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Sodium Phytate-Incorporated Gelatin-Silicate Nanoplatelet Composites for Enhanced Cohesion and Hemostatic Function of Shear-Thinning Biomaterials

  • Fatemeh Zehtabi
  • , Hossein Montazerian
  • , Reihaneh Haghniaz
  • , Kaylee Tseng
  • , Neda Mohaghegh
  • , Kalpana Mandal
  • , Behnam Zamanian
  • , Mehmet Remzi Dokmeci
  • , Mohsen Akbari
  • , Alireza Hassani Najafabadi
  • , Han Jun Kim
  • , Ali Khademhosseini
  • Terasaki Institute for Biomedical Innovation
  • University of California at Los Angeles
  • California NanoSystems Institute
  • University of Southern California
  • University of Victoria BC

Research output: Contribution to journalArticlepeer-review

10 Citations (Scopus)

Abstract

Shear-thinning biomaterials (STBs) based on gelatin-silicate nanoplatelets (SNs) are emerging as an alternative to conventional coiling and clipping techniques in the treatment of vascular anomalies. Improvements in the cohesion of STB hydrogels pave the way toward their translational application in minimally invasive therapies such as endovascular embolization repair. In the present study, sodium phytate (Phyt) additives are used to tune the electrostatic network of SNs-gelatin STBs, thereby promoting their mechanical integrity and facilitating injectability through standard catheters. We show that an optimized amount of Phyt enhances storage modulus by approximately one order of magnitude and reduces injection force by ≈58% without compromising biocompatibility and hydrogel wet stability. The Phyt additives are found to decrease the immune responses induced by SNs. In vitro embolization experiments suggest a significantly lower rate of failure in Phyt-incorporated STBs than in control groups. Furthermore, the addition of Phyt leads to accelerated blood coagulation (reduces clotting time by ≈45% compared to controls) due to the contributions of negatively charged phosphate groups, which aid in the prolonged durability of STB in coagulopathic patients. Therefore, the proposed approach is an effective method for the design of robust and injectable STBs for minimally invasive treatment of vascular malformations.

Original languageEnglish
Article number2200333
JournalMacromolecular Bioscience
Volume23
Issue number1
DOIs
Publication statusPublished - Jan 2023

Keywords

  • Shear-thinning biomaterial
  • embolization
  • hemostatic
  • silicate nanoplatelet
  • sodium phytate

ASJC Scopus subject areas

  • Biotechnology
  • Bioengineering
  • Biomaterials
  • Polymers and Plastics
  • Materials Chemistry

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