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Updated: May 24, 2025

Uncontrolled Hemorrhagic Shock Modeled via Liver Laceration in Mice with Real Time Hemodynamic Monitoring
Published on: May 21, 2017
Ultrathin Nanofibers Ameliorate Commercial Gauze for Rapid Hemorrhage Control Via Improved Clotting Kinetics and Rbc
Shivangi Parhi1,2, Ashmita Mukherjee1,2, Pratik Das3
1CSIR- Indian Institute of Chemical Biology, 4, Raja S.C. Mullick Road, Kolkata, West Bengal, 700032, India.
Abstract:
Timely control of bleeding is crucial to reduce mortality in traumatic injuries, highlighting the urgent need for biomaterials with anti-hemorrhagic properties. Polycaprolactone (PCL) is commonly used for producing nanofibers in the range of 100-200 nm. However, creating ultrafine PCL nanofibers with diameters below 100 nm remains a challenge, limiting its potential as a hemostatic bandage. In this study, various ratios of low molecular weight PCL are blended with reduced keratin to modulate the solution shear-thinning behavior. The optimized blend enables the production of ultrafine nanofibers with a mean diameter of ≈50 nm, providing a high surface area. The surfaces of these nanofibers demonstrate excellent platelet adhesion, aggregation, and activation. Additionally, they are cytocompatible with fibroblasts. The ultrathin nanofibers are electrospun on gauze to create a hemostatic product that shows favorable plasma and blood clotting kinetics. An in vivo study demonstrates reduced clotting times for nanofiber-based products compared to plain gauze. Mechanistically, the RBCs on the nanofiber composites attain a polyhedral shape reducing the space between them and creating a compact seal to prevent fresh blood from oozing out. The intrinsic hemostatic properties of keratin, combined with reduced fiber diameter and the hydrophilic nature of gauge make this a promising hemostatic bandage.
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