凝结
组织工程
再生医学
生物医学工程
炎症
粘附
增韧
医学
体内
组织修复
外科
止血
血管
伤口愈合
临床实习
重症监护医学
肝素
再生(生物学)
清创术(牙科)
作者
Shuaibing Jiang,Guangyu Bao,Zhen Yang,Jing Wu,Xingwei Yang,Jinwoo Kim,Roselyn Jiang,Ying Zhan,Alexander Nottegar,Yin Liu,Zu‐Hua Gao,Andrew Beckett,Anastasia Nijnik,Rong Long,Christian Kastrup,Jianyu Li
出处
期刊:PubMed
日期:2026-04-29
标识
DOI:10.1038/s41586-026-10412-y
摘要
. These limitations are attributed to complex coagulation cascades, abundant mechanically ineffective cells and little structural polymers. Strategies that strengthen polymer networks are inapplicable to these highly cellularized materials. Here we report a strategy that rapidly crosslinks red blood cells into tough cytogels and integrates them within blood clots. The resulting engineered blood clots (EBCs) form within seconds and exhibit a 13-fold increase in fracture toughness, and a 4-fold improvement in adhesion energy compared with native clots. Experiments and modelling identify the rupture of mechanically integrated cells as a key toughening mechanism. In vivo studies demonstrate that EBCs can rapidly halt haemorrhage, promote tissue regeneration, mitigate inflammation and foreign body reactions, and prevent postoperative adhesion. The safety and efficacy of both autologous and allogeneic EBCs were also validated. Our strategy is applicable to a range of cells and polymers. This work may motivate the development and translation of highly cellularized materials for bleeding control, wound management, tissue repair and regenerative medicine.
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