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Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate

The structural modification of biopolymers is a current strategy to develop materials with biomedical applications. Silk fibroin is a natural fiber derived from a protein produced by the silkworm (Bombyx mori) with biocompatible characteristics and excellent mechanical properties. This research repo...

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Autores principales: Flores-Vela, Elsa Veronica, Conejo-Dávila, Alain Salvador, Hernández-Escobar, Claudia Alejandra, Dominguez, Rocio Berenice, Chávez-Flores, David, Tapia-Lopez, Lillian V., Piñon-Balderrama, Claudia, Estrada-Monje, Anayansi, Luna-Velasco, María Antonia, Osuna, Velia Carolina, Zaragoza-Contreras, Erasto Armando
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9657143/
https://www.ncbi.nlm.nih.gov/pubmed/36365647
http://dx.doi.org/10.3390/polym14214653
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author Flores-Vela, Elsa Veronica
Conejo-Dávila, Alain Salvador
Hernández-Escobar, Claudia Alejandra
Dominguez, Rocio Berenice
Chávez-Flores, David
Tapia-Lopez, Lillian V.
Piñon-Balderrama, Claudia
Estrada-Monje, Anayansi
Luna-Velasco, María Antonia
Osuna, Velia Carolina
Zaragoza-Contreras, Erasto Armando
author_facet Flores-Vela, Elsa Veronica
Conejo-Dávila, Alain Salvador
Hernández-Escobar, Claudia Alejandra
Dominguez, Rocio Berenice
Chávez-Flores, David
Tapia-Lopez, Lillian V.
Piñon-Balderrama, Claudia
Estrada-Monje, Anayansi
Luna-Velasco, María Antonia
Osuna, Velia Carolina
Zaragoza-Contreras, Erasto Armando
author_sort Flores-Vela, Elsa Veronica
collection PubMed
description The structural modification of biopolymers is a current strategy to develop materials with biomedical applications. Silk fibroin is a natural fiber derived from a protein produced by the silkworm (Bombyx mori) with biocompatible characteristics and excellent mechanical properties. This research reports the structural modification of silk fibroin by incorporating polyaniline chain grafts through a one-pot process (esterification reaction/oxidative polymerization). The structural characterization was achieved by (1)H-NMR and FT-IR. The morphology was studied by scanning electron microscopy and complemented with thermogravimetric analysis to understand the effect of the thermal stability at each step of the modification. Different fibroin silk (Fib): polyaniline (PAni) mass ratios were evaluated. From this evaluation, it was found that a Fib to PAni ratio of at least 1 to 0.5 is required to produce electroactive polyaniline, as observed by UV-vis and CV. Notably, all the fibroin-g-PAni systems present low cytotoxicity, making them promising systems for developing biocompatible electrochemical sensors.
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spelling pubmed-96571432022-11-15 Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate Flores-Vela, Elsa Veronica Conejo-Dávila, Alain Salvador Hernández-Escobar, Claudia Alejandra Dominguez, Rocio Berenice Chávez-Flores, David Tapia-Lopez, Lillian V. Piñon-Balderrama, Claudia Estrada-Monje, Anayansi Luna-Velasco, María Antonia Osuna, Velia Carolina Zaragoza-Contreras, Erasto Armando Polymers (Basel) Article The structural modification of biopolymers is a current strategy to develop materials with biomedical applications. Silk fibroin is a natural fiber derived from a protein produced by the silkworm (Bombyx mori) with biocompatible characteristics and excellent mechanical properties. This research reports the structural modification of silk fibroin by incorporating polyaniline chain grafts through a one-pot process (esterification reaction/oxidative polymerization). The structural characterization was achieved by (1)H-NMR and FT-IR. The morphology was studied by scanning electron microscopy and complemented with thermogravimetric analysis to understand the effect of the thermal stability at each step of the modification. Different fibroin silk (Fib): polyaniline (PAni) mass ratios were evaluated. From this evaluation, it was found that a Fib to PAni ratio of at least 1 to 0.5 is required to produce electroactive polyaniline, as observed by UV-vis and CV. Notably, all the fibroin-g-PAni systems present low cytotoxicity, making them promising systems for developing biocompatible electrochemical sensors. MDPI 2022-11-01 /pmc/articles/PMC9657143/ /pubmed/36365647 http://dx.doi.org/10.3390/polym14214653 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Flores-Vela, Elsa Veronica
Conejo-Dávila, Alain Salvador
Hernández-Escobar, Claudia Alejandra
Dominguez, Rocio Berenice
Chávez-Flores, David
Tapia-Lopez, Lillian V.
Piñon-Balderrama, Claudia
Estrada-Monje, Anayansi
Luna-Velasco, María Antonia
Osuna, Velia Carolina
Zaragoza-Contreras, Erasto Armando
Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title_full Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title_fullStr Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title_full_unstemmed Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title_short Silk Fibroin-g-Polyaniline Platform for the Design of Biocompatible-Electroactive Substrate
title_sort silk fibroin-g-polyaniline platform for the design of biocompatible-electroactive substrate
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9657143/
https://www.ncbi.nlm.nih.gov/pubmed/36365647
http://dx.doi.org/10.3390/polym14214653
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