定制藻酸盐/PCL明胶-β-TCP膜引导骨再生

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL Biomedical materials Pub Date : 2022-04-29 DOI:10.1088/1748-605X/ac6bd8
Gyeongjin Joo, Myeongki Park, Seong-su Park, G. Tripathi, Byong-Taek Lee
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引用次数: 4

摘要

为引导骨再生(GBR)制备的膜意味着有价值的资源,可以抑制纤维化并帮助骨再生。然而,现有的膜缺乏骨再生能力或足够的降解特性。通过静电纺丝和浇铸工艺制备了藻酸盐浇铸聚己内酯明胶-β-磷酸三钙双膜,以增强GBR工艺下的新骨形成。合成了具有合适亲水性、溶胀性和降解行为的多孔膜,以确认产品在体内的兼容性。此外,成骨细胞型细胞毒性和细胞粘附结果表明,电纺膜为细胞提供了相容的环境,而海藻酸盐片足以抑制细胞附着,但是一种无毒材料。植入后,双层膜的体内结果显示有明显的骨形成。值得注意的是,到8周时,膜组的类骨岛已经融合。藻酸盐膜阻断了纤维组织的浸润,促进了新骨的向内生长。免疫细胞化学分析表明,双膜可以引导更多的蛋白质控制矿化,并召集组织工程骨移植物的骨传导特性。
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Tailored alginate/PCL-gelatin-β-TCP membrane for guided bone regeneration
Membranes prepared for guided bone regeneration (GBR) signify valued resources, inhibiting fibrosis and assisting bone regenration. However, existing membranes lack bone regenerative capacity or adequate degradation profile. An alginate-casted polycaprolactone-gelatin-β-tricalcium phosphate dual membrane was fabricated by electrospinning and casting processes to enhance new bone formation under a GBR process. Porous membranes were synthesized with suitable hydrophilicity, swelling, and degradation behavior to confirm the compatibility of the product in the body. Furthermore, osteoblast-type cell toxicity and cell adhesion results showed that the electrospun membrane offered compatible environment to cells while the alginate sheet was found capable enough to supress the cellular attachment, but was a non-toxic material. Post-implantation, the in-vivo outcomes of the dual-layered membrane, showed appreciable bone formation. Significantly, osteoid islands had fused in the membrane group by eight weeks. The infiltration of fibrous tissues was blocked by the alginate membrane, and the ingrowth of new bone was enhanced. Immunocytochemical analysis indicated that the dual membrane could direct more proteins which control mineralization and convene osteoconductive properties of tissue-engineered bone grafts.
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来源期刊
Biomedical materials
Biomedical materials 工程技术-材料科学:生物材料
CiteScore
6.70
自引率
7.50%
发文量
294
审稿时长
3 months
期刊介绍: The goal of the journal is to publish original research findings and critical reviews that contribute to our knowledge about the composition, properties, and performance of materials for all applications relevant to human healthcare. Typical areas of interest include (but are not limited to): -Synthesis/characterization of biomedical materials- Nature-inspired synthesis/biomineralization of biomedical materials- In vitro/in vivo performance of biomedical materials- Biofabrication technologies/applications: 3D bioprinting, bioink development, bioassembly & biopatterning- Microfluidic systems (including disease models): fabrication, testing & translational applications- Tissue engineering/regenerative medicine- Interaction of molecules/cells with materials- Effects of biomaterials on stem cell behaviour- Growth factors/genes/cells incorporated into biomedical materials- Biophysical cues/biocompatibility pathways in biomedical materials performance- Clinical applications of biomedical materials for cell therapies in disease (cancer etc)- Nanomedicine, nanotoxicology and nanopathology- Pharmacokinetic considerations in drug delivery systems- Risks of contrast media in imaging systems- Biosafety aspects of gene delivery agents- Preclinical and clinical performance of implantable biomedical materials- Translational and regulatory matters
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