Multiple Non‐Covalent Cross‐Linked Multifunctional Strong Hemostatic Agent for Dynamic Exposure Hemostasis

Trauma requires immediate hemostasis during primary care, as well as durable hemostasis that can withstand dynamic wound exposure. Although current hemostatic materials can treat bleeding sites in emergency situations, their mechanical strength and storage conditions limit their practical applicatio...

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Veröffentlicht in:Advanced healthcare materials 2024-02, Vol.13 (5), p.e2302574-n/a
Hauptverfasser: Ji, Weijun, Li, Sidi, Hou, Xin, Zhao, Jin, Yuan, Xubo
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container_issue 5
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container_title Advanced healthcare materials
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creator Ji, Weijun
Li, Sidi
Hou, Xin
Zhao, Jin
Yuan, Xubo
description Trauma requires immediate hemostasis during primary care, as well as durable hemostasis that can withstand dynamic wound exposure. Although current hemostatic materials can treat bleeding sites in emergency situations, their mechanical strength and storage conditions limit their practical application. The simultaneous combination of good mechanical properties, storage stability, biocompatibility, and rapid hemostasis of hemostatic materials remains a challenge. In this paper, a novel hemostatic material based on multiple non‐covalent bond crosslinking, which has excellent mechanical properties, good biocompatibility, storage stability, and rapid hemostasis ability, is reported. Under the drive of multiple non‐covalent bonds, the flowability of hydrogel micro‐modules (HM) decreases rapidly within 20 s after exposure to physiological saline. The HM form a gel barrier with a tensile strength of 62.10 kPa and an elongation at break of 1976% under multiple non‐covalent bonding. Furthermore, the mechanical properties do not change significantly after 30 days of storage. Cell viability is maintained at over 80% after 3 days of incubation with the cells, and the hemolysis test shows a very low hemolysis rate (2.08%). The hemostatic gel formed by HM effectively prevents secondary bleeding in dynamic hemostasis experiments simulating transportation. This work provides a hemostatic material with comprehensive properties for practical applications. A multifunctional hemostatic material based on multiple non‐covalent bonding interactions for severe bleeding due to traumatic injuries and secondary bleeding during transportation is reported. The hemostatic material combines rapid hemostasis, excellent mechanical properties, storage stability, and biocompatibility to meet the special needs of severe bleeding and prevention of secondary bleeding.
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Cell viability is maintained at over 80% after 3 days of incubation with the cells, and the hemolysis test shows a very low hemolysis rate (2.08%). The hemostatic gel formed by HM effectively prevents secondary bleeding in dynamic hemostasis experiments simulating transportation. This work provides a hemostatic material with comprehensive properties for practical applications. A multifunctional hemostatic material based on multiple non‐covalent bonding interactions for severe bleeding due to traumatic injuries and secondary bleeding during transportation is reported. 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Cell viability is maintained at over 80% after 3 days of incubation with the cells, and the hemolysis test shows a very low hemolysis rate (2.08%). The hemostatic gel formed by HM effectively prevents secondary bleeding in dynamic hemostasis experiments simulating transportation. This work provides a hemostatic material with comprehensive properties for practical applications. A multifunctional hemostatic material based on multiple non‐covalent bonding interactions for severe bleeding due to traumatic injuries and secondary bleeding during transportation is reported. 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source Wiley-Blackwell Journals; MEDLINE
subjects Biocompatibility
Bleeding
Cell viability
Chemical bonds
Covalence
Covalent bonds
Crosslinking
dynamic exposure hemostasis
Exposure
Hemolysis
Hemorrhage - drug therapy
Hemostasis
Hemostatics
Hemostatics - pharmacology
Humans
Hydrogels - chemistry
Hydrogels - pharmacology
Mechanical properties
micro‐modules recombination
multifunctional hemostatic material
multiple non‐covalent bonds
Primary care
Shelf life
Storage conditions
Storage stability
Tensile strength
title Multiple Non‐Covalent Cross‐Linked Multifunctional Strong Hemostatic Agent for Dynamic Exposure Hemostasis
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