材料科学
止血
吸水率
莲花
凝血时间
多孔性
生物医学工程
吸收(声学)
微球
化学工程
粘液
表面改性
纳米技术
复合材料
凝结
外科
医学
植物
生物
内科学
工程类
作者
Guanghui Xi,Wen Liu,Miao Chen,Qian Li,Hao Xiao,Mingshan Wang,Xiao Yang,Yakai Feng,Hongchao He,Changcan Shi,Wenzhong Li
标识
DOI:10.1021/acsami.9b17543
摘要
Rapid water absorption rate has become a bottleneck that limits ultrarapid hemostatic performance of hemostatic microspheres. Herein, we reported a "lotus seedpod surface-like" polysaccharide hemostatic microsphere (PHM) with "macropits on surface" morphology and "micropores in macropits" structure. Unique macropits on surface can promote the water absorption rate because they are advantageous to quickly guide blood into the micropores. Special micropores are internally connected with each other, which endows PHM4 with high water absorption ratio. During the process of blood entering the micropores from micropits, the pore size decreases gradually. In this way, blood clotting factors could be rapidly concentrated. PHM4 showed the highest water absorption rate (40.7 mL/s/cm2) and rapid hemostatic property in vivo (hemostatic time shortened from 210 to 45 s). Lotus seedpod surface-like PHMs are believed to have further clinical application as an effective hemostasis.
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