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Preparation and biodegradable properties of hydroxyapatite nanoparticle composite coated with poly lactic-co-glycolic acid/polyvinyl alcohol for bone regeneration

机译:用聚乳酸共乙酸/聚乙烯醇涂覆骨质磷灰石纳米粒子复合物的制备及可生物降解性能,用于骨再生

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Background. Bone loss rapidly increases 6 months post tooth extraction, which causes the atrophy of?the alveolar bone. Two kinds of?biomaterials which can stimulate bone regeneration are bioceramics and polymers. Making a? composite of? biomaterials results in better physical and biomolecular characteristics in comparison with a?bioceramic or a?polymer alone. Hydroxyapatite nanoparticles (HANPs) are one of?the bioceramics commonly used for bone regeneration; they can degrade faster than hydroxyapatite (HA) microparticles, but have an?insufficient pore size. Polyvinyl alcohol (PVA) and poly lactic-co-glycolic acid (PLGA) are polymers which have been used for biomedical applications. However, PLGA alone has insufficient cell attachment and PVA alone slowly degrades in the bone tissue. Objectives. The aim of? the present study was to analyze the biodegradation properties of? the HANP/PLGA/PVA composites and investigate the pore size. Material and methods. The HANP/PLGA/PVA composites were prepared using the freeze-drying method, with 20% (w/w) of?HANP and 20% (w/w) of?PLGA. Morphology and the pore size were determined by means of?the field emission scanning electron microscopy (FE-SEM) analysis. Biodegradation properties were determined by calculating water uptake and water loss for 1, 3 and 6 weeks. Statistical analysis was performed based on the one-way analysis of?variance (ANOVA) at p??0.05. Results.The HANP/PLGA/PVA composites had the greatest mean pore size and a?rougher surface than others (176.00 ±61.93?μm; p??0.05). Moreover, the HANP/PLGA/PVA composites had the greatest water uptake, significantly in the 3rd (730.46%; p??0.05) and 6th weeks (731.07%; p??0.05), and water loss in the 6th week (67.69%; p??0.05). Conclusions. The HANP/PLGA/PVA composites have optimal pore size, morphology and degradability, which shows their high potential as an? effective bone scaffold to repair the alveolar defect post tooth extraction.
机译:背景。牙齿萃取后6个月骨质损失迅速增加,这导致萎缩的血管骨。可以刺激骨再生的两种生物材料是生物陶瓷和聚合物。制作一个?综合吗?生物材料与单独的β聚合物相比,生物材料导致更好的物理和生物分子特性。羟基磷灰石纳米颗粒(HANPS)是一种?常用于骨再生的生物陶瓷;它们可以比羟基磷灰石(HA)微粒更快,但具有?孔径不足。聚乙烯醇(PVA)和聚乳酸共乙醇酸(PLGA)是已用于生物医学应用的聚合物。然而,单独的PLGA具有不足的细胞附着,并且单独的PVA在骨组织中缓慢降解。目标。目标是?本研究是分析生物降解性质的分析HANP / PLGA / PVA复合材料并调查孔径。材料与方法。使用冷冻干燥方法制备HANP / PLGA / PVA复合材料,其中20%(w / w)的αpLGA和20%(w / w)。通过α确定形态和孔径尺寸的α释放扫描电子显微镜(Fe-SEM)分析。通过计算水吸收和水分损失1,3和6周来确定生物降解性能。基于P?<β0.05的单向分析进行统计分析结果。HANP / PLGA / PVA复合材料具有最大的平均孔径和粗糙的表面(176.00±61.93Ω·μm; p?<0.05)。此外,HanP / PLGA / PVA复合材料具有最大的水吸收,显着于3RD(730.46%; P?<β05)和第6周(731.07%; P?<?0.05),并在第6周的水分丧失(67.69%; p?<?0.05)。结论。 HANP / PLGA / PVA复合材料具有最佳的孔径,形态和可降解性,其显示出其高潜力?有效的骨脚手架修复肺泡缺损后牙齿提取。

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