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A Self-Powered Piezo-Bioelectric Device Regulates Tendon Repair-Associated Signaling Pathways through Modulation of Mechanosensitive Ion Channels

Authors :
Marc A. Fernandez-Yague
Alexandre Trotier
Sunny Akogwu Abbah
Michelle Kilcoyne
Manus J.P. Biggs
Arun Thirumaran
Secil Demir
Aitor LarraƱaga
Matteo Palma
Abhay Pandit
Aimee Stapleton
Syed A. M. Tofail
Source :
Advanced Materials
Publication Year :
2021

Abstract

Tendon disease constitutes an unmet clinical need and remains a critical challenge in the field of orthopaedic surgery. Innovative solutions are required to overcome the limitations of current tendon grafting approaches, and bioelectronic therapies show promise in treating musculoskeletal diseases, accelerating functional recovery through the activation of tissue regeneration-specific signaling pathways. Self-powered bioelectronic devices, particularly piezoelectric materials, represent a paradigm shift in biomedicine, negating the need for battery or external powering and complementing existing mechanotherapy to accelerate the repair processes. Here, the dynamic response of tendon cells to a piezoelectric collagen-analogue scaffold comprised of aligned nanoscale fibers made of the ferroelectric material poly(vinylidene fluoride-co-trifluoroethylene) is shown. It is demonstrated that motion-powered electromechanical stimulation of tendon tissue through piezo-bioelectric device results in ion channel modulation in vitro and regulates specific tissue regeneration signaling pathways. Finally, the potential of the piezo-bioelectronic device in modulating the progression of tendinopathy-associated processes in vivo, using a rat Achilles acute injury model is shown. This study indicates that electromechanical stimulation regulates mechanosensitive ion channel sensitivity and promotes tendon-specific over non-tenogenic tissue repair processes.

Details

ISSN :
09359648
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....21d9266351bf3fb2dabef3d29c80c8c0
Full Text :
https://doi.org/10.1002/adma.202008788