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Enhancing Neural Stem Cell Stimulation with Structured Piezoelectric Composites: An In Vitro Study

Jarkov, Vlad; Waqar, Imaan; Penev, Aleksandar; Bowen, Chris; Adams, Christopher; Khanbareh, Hamideh

Authors

Vlad Jarkov

Imaan Waqar

Aleksandar Penev

Chris Bowen

Hamideh Khanbareh



Abstract

Spinal cord injuries can cause permanent tissue damage with debilitating and lasting effects on patients. Electrical stimulation has been established as an effective approach for promoting neural regeneration. However, the clinical applicability of these techniques is limited by the necessity for wired connections and external power supplies, which increases risk of infection. Piezoelectric materials have the inherent ability to form electric surface potentials when subjected to a mechanical stress and can provide wireless electrical stimulation. However, current materials are not optimized for neurological applications as they are mechanically mismatched with neural tissue, and have poor biocompatibility. Further, reproducible systems for optimizing material design and stimulation paradigms have yet to be established. Here a new, advanced fabrication process to produce scalable, tuneable piezoelectric ceramic–polymer composites based on [K0.5Na0.5]NbO3 and polydimethylsiloxane is provided. It is demonstrated that these composites can be successfully utilized for the growth of neural stem cells, which are shown to survive, proliferate, retain stemness, and differentiate into their daughter populations. Neuronal differentiation appears to be preferred on poled substrates, in comparison to glass coverslips and unpoled substrates. It is shown that the composites can autonomously generate surface potentials, which opens new possibilities to study piezoelectrically induced electrical stimulation.

Citation

Jarkov, V., Waqar, I., Penev, A., Bowen, C., Adams, C., & Khanbareh, H. (in press). Enhancing Neural Stem Cell Stimulation with Structured Piezoelectric Composites: An In Vitro Study. Advanced engineering materials, 25(23), Article 2300696. https://doi.org/10.1002/adem.202300696

Journal Article Type Article
Acceptance Date Sep 1, 2023
Online Publication Date Sep 24, 2023
Deposit Date Oct 2, 2023
Publicly Available Date Oct 2, 2023
Journal Advanced Engineering Materials
Print ISSN 1438-1656
Electronic ISSN 1527-2648
Publisher Wiley
Peer Reviewed Peer Reviewed
Volume 25
Issue 23
Article Number 2300696
DOI https://doi.org/10.1002/adem.202300696
Keywords piezoelectric, composites, tissue engineering

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