Jia Xiaoli, Hua Chao, Yang Fengbo, Li Xiaoxiao, Zhao Peng, Zhou Feifan, Lu Yichi, Liang Hao, Xing Malcolm, Lyu Guozhong
Engineering Research Center of the Ministry of Education for Wound Repair Technology, Jiangnan University, Affiliated Hospital of Jiangnan University, Wuxi, 214000, China.
Wuxi School of Medicine, Jiangnan University, Wuxi, 214000, China.
Bioact Mater. 2023 Feb 28;26:142-158. doi: 10.1016/j.bioactmat.2023.02.017. eCollection 2023 Aug.
Current hemostatic agents or dressings are not efficient under extremely hot and cold environments due to deterioration of active ingredients, water evaporation and ice crystal growth. To address these challenges, we engineered a biocompatible hemostatic system with thermoregulatory properties for harsh conditions by combining the asymmetric wetting nano-silica aerogel coated-gauze (AWNSA@G) with a layer-by-layer (LBL) structure. Our AWNSA@G was a dressing with a tunable wettability prepared by spraying the hydrophobic nano-silica aerogel onto the gauze from different distances. The hemostatic time and blood loss of the AWNSA@G were 5.1 and 6.9 times lower than normal gauze in rat's injured femoral artery model. Moreover, the modified gauze was torn off after hemostasis without rebleeding, approximately 23.8 times of peak peeling force lower than normal gauze. For the LBL structure, consisting of the nano-silica aerogel layer and a -octadecane phase change material layer, in both hot (70 °C) and cold (-27 °C) environments, exhibited dual-functional thermal management and maintained a stable internal temperature. We further verified our composite presented superior blood coagulation effect in extreme environments due to the LBL structure, the pro-coagulant properties of nano-silica aerogel and unidirectional fluid pumping of AWNSA@G. Our work, therefore, shows great hemostasis potential under normal and extreme temperature environments.
由于活性成分的降解、水分蒸发和冰晶生长,目前的止血剂或敷料在极热和极冷环境下效率不高。为了应对这些挑战,我们通过将具有不对称润湿性的纳米二氧化硅气凝胶涂层纱布(AWNSA@G)与层层(LBL)结构相结合,设计了一种具有温度调节特性的生物相容性止血系统,用于恶劣条件。我们的AWNSA@G是一种润湿性可调的敷料,通过从不同距离将疏水性纳米二氧化硅气凝胶喷涂到纱布上制备而成。在大鼠股动脉损伤模型中,AWNSA@G的止血时间和失血量分别比普通纱布低5.1倍和6.9倍。此外,止血后改性纱布可撕下且不会再次出血,其峰值剥离力比普通纱布低约23.8倍。对于由纳米二氧化硅气凝胶层和十八烷相变材料层组成的LBL结构,在热(70°C)和冷(-27°C)环境中均表现出双功能热管理并保持稳定的内部温度。我们进一步验证了由于LBL结构、纳米二氧化硅气凝胶的促凝血特性以及AWNSA@G的单向流体泵送作用,我们的复合材料在极端环境中呈现出优异的凝血效果。因此,我们的工作表明在正常和极端温度环境下具有巨大的止血潜力。