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聚(乙二醇)改性富含单宁酸材料的开发及其作为伤口敷料的潜在应用

Development of tannic acid-enriched materials modified by poly(ethylene glycol) for potential applications as wound dressing.

作者信息

Kaczmarek Beata, Mazur Olha, Miłek Oliwia, Michalska-Sionkowska Marta, Osyczka Anna M, Kleszczyński Konrad

机构信息

Department of Biomaterials and Cosmetics Chemistry, Faculty of Chemistry, Nicolaus Copernicus University, Gagarina 7, 87-100, Toruń, Poland.

Department of Biology and Cell Imaging, Faculty of Biology, Institute of Zoology and Biomedical Research, Jagiellonian University, Gronostajowa 7, 30-387, Kraków, Poland.

出版信息

Prog Biomater. 2020 Sep;9(3):115-123. doi: 10.1007/s40204-020-00136-1. Epub 2020 Sep 20.

Abstract

The interests in the biomedical impact of tannic acid (TA) targeting production of various types of biomaterials, such as digital microfluids, chemical sensors, wound dressings, or bioimplants constantly increase. Despite the significant disadvantage of materials obtained from natural-based compounds and their low stability and fragility, therefore, there is an imperative need to improve materials properties by addition of stabilizing formulas. In this study, we performed assessments of thin films over TA proposed as a cross-linker to be used in combination with polymeric matrix based on chitosan (CTS), i.e. CTS/TA at 80:20 or CTS/TA at 50:50 and poly(ethylene glycol) (PEG) at the concentration of 10% or 20%. We evaluated their mechanical parameters as well as the cytotoxicity assay for human bone marrow mesenchymal stem cells, human melanotic melanoma (MNT-1), and human osteosarcoma (Saos-2). The results revealed significant differences in dose-dependent of PEG regarding the maximum tensile strength (σ) or impact on the metabolic activity of tissue culture plastic. We observed that PEG improved mechanical parameters prominently, decreased the hemolysis rate, and did not affect cell viability negatively. Enclosed data, confirmed also by our previous reports, will undoubtedly pave the path for the future application of tannic acid-based biomaterials to treat wound healing.

摘要

针对单宁酸(TA)在生物医学方面的影响,人们对其用于生产各种生物材料的兴趣不断增加,这些生物材料包括数字微流体、化学传感器、伤口敷料或生物植入物等。尽管从天然化合物获得的材料存在显著缺点,且稳定性低、易碎,但因此迫切需要通过添加稳定配方来改善材料性能。在本研究中,我们对提议作为交联剂与基于壳聚糖(CTS)的聚合物基质(即80:20的CTS/TA或50:50的CTS/TA)以及浓度为10%或20%的聚乙二醇(PEG)结合使用的TA薄膜进行了评估。我们评估了它们的力学参数以及对人骨髓间充质干细胞、人黑色素瘤(MNT-1)和人骨肉瘤(Saos-2)的细胞毒性测定。结果显示,PEG在最大拉伸强度(σ)或对组织培养塑料代谢活性的影响方面存在显著的剂量依赖性差异。我们观察到PEG显著改善了力学参数,降低了溶血率,且对细胞活力没有负面影响。我们之前的报告也证实了所附数据,这些数据无疑将为基于单宁酸的生物材料在伤口愈合治疗中的未来应用铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d40b/7544793/ed231971b6b9/40204_2020_136_Fig1_HTML.jpg

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