Shanghai Key Laboratory of Advanced Polymeric Materials, School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, PR China.
Department of Orthopedics, The First Affiliated Hospital of Anhui University of Science and Technology, 203 Huaibin Hwy, Anhui 232000, PR China.
Carbohydr Polym. 2024 Aug 15;338:122148. doi: 10.1016/j.carbpol.2024.122148. Epub 2024 Apr 10.
Alginate-based materials present promising potential for emergency hemostasis due to their excellent properties, such as procoagulant capability, biocompatibility, low immunogenicity, and cost-effectiveness. However, the inherent deficiencies in water solubility and mechanical strength pose a threat to hemostatic efficiency. Here, we innovatively developed a macromolecular cross-linked alginate aerogel based on norbornene- and thiol-functionalized alginates through a combined thiol-ene cross-linking/freeze-drying process. The resulting aerogel features an interconnected macroporous structure with remarkable water-uptake capacity (approximately 9000 % in weight ratio), contributing to efficient blood absorption, while the enhanced mechanical strength of the aerogel ensures stability and durability during the hemostatic process. Comprehensive hemostasis-relevant assays demonstrated that the aerogel possessed outstanding coagulation capability, which is attributed to the synergistic impacts on concentrating effect, platelet enrichment, and intrinsic coagulation pathway. Upon application to in vivo uncontrolled hemorrhage models of tail amputation and hepatic injury, the aerogel demonstrated significantly superior performance compared to commercial alginate hemostatic agent, yielding reductions in clotting time and blood loss of up to 80 % and 85 %, respectively. Collectively, our work illustrated that the alginate porous aerogel overcomes the deficiencies of alginate materials while exhibiting exceptional performance in hemorrhage, rendering it an appealing candidate for rapid hemostasis.
基于海藻酸盐的材料由于其出色的性能,如促凝血能力、生物相容性、低免疫原性和成本效益,在紧急止血方面具有很大的潜力。然而,其固有的水溶性和机械强度缺陷对止血效率构成了威胁。在这里,我们通过结合硫醇-烯点击交联/冷冻干燥工艺,创新性地开发了一种基于降冰片烯和巯基功能化海藻酸盐的高分子交联海藻酸盐气凝胶。所得到的气凝胶具有互穿的大孔结构,具有出色的吸水性(重量比约为 9000%),有助于高效吸收血液,而气凝胶的增强机械强度确保了在止血过程中的稳定性和耐久性。全面的止血相关检测表明,该气凝胶具有出色的凝血能力,这归因于其在浓缩效应、血小板富集和内在凝血途径方面的协同作用。在应用于尾部切断和肝损伤的非控制性出血模型的体内实验中,与商业海藻酸盐止血剂相比,该气凝胶的表现显著优于后者,凝血时间和出血量分别减少了 80%和 85%。总的来说,我们的工作表明,海藻酸盐多孔气凝胶克服了海藻酸盐材料的缺陷,同时在出血方面表现出卓越的性能,使其成为快速止血的理想候选材料。