止血
互连性
磁导率
压实
壳聚糖
海绵
多孔性
生物医学工程
再生(生物学)
材料科学
化学工程
医学
化学
复合材料
外科
细胞生物学
计算机科学
生物化学
膜
植物
人工智能
工程类
生物
作者
Tianshen Jiang,Sirong Chen,Jingwen Xu,Yuxiao Zhang,Hao Fu,Qiangjun Ling,Yan Xu,Xiangyu Chu,Ruinan Wang,Liangcong Hu,Hao Li,Weitong Huang,Liming Bian,Pengchao Zhao,Fuxin Wei
标识
DOI:10.1038/s41467-024-49578-2
摘要
Abstract Developing superporous hemostatic sponges with simultaneously enhanced permeability and mechanical properties remains challenging but highly desirable to achieve rapid hemostasis for non-compressible hemorrhage. Typical approaches to improve the permeability of hemostatic sponges by increasing porosity sacrifice mechanical properties and yield limited pore interconnectivity, thereby undermining the hemostatic efficacy and subsequent tissue regeneration. Herein, we propose a temperature-assisted secondary network compaction strategy following the phase separation-induced primary compaction to fabricate the superporous chitosan sponge with highly-interconnected porous structure, enhanced blood absorption rate and capacity, and fatigue resistance. The superporous chitosan sponge exhibits rapid shape recovery after absorbing blood and maintains sufficient pressure on wounds to build a robust physical barrier to greatly improve hemostatic efficiency. Furthermore, the superporous chitosan sponge outperforms commercial gauze, gelatin sponges, and chitosan powder by enhancing hemostatic efficiency, cell infiltration, vascular regeneration, and in-situ tissue regeneration in non-compressible organ injury models, respectively. We believe the proposed secondary network compaction strategy provides a simple yet effective method to fabricate superporous hemostatic sponges for diverse clinical applications.
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