Literature DB >> 34032253

Chestnut-like macro-acanthosphere triggered hemostasis: a featured mechanism based on puncturing red blood cells.

Yang Liu1, Kun Yu, Songmin Shang, Ruiqi Xie, Fei Lu, Rong Bao, Guangqian Lan, Enling Hu.   

Abstract

Acute hemorrhage that occurs after trauma is a life-threatening condition. Hence, to halt massive bleeding, there is a critical need to develop a suitable therapy. In this study, we developed self-propelling chestnut-like particles (Pro-MAS) comprising a macro-acanthosphere (MAS) coated with calcium carbonate and protonated tranexamic acid to puncture red blood cells (RBCs) and thus activate hemostasis. In vitro assessments revealed that Pro-MAS was biocompatible, biodegradable, and nontoxic; furthermore, it was capable of puncturing RBCs to release procoagulants and activate platelet aggregation for hemostasis. Animal tests showed that self-propelling Pro-MAS effectively traveled through blood flow to the deep ends of wounds; hemorrhage was controlled within 90 s and 4 min in the injured liver and bleeding femoral artery, respectively. Compared with a commercial hemostat, superior hemostasis was achieved with Pro-MAS, which could be ascribed to its functional and structural features. Overall, traveling Pro-MAS possessed sufficient impact force to puncture RBCs and sufficient momentum to reach the targeted bleeding sites. The present study demonstrated the ability of a novel platform, self-propelling MAS particles, to trigger hemostasis by puncturing RBCs. To the best of our knowledge, this is the first trial in which the release of endogenous procoagulants is promoted without the addition of exogenous procoagulants for severe hemorrhage control.

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Year:  2021        PMID: 34032253     DOI: 10.1039/d1nr01148k

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  1 in total

1.  Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds.

Authors:  Haoyu Qiu; Guangqian Lan; Weiwei Ding; Xinyu Wang; Wenyi Wang; Dahua Shou; Fei Lu; Enling Hu; Kun Yu; Songmin Shang; Ruiqi Xie
Journal:  Research (Wash D C)       Date:  2022-05-31
  1 in total

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