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氧化镁纳米颗粒对 PVA/PEG 基膜的影响及其在伤口愈合中的潜在应用。

The effect of MgO nanoparticle on PVA/PEG-based membranes for potential application in wound healing.

机构信息

Department of Polymer and Petrochemical Industries, College of Materials Engineering, University of Babylon, Hilla, Iraq.

出版信息

J Biomater Sci Polym Ed. 2024 Sep;35(13):1963-1977. doi: 10.1080/09205063.2024.2364526. Epub 2024 Jul 1.

Abstract

The interest in wound dressings increased ten years ago. Wound care practitioners can now use interactive/bioactive dressings and tissue-engineered skin substitutes. Several bandages can heal burns, but none can treat all chronic wounds. This study formulates a composite material from 70% polyvinyl alcohol (PVA) and 30% polyethylene glycol (PEG) with 0.2, 0.4, and 0.6 wt% magnesium oxide nanoparticles. This study aims to create a biodegradable wound dressing. A Fourier Transform Infrared (FTIR) study shows that PVA, PEG, and MgO create hydrogen bonding interactions. Hydrophilic characteristics are shown by the polymeric blend's 56.289° contact angle. MgO also lowers the contact angle, making the film more hydrophilic. Hydrophilicity improves film biocompatibility, live cell adhesion, wound healing, and wound dressing degradability. Differential Scanning Calorimeter (DSC) findings suggest the PVA/PEG combination melted at 53.16 °C. However, adding different weight fractions of MgO nanoparticles increased the nanocomposite's melting temperature (T). These nanoparticles improve the film's thermal stability, increasing Tm. In addition, MgO nanoparticles in the polymer blend increased tensile strength and elastic modulus. This is due to the blend's strong adherence to the reinforcing phase and MgO nanoparticles' ceramic material which has a great mechanical strength. The combination of 70% PVA + 30% PEG exhibited good antibacterial spatially at 0.2% MgO, according to antibacterial test results.

摘要

十年前,人们对伤口敷料的兴趣大增。伤口护理从业者现在可以使用交互式/生物活性敷料和组织工程皮肤替代品。有几种绷带可以治疗烧伤,但没有一种可以治疗所有慢性伤口。本研究用 70%聚乙烯醇(PVA)和 30%聚乙二醇(PEG)与 0.2、0.4 和 0.6wt%氧化镁纳米粒子制成复合材料。本研究旨在开发一种可生物降解的伤口敷料。傅里叶变换红外(FTIR)研究表明,PVA、PEG 和 MgO 之间形成氢键相互作用。聚合物共混物的 56.289°接触角表明其具有亲水性。MgO 还降低了接触角,使薄膜更亲水。亲水性提高了薄膜的生物相容性、活细胞黏附性、伤口愈合和伤口敷料的可降解性。差示扫描量热法(DSC)的研究结果表明,PVA/PEG 共混物在 53.16°C 熔化。然而,添加不同重量分数的氧化镁纳米粒子会增加纳米复合材料的熔融温度(Tm)。这些纳米粒子提高了薄膜的热稳定性,增加了 Tm。此外,聚合物共混物中的氧化镁纳米粒子提高了拉伸强度和弹性模量。这是因为共混物与增强相的紧密结合以及 MgO 纳米粒子的陶瓷材料具有很强的机械强度。根据抗菌试验结果,70%PVA+30%PEG 与 0.2%MgO 的组合在空间上表现出良好的抗菌性能。

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