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3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues

[Image: see text] Flexible and biocompatible adhesives with sensing capabilities can be integrated onto human body and organ surfaces, characterized by complex geometries, thus having the potential to sense their physiological stimuli offering monitoring and diagnosis of a wide spectrum of diseases....

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Autores principales: Chiesa, Irene, De Maria, Carmelo, Ceccarini, Maria Rachele, Mussolin, Lorenzo, Coletta, Riccardo, Morabito, Antonino, Tonin, Rodolfo, Calamai, Martino, Morrone, Amelia, Beccari, Tommaso, Valentini, Luca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9073835/
https://www.ncbi.nlm.nih.gov/pubmed/35438960
http://dx.doi.org/10.1021/acsami.2c04078
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author Chiesa, Irene
De Maria, Carmelo
Ceccarini, Maria Rachele
Mussolin, Lorenzo
Coletta, Riccardo
Morabito, Antonino
Tonin, Rodolfo
Calamai, Martino
Morrone, Amelia
Beccari, Tommaso
Valentini, Luca
author_facet Chiesa, Irene
De Maria, Carmelo
Ceccarini, Maria Rachele
Mussolin, Lorenzo
Coletta, Riccardo
Morabito, Antonino
Tonin, Rodolfo
Calamai, Martino
Morrone, Amelia
Beccari, Tommaso
Valentini, Luca
author_sort Chiesa, Irene
collection PubMed
description [Image: see text] Flexible and biocompatible adhesives with sensing capabilities can be integrated onto human body and organ surfaces, characterized by complex geometries, thus having the potential to sense their physiological stimuli offering monitoring and diagnosis of a wide spectrum of diseases. The challenges in this innovative field are the following: (i) the coupling method between the smart adhesive and the soft human substrates, (ii) the bioresorbable behavior of the material, and (iii) the electrical exchange with the substrate. Here, we introduce a multifunctional composite by mixing silk fibroin, featuring piezoelectric properties, with a soluble plant-derived polyphenol (i.e., chestnut tannin) modified with graphene nanoplatelets. This material behaves as a glue on different substrates and gives rise to high elongation at break, conformability, and adhesive performances to gastrointestinal tissues in a rat model and favors the printability via extrusion-based 3D printing. Exploiting these properties, we designed a bioresorbable 3D printed flexible and self-adhesive piezoelectric device that senses the motility once applied onto a phantom intestine and the hand gesture by signal translation. Experimental results also include the biocompatibility study using gastrointestinal cells. These findings could have applicability in animal model studies, and, thanks to the bioresorbable behavior of the materials, such an adhesive device could be used for monitoring the motility of the gastrointestinal tract and for the diagnosis of motility disorders.
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spelling pubmed-90738352022-05-06 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues Chiesa, Irene De Maria, Carmelo Ceccarini, Maria Rachele Mussolin, Lorenzo Coletta, Riccardo Morabito, Antonino Tonin, Rodolfo Calamai, Martino Morrone, Amelia Beccari, Tommaso Valentini, Luca ACS Appl Mater Interfaces [Image: see text] Flexible and biocompatible adhesives with sensing capabilities can be integrated onto human body and organ surfaces, characterized by complex geometries, thus having the potential to sense their physiological stimuli offering monitoring and diagnosis of a wide spectrum of diseases. The challenges in this innovative field are the following: (i) the coupling method between the smart adhesive and the soft human substrates, (ii) the bioresorbable behavior of the material, and (iii) the electrical exchange with the substrate. Here, we introduce a multifunctional composite by mixing silk fibroin, featuring piezoelectric properties, with a soluble plant-derived polyphenol (i.e., chestnut tannin) modified with graphene nanoplatelets. This material behaves as a glue on different substrates and gives rise to high elongation at break, conformability, and adhesive performances to gastrointestinal tissues in a rat model and favors the printability via extrusion-based 3D printing. Exploiting these properties, we designed a bioresorbable 3D printed flexible and self-adhesive piezoelectric device that senses the motility once applied onto a phantom intestine and the hand gesture by signal translation. Experimental results also include the biocompatibility study using gastrointestinal cells. These findings could have applicability in animal model studies, and, thanks to the bioresorbable behavior of the materials, such an adhesive device could be used for monitoring the motility of the gastrointestinal tract and for the diagnosis of motility disorders. American Chemical Society 2022-04-19 2022-05-04 /pmc/articles/PMC9073835/ /pubmed/35438960 http://dx.doi.org/10.1021/acsami.2c04078 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Chiesa, Irene
De Maria, Carmelo
Ceccarini, Maria Rachele
Mussolin, Lorenzo
Coletta, Riccardo
Morabito, Antonino
Tonin, Rodolfo
Calamai, Martino
Morrone, Amelia
Beccari, Tommaso
Valentini, Luca
3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title_full 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title_fullStr 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title_full_unstemmed 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title_short 3D Printing Silk-Based Bioresorbable Piezoelectric Self-Adhesive Holey Structures for In Vivo Monitoring on Soft Tissues
title_sort 3d printing silk-based bioresorbable piezoelectric self-adhesive holey structures for in vivo monitoring on soft tissues
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9073835/
https://www.ncbi.nlm.nih.gov/pubmed/35438960
http://dx.doi.org/10.1021/acsami.2c04078
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