Micromotion Derived Fluid Shear Stress Mediates Peri‐Electrode Gliosis through Mechanosensitive Ion Channels

Author:

Trotier Alexandre12ORCID,Bagnoli Enrico12ORCID,Walski Tomasz13ORCID,Evers Judith4ORCID,Pugliese Eugenia1ORCID,Lowery Madeleine4ORCID,Kilcoyne Michelle125ORCID,Fitzgerald Una12ORCID,Biggs Manus12ORCID

Affiliation:

1. SFI Research Centre for Medical Devices (CÚRAM) University of Galway Galway H91 W2TY Ireland

2. Galway Neuroscience Centre University of Galway Galway H91 W2TY Ireland

3. Department of Biomedical Engineering Faculty of Fundamental Problems of Technology Wrocław University of Science and Technology Wroclaw 50‐370 Poland

4. School of Electrical and Electronic Engineering University College Dublin Dublin 4 Ireland

5. Carbohydrate Signalling Group Discipline of Microbiology University of Galway Galway H91 W2TY Ireland

Abstract

AbstractThe development of bioelectronic neural implant technologies has advanced significantly over the past 5 years, particularly in brain–machine interfaces and electronic medicine. However, neuroelectrode‐based therapies require invasive neurosurgery and can subject neural tissues to micromotion‐induced mechanical shear, leading to chronic inflammation, the formation of a peri‐electrode void and the deposition of reactive glial scar tissue. These structures act as physical barriers, hindering electrical signal propagation and reducing neural implant functionality. Although well documented, the mechanisms behind the initiation and progression of these processes are poorly understood. Herein, in silico analysis of micromotion‐induced peri‐electrode void progression and gliosis is described. Subsequently, ventral mesencephalic cells exposed to milliscale fluid shear stress in vitro exhibited increased expression of gliosis‐associated proteins and overexpression of mechanosensitive ion channels PIEZO1 (piezo‐type mechanosensitive ion channel component 1) and TRPA1 (transient receptor potential ankyrin 1), effects further confirmed in vivo in a rat model of peri‐electrode gliosis. Furthermore, in vitro analysis indicates that chemical inhibition/activation of PIEZO1 affects fluid shear stress mediated astrocyte reactivity in a mitochondrial‐dependent manner. Together, the results suggest that mechanosensitive ion channels play a major role in the development of a peri‐electrode void and micromotion‐induced glial scarring at the peri‐electrode region.

Funder

Science Foundation Ireland

European Regional Development Fund

Horizon 2020 Framework Programme

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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