Jiang Shuaibing, Liu Shiyu, Lau Sum, Li Jianyu
Department of Mechanical Engineering, McGill University, Montreal, Quebec, Canada.
Faculty of Engineering, The University of Hong Kong, Hong Kong, China.
J Mater Chem B. 2022 Sep 28;10(37):7239-7259. doi: 10.1039/d2tb00546h.
Non-compressible hemorrhage is an unmet clinical challenge, which occurs in inaccessible sites in the body where compression cannot be applied to stop bleeding. Current treatments reliant on blood transfusion are limited in efficacy and complicated by blood supply (short shelf-life and high cost), immunogenicity and contamination risks. Alternative strategies based on hemostatic biomaterials exert biochemical and/or mechanical cues to halt hemorrhage. The biochemical hemostats are built upon native coagulation cascades, while the mechanical hemostats use mechanical efforts to stop bleeding. This review covers the design principles and applications of such hemostatic biomaterials, following an overview of coagulation mechanisms and clot mechanics. We present how biochemical strategies modulate coagulation and fibrinolysis, and also mechanical mechanisms such as absorption, agglutination, and adhesion to achieve hemostasis. We also outline the challenges and immediate opportunities to provide comprehensive guidelines for the rational design of hemostatic biomaterials.
不可压缩性出血是一项尚未得到解决的临床挑战,它发生在身体中无法进行压迫止血的部位。目前依赖输血的治疗方法疗效有限,且受到血液供应(保质期短和成本高)、免疫原性及污染风险等问题的困扰。基于止血生物材料的替代策略通过生化和/或机械作用来止血。生化止血剂基于天然凝血级联反应构建,而机械止血剂则利用机械作用来止血。在概述凝血机制和凝块力学之后,本综述涵盖了此类止血生物材料的设计原则和应用。我们阐述了生化策略如何调节凝血和纤维蛋白溶解,以及诸如吸附、凝集和黏附等机械机制如何实现止血。我们还概述了挑战和当前的机遇,以为止血生物材料的合理设计提供全面指导方针。