Faculty of Physics, Adam Mickiewicz University in Poznań, Uniwersytetu Poznańskiego 2, 61-614 Poznań, Poland.
Department of Nanobiotechnology, Biology Centre, ISBB, Czech Academy of Sciences, Na Sádkách 7, 370 05 České Budějovice, Czech Republic.
Int J Mol Sci. 2023 Jul 21;24(14):11744. doi: 10.3390/ijms241411744.
Magneto-responsive textiles have emerged lately as an important carrier in various fields, including biomedical engineering. To date, most research has been performed on single magnetic fibers and focused mainly on the physical characterization of magnetic textiles. Herein, from simple woven and non-woven textiles we engineered materials with magnetic properties that can become potential candidates for a smart magnetic platform for heating treatments. Experiments were performed on tissue-mimicking materials to test the textiles' heating efficiency in the site of interest. When the heat was induced with magneto-responsive textiles, the temperature increase in tissue-mimicking phantoms depended on several factors, such as the type of basic textile material, the concentration of magnetic nanoparticles deposited on the textile's surface, and the number of layers covering the phantom. The values of temperature elevation, achieved with the use of magnetic textiles, are sufficient for potential application in magnetic hyperthermia therapies and as heating patches or bandages.
近来,磁性纺织品作为一种重要的载体,在包括生物医学工程在内的各个领域中崭露头角。迄今为止,大多数研究都集中在单根磁性纤维上,主要侧重于磁性纺织品的物理特性研究。在此,我们通过简单的机织和无纺纺织品来设计具有磁性的材料,这些材料可能成为智能加热处理磁性平台的潜在候选材料。实验是在组织模拟材料上进行的,以测试纺织品在感兴趣部位的加热效率。当使用磁响应性纺织品产生热量时,组织模拟体中的温度升高取决于几个因素,例如基础纺织材料的类型、沉积在纺织品表面上的磁性纳米粒子的浓度以及覆盖在体模上的层的数量。利用磁性纺织品实现的温度升高值足以应用于磁热疗和加热贴片或绷带。