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具有抗菌性能的氧化镁增强壳聚糖基止血凝胶的合成与表征:氨基酸和交联的作用

Synthesis and Characterization of Magnesium Oxide-Enhanced Chitosan-Based Hemostatic Gels with Antibacterial Properties: Role of Amino Acids and Crosslinking.

作者信息

Radwan-Pragłowska Julia, Bąk Paulina, Janus Łukasz, Sierakowska-Byczek Aleksandra, Radomski Piotr, Kramek Agnieszka, Gumieniak Justyna, Bogdał Dariusz

机构信息

Department of Biotechnology and Physical Chemistry, Faculty of Chemical Engineering and Technology, Cracow University of Technology, Warszawska 24 Street, 31-155 Cracow, Poland.

Department of Chemical Technology and Environmental Analytics, Faculty of Chemical Engineering and Technology, Cracow University of Technology, Warszawska 24 Street, 31-155 Cracow, Poland.

出版信息

Molecules. 2025 Mar 27;30(7):1496. doi: 10.3390/molecules30071496.

Abstract

Excessive blood loss is a leading cause of mortality among soldiers and accident victims. The wound healing process typically ranges from three weeks to several months, with disruptions in healing stages potentially prolonging recovery time. Chronic wounds may persist for years, creating a favorable environment for microbial growth. Chitosan, a derivative of chitin-the second most abundant biopolymer in nature-is obtained through deacetylation and exhibits mucoadhesive, analgesic, antioxidant, biodegradable, non-toxic, and biocompatible properties. Due to its hemostatic and regenerative support capabilities, chitosan is widely applied in the food, cosmetic, and agricultural industries; environmental protection; and as a key component in dressings for chronic wound healing. Notably, its antibacterial properties make it a promising candidate for novel biomaterials to replace traditional antibiotics and prevent the emergence of drug-resistant strains. The primary aim of this study was the chemical cross-linking of chitosan with the amino acids L-aspartic and L-glutamic acid in the presence of periclase (magnesium oxide) under microwave radiation conditions. Subsequent research stages involved the analysis of the samples' physicochemical properties using SEM, FT-IR, XPS, atomic absorption spectrometry, swelling behavior (in water, SBF, and blood), porosity, and density. Biological assessments included biodegradation, cytotoxicity, and antibacterial activity against Escherichia coli and Staphylococcus aureus. The obtained results confirmed the high potential of the newly developed hemostatic agents for effective hemorrhage management under non-sterile conditions.

摘要

失血过多是导致士兵和事故受害者死亡的主要原因。伤口愈合过程通常持续三周至数月,愈合阶段的中断可能会延长恢复时间。慢性伤口可能会持续数年,为微生物生长创造有利环境。壳聚糖是甲壳素(自然界中第二丰富的生物聚合物)的衍生物,通过脱乙酰化获得,具有粘膜粘附、止痛、抗氧化、可生物降解、无毒和生物相容性等特性。由于其止血和再生支持能力,壳聚糖广泛应用于食品、化妆品和农业行业;环境保护;以及作为慢性伤口愈合敷料的关键成分。值得注意的是,其抗菌特性使其成为替代传统抗生素并防止耐药菌株出现的新型生物材料的有前途的候选者。本研究的主要目的是在微波辐射条件下,在方镁石(氧化镁)存在的情况下,将壳聚糖与L-天冬氨酸和L-谷氨酸进行化学交联。随后的研究阶段包括使用扫描电子显微镜(SEM)、傅里叶变换红外光谱(FT-IR)、X射线光电子能谱(XPS)、原子吸收光谱法、溶胀行为(在水、模拟体液(SBF)和血液中)、孔隙率和密度对样品的物理化学性质进行分析。生物学评估包括生物降解、细胞毒性以及对大肠杆菌和金黄色葡萄球菌的抗菌活性。所得结果证实了新开发的止血剂在非无菌条件下有效管理出血的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f3a/11990174/94ed0f4ece24/molecules-30-01496-g001.jpg

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