Multimodal Biomedical Implant with Plasmonic and Simulated Body Temperature Responses

Author:

Mingot Júlia12ORCID,Benejam Nícolas1,Víllora Gloria3ORCID,Alemán Carlos124ORCID,Armelin Elaine12ORCID,Lanzalaco Sonia12ORCID

Affiliation:

1. Departament of Chemical Engineering Universitat Politècnica de Catalunya (UPC) C/d'Eduard Maristany, 10‐14, Building I Barcelona 08019 Spain

2. Barcelona Research Centre for Multiscale Science and Engineering Universitat Politècnica de Catalunya (UPC) C/d'Eduard Maristany, 10‐14, Building I 08019 Barcelona Spain

3. Chemical Engineering Department Faculty of Chemistry University of Murcia Campus Espinardo 30100 Murcia Spain

4. Institute for Bioengineering of Catalonia (IBEC) The Barcelona Institute of Science and Technology C/Baldiri Reixac 10‐12 08028 Barcelona Spain

Abstract

AbstractThis work presents a novel nanoparticle‐based thermosensor implant able to reveal the precise temperature variations along the polymer filaments, as it contracts and expands due to changes in the macroscale local temperature. The multimodal device is able to trace the position and the temperature of a polypropylene mesh, employed in abdominal hernia repair, by combining plasmon resonance and Raman spectroscopy with hydrogel responsive system. The novelty relies on the attachment of the biocompatible nanoparticles, based on gold stabilized by a chitosan‐shell, already charged with the Raman reporter (RaR) molecules, to the robust prosthesis, without the need of chemical linkers. The SERS enhanced effect observed is potentiated by the presence of a quite thick layer of the copolymer (poly(N‐isopropylacrylamide)‐co‐poly(acrylamide)) hydrogel. At temperatures above the LCST of PNIPAAm‐co‐PAAm, the water molecules are expulsed and the hydrogel layer contracts, leaving the RaR molecules more accessible to the Raman source. In vitro studies with fibroblast cells reveal that the functionalized surgical mesh is biocompatible and no toxic substances are leached in the medium. The mesh sensor opens new frontiers to semi‐invasive diagnosis and infection prevention in hernia repair by using SERS spectroscopy. It also offers new possibilities to the functionalization of other healthcare products.

Funder

Agència de Gestió d'Ajuts Universitaris i de Recerca

Ministerio de Ciencia e Innovación

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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