通过浮力驱动梯度法获得羟基磷灰石梯度聚(乙烯醇)/细菌纤维素骨支架

IF 2.2 4区 工程技术 Q1 MATERIALS SCIENCE, TEXTILES Fibers and Polymers Pub Date : 2024-05-03 DOI:10.1007/s12221-024-00558-9
Quanchao Zhang, Huiwen Wang, Jian Shi, Honglin Luo, Chen Yin, Yizao Wan
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摘要

修复骨缺损需要建立复杂的梯度。然而,大多数梯度铸造策略都需要专门的仪器,对设备的要求也很高。因此,人们强烈希望开发一种简单的方法来构建梯度支架,以模拟原生骨的分层结构。在这项研究中,我们采用浮力驱动梯度(BG)法制备了羟基磷灰石(HAp)含量梯度的聚(乙烯醇)/细菌纤维素(PVA/BC)支架。扫描电子显微镜表征显示,HAp 梯度支架具有梯度微观结构和 HAp 含量。此外,HAp 梯度支架还增强了 MC3T3-E1 细胞的粘附、扩散和增殖能力,并显示出卓越的成骨能力。此外,当应用于小鼠皮下植入模型时,与体外测试的其他支架相比,HAp 梯度支架表现出更优越的生物相容性。这些结果提供了一种制造梯度 HAp 骨支架的直接方法,它作为骨再生的候选材料具有巨大的潜力。
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Hydroxyapatite Gradient Poly (Vinyl Alcohol)/Bacteria Cellulose Bone Scaffold via Buoyancy-Driven Gradient Method

The repair of bone defects necessitates the establishment of sophisticated gradients. However, most strategies for gradient casting require specialized apparatus and have high equipment requirements. Therefore, there is a strong desire to develop a simple method for constructing gradient scaffolds that mimic the hierarchical structure of native bone. In this study, we prepared poly (vinyl alcohol)/bacterial cellulose (PVA/BC) scaffolds with gradient hydroxyapatite (HAp) content using the buoyancy-driven gradient (BG) method. Scanning electron microscopy characterization revealed that HAp gradient scaffold exhibited the gradient microstructure and HAp content. Furthermore, HAp gradient scaffold demonstrated enhanced adhesion, spreading, and proliferation of MC3T3-E1 cells and displayed excellent osteogenic ability. Additionally, when applied in subcutaneous implantation models in mice, HAp gradient scaffold showed superior biocompatibility compared to other scaffolds tested in vitro. These results present a straightforward approach for fabricating gradient HAp bone scaffolds that hold great potential as candidate materials for bone regeneration.

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来源期刊
Fibers and Polymers
Fibers and Polymers 工程技术-材料科学:纺织
CiteScore
3.90
自引率
8.00%
发文量
267
审稿时长
3.9 months
期刊介绍: -Chemistry of Fiber Materials, Polymer Reactions and Synthesis- Physical Properties of Fibers, Polymer Blends and Composites- Fiber Spinning and Textile Processing, Polymer Physics, Morphology- Colorants and Dyeing, Polymer Analysis and Characterization- Chemical Aftertreatment of Textiles, Polymer Processing and Rheology- Textile and Apparel Science, Functional Polymers
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