A finite element model of the mechanical interactions between peripheral nerves and intrafascicular implants

Author:

Akouissi OutmanORCID,Lacour Stéphanie PORCID,Micera SilvestroORCID,DeSimone AntonioORCID

Abstract

Abstract Objective. Intrafascicular peripheral nerve implants are key components in the development of bidirectional neuroprostheses such as touch-enabled bionic limbs for amputees. However, the durability of such interfaces is hindered by the immune response following the implantation. Among the causes linked to such reaction, the mechanical mismatch between host nerve and implant is thought to play a decisive role, especially in chronic settings. Approach. Here we focus on modeling mechanical stresses induced on the peripheral nerve by the implant’s micromotion using finite element analysis. Through multiple parametric sweeps, we analyze the role of the implant’s material, geometry (aspect-ratio and shape), and surface coating, deriving a set of parameters for the design of better-integrated implants. Main results. Our results indicate that peripheral nerve implants should be designed and manufactured with smooth edges, using materials at most three orders of magnitude stiffer than the nerve, and with innovative geometries to redistribute micromotion-associated loads to less delicate parts of the nerve such as the epineurium. Significance. Overall, our model is a useful tool for the peripheral nerve implant designer that is mindful of the importance of implant mechanics for long term applications.

Funder

H2020 European Research Council

Istituto Nazionale per l’Assicurazione Contro Gli Infortuni sul Lavoro

H2020 Marie Skłodowska-Curie Actions

Fondation Bertarelli

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

National Centre of Competence in Research Robotics

Publisher

IOP Publishing

Subject

Cellular and Molecular Neuroscience,Biomedical Engineering

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