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

Achieving rapid hemostasis in complex and deep wounds with secluded hemorrhagic sites is still a challenge because of the difficulty in delivering hemostats to these sites. In this study, a Janus particle, SEC-Fe@CaT with dual-driven forces, bubble-driving, and magnetic field– (MF–) mediated driving...

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Autores principales: Qiu, Haoyu, Lan, Guangqian, Ding, Weiwei, Wang, Xinyu, Wang, Wenyi, Shou, Dahua, Lu, Fei, Hu, Enling, Yu, Kun, Shang, Songmin, Xie, Ruiqi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9178490/
https://www.ncbi.nlm.nih.gov/pubmed/35707050
http://dx.doi.org/10.34133/2022/9762746
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author Qiu, Haoyu
Lan, Guangqian
Ding, Weiwei
Wang, Xinyu
Wang, Wenyi
Shou, Dahua
Lu, Fei
Hu, Enling
Yu, Kun
Shang, Songmin
Xie, Ruiqi
author_facet Qiu, Haoyu
Lan, Guangqian
Ding, Weiwei
Wang, Xinyu
Wang, Wenyi
Shou, Dahua
Lu, Fei
Hu, Enling
Yu, Kun
Shang, Songmin
Xie, Ruiqi
author_sort Qiu, Haoyu
collection PubMed
description Achieving rapid hemostasis in complex and deep wounds with secluded hemorrhagic sites is still a challenge because of the difficulty in delivering hemostats to these sites. In this study, a Janus particle, SEC-Fe@CaT with dual-driven forces, bubble-driving, and magnetic field– (MF–) mediated driving, was prepared via in situ loading of Fe(3)O(4) on a sunflower sporopollenin exine capsule (SEC), and followed by growth of flower-shaped CaCO(3) clusters. The bubble-driving forces enabled SEC-Fe@CaT to self-diffuse in the blood to eliminate agglomeration, and the MF-mediated driving force facilitated the SEC-Fe@CaT countercurrent against blood to access deep bleeding sites in the wounds. During the movement in blood flow, the meteor hammer-like SEC from SEC-Fe@CaT can puncture red blood cells (RBCs) to release procoagulants, thus promoting activation of platelet and rapid hemostasis. Animal tests suggested that SEC-Fe@CaT stopped bleeding in as short as 30 and 45 s in femoral artery and liver hemorrhage models, respectively. In contrast, the similar commercial product Celox™ required approximately 70 s to stop the bleeding in both bleeding modes. This study demonstrates a new hemostat platform for rapid hemostasis in deep and complex wounds. It was the first attempt integrating geometric structure of sunflower pollen with dual-driven movement in hemostasis.
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spelling pubmed-91784902022-06-14 Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds Qiu, Haoyu Lan, Guangqian Ding, Weiwei Wang, Xinyu Wang, Wenyi Shou, Dahua Lu, Fei Hu, Enling Yu, Kun Shang, Songmin Xie, Ruiqi Research (Wash D C) Research Article Achieving rapid hemostasis in complex and deep wounds with secluded hemorrhagic sites is still a challenge because of the difficulty in delivering hemostats to these sites. In this study, a Janus particle, SEC-Fe@CaT with dual-driven forces, bubble-driving, and magnetic field– (MF–) mediated driving, was prepared via in situ loading of Fe(3)O(4) on a sunflower sporopollenin exine capsule (SEC), and followed by growth of flower-shaped CaCO(3) clusters. The bubble-driving forces enabled SEC-Fe@CaT to self-diffuse in the blood to eliminate agglomeration, and the MF-mediated driving force facilitated the SEC-Fe@CaT countercurrent against blood to access deep bleeding sites in the wounds. During the movement in blood flow, the meteor hammer-like SEC from SEC-Fe@CaT can puncture red blood cells (RBCs) to release procoagulants, thus promoting activation of platelet and rapid hemostasis. Animal tests suggested that SEC-Fe@CaT stopped bleeding in as short as 30 and 45 s in femoral artery and liver hemorrhage models, respectively. In contrast, the similar commercial product Celox™ required approximately 70 s to stop the bleeding in both bleeding modes. This study demonstrates a new hemostat platform for rapid hemostasis in deep and complex wounds. It was the first attempt integrating geometric structure of sunflower pollen with dual-driven movement in hemostasis. AAAS 2022-05-31 /pmc/articles/PMC9178490/ /pubmed/35707050 http://dx.doi.org/10.34133/2022/9762746 Text en Copyright © 2022 Haoyu Qiu et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Qiu, Haoyu
Lan, Guangqian
Ding, Weiwei
Wang, Xinyu
Wang, Wenyi
Shou, Dahua
Lu, Fei
Hu, Enling
Yu, Kun
Shang, Songmin
Xie, Ruiqi
Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title_full Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title_fullStr Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title_full_unstemmed Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title_short Dual-Driven Hemostats Featured with Puncturing Erythrocytes for Severe Bleeding in Complex Wounds
title_sort dual-driven hemostats featured with puncturing erythrocytes for severe bleeding in complex wounds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9178490/
https://www.ncbi.nlm.nih.gov/pubmed/35707050
http://dx.doi.org/10.34133/2022/9762746
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