Jessica Wiseman
A macro-transection model of brain trauma for neuromaterial testing with functional electrophysiological readouts.
Wiseman, Jessica; Basit, Raja Haseeb; Suto, Akihiro; Middya, Sagnik; Kabiri, Bushra; Evans, Michael; George, Vinoj; Adams, Christopher; Malliaras, George; Chari, Divya Maitreyi
Authors
Raja Haseeb Basit
Akihiro Suto
Sagnik Middya
Bushra Kabiri
Michael Evans
Vinoj George
Christopher Adams c.adams@keele.ac.uk
George Malliaras
Divya Chari d.chari@keele.ac.uk
Abstract
Functional recovery in penetrating neurological injury is hampered by a lack of clinical regenerative therapies. Biomaterial therapies show promise as medical materials for neural repair through immunomodulation, structural support, and delivery of therapeutic biomolecules. However, a lack of facile and pathology-mimetic models for therapeutic testing is a bottleneck in neural tissue engineering research. We have deployed a two-dimensional, high-density multicellular cortical brain sheet to develop a facile model of injury (macrotransection/scratch wound) in vitro. The model encompasses the major neural cell types involved in pathological responses post-injury. Critically, we observed hallmark pathological responses in injury foci including cell scarring, immune cell infiltration, precursor cell migration, and short-range axonal sprouting. Delivering test magnetic particles to evaluate the potential of the model for biomaterial screening shows a high uptake of introduced magnetic particles by injury-activated immune cells, mimicking in vivo findings. Finally, we proved it is feasible to create reproducible traumatic injuries in the brain sheet (in multielectrode array devices in situ) characterized by focal loss of electrical spiking in injury sites, offering the potential for longer term, electrophysiology plus histology assays. To our knowledge, this is the first in vitro simulation of transecting injury in a two-dimensional multicellular cortical brain cell sheet, that allows for combined histological and electrophysiological readouts of damage/repair. The patho-mimicry and adaptability of this simplified model of brain injury could benefit the testing of biomaterial therapeutics in regenerative neurology, with the option for functional electrophysiological readouts. [Abstract copyright: Copyright © 2025 Neural Regeneration Research.]
Citation
Wiseman, J., Basit, R. H., Suto, A., Middya, S., Kabiri, B., Evans, M., …Chari, D. M. (in press). A macro-transection model of brain trauma for neuromaterial testing with functional electrophysiological readouts. Neural Regeneration Research, 20(12), 3539-3552. https://doi.org/10.4103/NRR.NRR-D-24-00422
Journal Article Type | Article |
---|---|
Acceptance Date | Nov 30, 2024 |
Online Publication Date | Jan 13, 2025 |
Deposit Date | Feb 6, 2025 |
Journal | Neural regeneration research |
Print ISSN | 1673-5374 |
Electronic ISSN | 1876-7958 |
Publisher | Medknow Publications |
Peer Reviewed | Peer Reviewed |
Volume | 20 |
Issue | 12 |
Pages | 3539-3552 |
DOI | https://doi.org/10.4103/NRR.NRR-D-24-00422 |
Keywords | in vitro modelling, multielectrode array interfacing, nanoparticles, neuromaterials, scratch assay, transecting injury, traumatic brain injury |
Public URL | https://keele-repository.worktribe.com/output/1053914 |
You might also like
Electroactive Scaffolds to Improve Neural Stem Cell Therapy for Spinal Cord Injury
(2022)
Journal Article
Downloadable Citations
About Keele Repository
Administrator e-mail: research.openaccess@keele.ac.uk
This application uses the following open-source libraries:
SheetJS Community Edition
Apache License Version 2.0 (http://www.apache.org/licenses/)
PDF.js
Apache License Version 2.0 (http://www.apache.org/licenses/)
Font Awesome
SIL OFL 1.1 (http://scripts.sil.org/OFL)
MIT License (http://opensource.org/licenses/mit-license.html)
CC BY 3.0 ( http://creativecommons.org/licenses/by/3.0/)
Powered by Worktribe © 2025
Advanced Search