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蜂胶在高负荷蜂胶纤维溶液中的无针静电纺丝集成方法。

Propolis Integration Methods into Solutions for Highly Loaded Propolis Fibers by Needleless Electrospinning.

机构信息

Institute of Design Technology, Faculty of Materials Science and Applied Chemistry, Riga Technical University, Kipsala Street 6, LV-1084 Riga, Latvia.

Latvian State Institute of Wood Chemistry, Dzerbenes Street 27, LV-1006 Riga, Latvia.

出版信息

Molecules. 2022 Apr 2;27(7):2311. doi: 10.3390/molecules27072311.

Abstract

A load-bearing matrix filled with biologically active compounds is an efficient method for transporting them to the target location. Bee-made propolis has long been known as a natural product with antibacterial and antiviral, anti-inflammatory, antifungal properties, and anti-oxidative activity. The aim of the research is to obtain stable propolis/PVA solutions and produce fibers by electrospinning. To increase propolis content in fibers as much as possible, various types of propolis extracts were used. As a result of the research, micro- and nano-fiber webs were obtained, the possible use of which have biomedical and bioprotective applications. All used materials are edible and safe for humans, and fiber webs were prepared without using any toxic agent. This strategy overcomes propolis processing problems due to limitations to its solubility. The integration of different combinations of extracts allows more than 73 wt% of propolis to be incorporated into the fibers. The spinning solution preparation method was adapted to each type of propolis, and by combining the methods, solutions with different propolis extracts were obtained. Firstly, the total content of flavonoids in the propolis extracts was determined for the assessment and prediction of bioactivity. The properties of the extracts relevant for the preparation of electrospinning solutions were also evaluated. Secondly, the most appropriate choice of PVA molecular weight was made in order not to subject the propolis to too high temperatures (to save resources and not reduce the bioactivity of propolis) during the solution preparation process and to obtain fibers with the smallest possible diameter (for larger surface-to-volume ratios of nanofibers and high porosity). Third, electrospinning solutions were evaluated (viscosity, pH, conductivity and density, shelf life) before and after the addition of propolis to predict the maximum propolis content in the fibers and spinning stability. Each solution combination was spun using a cylindrical type electrode (suitable for industrial production) and tested for a stable electrospinning process. Using adapted solution-mixing sequences, all the obtained solutions were spun stably, and homogeneous fibers were obtained without major defects.

摘要

一种负载生物活性化合物的承载基质是将它们输送到目标位置的有效方法。由蜜蜂制造的蜂胶长期以来一直被认为是一种具有抗菌、抗病毒、抗炎、抗真菌和抗氧化活性的天然产物。本研究的目的是获得稳定的蜂胶/PVA 溶液,并通过静电纺丝生产纤维。为了尽可能提高纤维中的蜂胶含量,使用了各种类型的蜂胶提取物。作为研究的结果,获得了微纤维和纳米纤维网,它们可能具有生物医学和生物保护应用。所有使用的材料都是可食用的,对人类安全,并且纤维网是在不使用任何有毒剂的情况下制备的。该策略克服了由于蜂胶溶解度限制而导致的加工问题。不同组合提取物的整合允许将超过 73wt%的蜂胶掺入纤维中。通过将方法结合使用,为每种类型的蜂胶调整了纺丝溶液的制备方法,从而获得了具有不同蜂胶提取物的溶液。首先,为了评估和预测生物活性,测定了蜂胶提取物中总类黄酮的含量。还评估了与静电纺丝溶液制备相关的提取物的特性。其次,为了不在溶液制备过程中使蜂胶承受过高的温度(以节省资源并保持蜂胶的生物活性)并获得尽可能小直径的纤维(以获得具有较大比表面积的纳米纤维和高孔隙率),选择了最合适的 PVA 分子量。第三,在添加蜂胶前后评估了静电纺丝溶液(粘度、pH 值、电导率和密度、保质期),以预测纤维中最大的蜂胶含量和纺丝稳定性。使用圆柱形电极(适合工业生产)对每种溶液组合进行纺丝,并测试稳定的纺丝过程。使用适应性的溶液混合顺序,所有获得的溶液都稳定地纺丝,并且获得了没有主要缺陷的均匀纤维。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3af9/9000478/29159fe01eb2/molecules-27-02311-g001.jpg

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