Cao Shujun, Ji Peihong, Ding Rongjian, Xia Hao, Mao Hongli, Gu Zhongwei
Research Institute for Biomaterials, Tech Institute for Advanced Materials, Bio-inspired Biomedical Materials & Devices Center, College of Materials Science and Engineering, Jiangsu Collaborative Innovation Center for Advanced Inorganic Function Composites, Suqian Advanced Materials Industry Technology, Innovation Center, Nanjing Tech University, Nanjing 211816, China.
ACS Appl Mater Interfaces. 2025 May 7;17(18):26455-26466. doi: 10.1021/acsami.5c04195. Epub 2025 Apr 28.
Deep trauma often leads to acute bleeding and infections, which are major causes of death. It is worth exploring the preparation of hemostatic materials and improving their hemostatic and antibacterial properties applied to deep trauma by green and efficient methods. In this study, porous chitosan/zinc oxide/alkylated chitosan (CS/ZnO/ACS) sponges were prepared by a freezing phase separation method. ACS induced the formation of stable foam, increasing the pore formation during the freezing phase separation process. The porous structure enabled the sponge to rapidly absorb blood and expand to close the wound. The synthesis of ZnO within the sponge enhances its antibacterial properties. In the antibacterial test against and , the CS/ZnO/ACS sponges can effectively inhibit bacterial growth. Besides, compared with CS sponges, the introduction of ACS increases the adhesion of the CS/ZnO/ACS sponges to blood cells and promotes coagulation. In addition, the CS/ZnO/ACS sponges were prepared by physical phase separation, which endows it with increased solubility under acidic conditions and can be quickly removed after hemostasis. Therefore, the CS/ZnO/ACS expandable sponges offer promising clinical applications for the treatment of deep trauma.
深度创伤常导致急性出血和感染,这是主要的死亡原因。探索通过绿色高效的方法制备止血材料并改善其应用于深度创伤的止血和抗菌性能是值得的。在本研究中,采用冷冻相分离法制备了多孔壳聚糖/氧化锌/烷基化壳聚糖(CS/ZnO/ACS)海绵。ACS诱导形成稳定泡沫,增加了冷冻相分离过程中的成孔率。多孔结构使海绵能够快速吸收血液并膨胀以闭合伤口。海绵内ZnO的合成增强了其抗菌性能。在针对[具体细菌名称1]和[具体细菌名称2]的抗菌测试中,CS/ZnO/ACS海绵能有效抑制细菌生长。此外,与CS海绵相比,ACS的引入增加了CS/ZnO/ACS海绵与血细胞的粘附并促进凝血。另外,CS/ZnO/ACS海绵通过物理相分离制备,这使其在酸性条件下溶解度增加,止血后可快速去除。因此,CS/ZnO/ACS可膨胀海绵在深度创伤治疗方面具有广阔的临床应用前景。