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research article

Revealing the complexity of ultra-soft hydrogel re-swelling inside the brain

Shur, Michael
•
Akouissi, Outman  
•
Rizzo, Olivier
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March 1, 2023
Biomaterials

The brain is an ultra-soft viscoelastic matrix. Sub-kPa hydrogels match the brain's mechanical properties but are challenging to manipulate in an implantable format. We propose a simple fabrication and processing sequence, consisting of de-hydration, patterning, implantation, and re-hydration steps, to deliver brain-like hydrogel implants into the nervous tissue. We monitored in real-time the ultra-soft hydrogel re-swelling kinetics in vivo using microcomputed tomography, achieved by embedding gold nanoparticles inside the hydrogel for contrast enhancement. We found that re-swelling in vivo strongly depends on the implant geometry and water availability at the hydrogel-tissue interface. Buckling of the implant inside the brain occurs when the soft implant is tethered to the cranium. Finite-element and analytical models reveal how the shank geometry, modulus and anchoring govern in vivo buckling. Taken together, these considerations on re-swelling kinetics of hydrogel constructs, implant geometry and soft implant-tissue mechanical interplay can guide the engineering of biomimetic brain implants.

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Type
research article
DOI
10.1016/j.biomaterials.2023.122024
Author(s)
Shur, Michael
Akouissi, Outman  
Rizzo, Olivier
Colin, Didier J.
Kolinski, John M.
Lacour, Stéphanie P.
Date Issued

2023-03-01

Published in
Biomaterials
Volume

294

Article Number

122024

Subjects

Hydrogel

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Brain

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Radiopaque hydrogel

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Implant

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Mechanics

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSBI  
Available on Infoscience
March 13, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/196026
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