4.5 Article

Echogenic Advantages of Ferrogels Filled with Magnetic Sub-Microparticles

Journal

BIOENGINEERING-BASEL
Volume 8, Issue 10, Pages -

Publisher

MDPI
DOI: 10.3390/bioengineering8100140

Keywords

magnetic particles; ferrogels; medical ultrasound; sonography; bioengineering applications

Funding

  1. program of the Ministry of Health of the Russian Federation [121032300335-1]
  2. Russian Science Foundation [20-12-00031]
  3. Russian Science Foundation [20-12-00031] Funding Source: Russian Science Foundation

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A new type of FGs was synthesized in this study, whose inner structure can be visualized by ultrasonic imaging. It was found that increasing the particle size can improve the acoustic properties of FGs. Ultrasound monitoring can be used to determine the shape, dimensions, and inner structure of FGs in the applied external magnetic field.
Ultrasonic imaging of ferrogels (FGs) filled with magnetic nanoparticles does not reflect the inner structure of FGs due to the small size of particles. To determine whether larger particle size would improve the acoustic properties of FGs, biocompatible hydrogels filled with 100-400 nm iron oxide magnetic sub-microparticles with weight fraction up to 23.3% were synthesized and studied. Polymeric networks of synthesized FGs were comprised of chemically cross-linked polyacrylamide with interpenetrating physical network of natural polysaccharide-Guar or Xanthan. Cylindrical samples approximately 10 mm in height and 13 mm in diameter were immersed in a water bath and examined using medical ultrasound (8.5 MHz). The acoustic properties of FGs were characterized by the intensity of reflected echo signal. It was found that the echogenicity of sub-microparticles provides visualization not only of the outer geometry of the gel sample but of its inner structure as well. In particular, the echogenicity of FGs interior depended on the concentration of magnetic particles in the FGs network. The ultrasound monitoring of the shape, dimensions, and inner structure of FGs in the applied external magnetic field is demonstrated. It is especially valuable for the application of FGs in tissue engineering and regenerative medicine.

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