engineering, providing a viable solution for addressing bone defects.
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