A millimetre-scale capacitive biosensing and biophysical stimulation system for emerging bioelectronic bone implants

Author:

Pires Diogo G.1ORCID,Silva Nuno M.2,de Sousa Bárbara M.3ORCID,Marques João L.4,Ramos António15,Ferreira Jorge A. F.15,Morais Raul26,Vieira Sandra I.3,Soares dos Santos Marco P.15ORCID

Affiliation:

1. Department of Mechanical Engineering, Centre for Mechanical Technology & Automation (TEMA), University of Aveiro , Aveiro 3810-193, Portugal

2. Engineering Department, University of Trás-os-Montes e Alto Douro , Vila Real 5000-801, Portugal

3. Department of Medical Sciences, Institute of Biomedicine (iBiMED), University of Aveiro , Aveiro 3810-193, Portugal

4. Department of Physics, University of Aveiro , Aveiro 3810-193, Portugal

5. Intelligent Systems Associate Laboratory (LASI) , Guimarães 4800-058, Portugal

6. Centre for the Research and Technology of Agro-Environmental and Biological Sciences (CITAB), University of Trás-os-Montes e Alto Douro , Vila Real, 5000-801, Portugal

Abstract

Bioelectronic bone implants are being widely recognized as a promising technology for highly personalized bone/implant interface sensing and biophysical therapeutic stimulation. Such bioelectronic devices are based on an innovative concept with the ability to be applied to a wide range of implants, including in fixation and prosthetic systems. Recently, biointerface sensing using capacitive patterns was proposed to overcome the limitations of standard imaging technologies and other non-imaging technologies; moreover, electric stimulation using capacitive patterns was proposed to overcome the limitations of non-instrumented implants. We here provide an innovative low-power miniaturized electronic system with ability to provide both therapeutic stimulation and bone/implant interface monitoring using network-architectured capacitive interdigitated patterns. It comprises five modules: sensing, electric stimulation, processing, communication and power management. This technology was validated using in vitro tests: concerning the sensing system, its ability to detect biointerface changes ranging from tiny to severe bone-implant interface changes in target regions was validated; concerning the stimulation system, its ability to significantly enhance bone cells’ full differentiation, including matrix maturation and mineralization, was also confirmed. This work provides an impactful contribution and paves the way for the development of the new generation of orthopaedic biodevices.

Funder

Fundação para a Ciência e a Tecnologia

Publisher

The Royal Society

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