Ye Tong, Yang Zhiyuan, Hao Ruolin, Guo Jinnan, Dou Guifang, Meng Zhiyun, Liu Shuchen, Gu Ruolan, Wu Zhuona, Sun Yunbo, Han Peng, Jin Yiguang, Gan Hui
Department of Pharmaceutical Sciences, Beijing Institute of Radiation Medicine, Beijing 100850, China.
Polymers (Basel). 2024 Mar 21;16(6):863. doi: 10.3390/polym16060863.
A traumatic hemorrhage is fatal due to the great loss of blood in a short period of time; however, there are a few biomaterials that can stop the bleeding quickly due to the limited water absorption speed. Here, a highly absorbent polymer (HPA), polyacrylate, was prepared as it has the best structure-effectiveness relationship. Within a very short period of time (2 min), HPA continually absorbed water until it swelled up to its 600 times its weight; more importantly, the porous structure comprised the swollen dressing. This instantaneous swelling immediately led to rapid hemostasis in irregular wounds. We optimized the HPA preparation process to obtain a rapidly water-absorbent polymer (i.e., HPA-5). HPA-5 showed favorable adhesion and biocompatibility in vitro. A rat femoral arteriovenous complete shear model and a tail arteriovenous injury model were established. HPA exhibited excellent hemostatic capability with little blood loss and short hemostatic time compared with Celox in both of the models. The hemostatic mechanisms of HPA consist of fast clotting by aggregating blood cells, activating platelets, and accelerating the coagulation pathway via water absorption and electrostatic interaction. HPA is a promising highly water-absorbent hemostatic dressing for rapid and extensive blood clotting after vessel injury.
创伤性出血因在短时间内大量失血而致命;然而,由于吸水速度有限,只有少数生物材料能迅速止血。在此,制备了一种高吸水性聚合物(HPA)——聚丙烯酸酯,因为它具有最佳的结构-有效性关系。在很短的时间内(2分钟),HPA持续吸水,直至膨胀到其重量的600倍;更重要的是,多孔结构构成了膨胀的敷料。这种瞬间膨胀立即导致不规则伤口快速止血。我们优化了HPA的制备工艺,以获得一种快速吸水的聚合物(即HPA-5)。HPA-5在体外表现出良好的粘附性和生物相容性。建立了大鼠股动静脉完全剪切模型和尾动静脉损伤模型。在这两种模型中,与Celox相比,HPA均表现出优异的止血能力,失血量少且止血时间短。HPA的止血机制包括通过聚集血细胞、激活血小板以及通过吸水和静电相互作用加速凝血途径来实现快速凝血。HPA是一种很有前景的高吸水性止血敷料,可用于血管损伤后快速广泛地形成血凝块。