Faculty of Chemical Engineering and Technology, Cracow University of Technology, 31-155 Kraków, Poland.
Medical Institute, Sumy State University, Sumy 40007, Ukraine.
Molecules. 2019 Jul 19;24(14):2629. doi: 10.3390/molecules24142629.
Massive blood loss is responsible for numerous causes of death. Hemorrhage may occur on the battlefield, at home or during surgery. Commercially available biomaterials may be insufficient to deal with excessive bleeding. Therefore novel, highly efficient hemostatic agents must be developed. The aim of the following research was to obtain a new type of biocompatible chitosan-based hemostatic agents with increased hemostatic properties. The biomaterials were obtained in a quick and efficient manner under microwave radiation using l-aspartic and l-glutamic acid as crosslinking agents with no use of acetic acid. Ready products were investigated over their chemical structure by FT-IR method which confirmed a crosslinking process through the formation of amide bonds. Their high porosity above 90% and low density (below 0.08 g/cm) were confirmed. The aerogels were also studied over their water vapor permeability and antioxidant activity. Prepared biomaterials were biodegradable in the presence of human lysozyme. All of the samples had excellent hemostatic properties in contact with human blood due to the platelet activation confirmed by blood clotting tests. The SEM microphotographs showed the adherence of blood cells to the biomaterials' surface. Moreover, they were biocompatible with human dermal fibroblasts (HDFs). The biomaterials also had superior antibacterial properties against both and . The obtained results showed that proposed chitosan-based hemostatic agents have great potential as a hemostatic product and may be applied under sterile, as well as contaminated conditions, by both medicals and individuals.
大量失血是许多死亡原因的罪魁祸首。出血可能发生在战场上、家中或手术中。市售的生物材料可能不足以应对过度出血。因此,必须开发新型、高效的止血剂。以下研究旨在获得一种新型的生物相容性壳聚糖基止血剂,以提高止血性能。在微波辐射下,使用 l-天冬氨酸和 l-谷氨酸作为交联剂,不使用乙酸,快速有效地获得了生物材料。通过傅里叶变换红外(FT-IR)方法对成品的化学结构进行了研究,证实了通过形成酰胺键进行交联的过程。其高孔隙率超过 90%,密度低于 0.08 g/cm3。还研究了气凝胶的水蒸气透过率和抗氧化活性。在人溶菌酶存在的情况下,制备的生物材料可生物降解。所有样品在与人血接触时均具有出色的止血性能,这是通过凝血试验证实的血小板激活所证实的。SEM 显微照片显示了血细胞附着在生物材料表面。此外,它们与人真皮成纤维细胞(HDF)具有生物相容性。这些生物材料还对 和 具有优异的抗菌性能。研究结果表明,所提出的壳聚糖基止血剂具有作为止血产品的巨大潜力,可在医疗和个人使用的无菌和污染条件下应用。