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Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity

Materials for wearable devices, tissue engineering and bio-sensing applications require both antibacterial activity to prevent bacterial infection and biofilm formation, and electrical conductivity to electric signals inside and outside of the human body. Recently, cellulose nanofibers have been uti...

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Autores principales: Nguyen, Hoang-Linh, Jo, Yun Kee, Cha, Minkyu, Cha, Yun Jeong, Yoon, Dong Ki, Sanandiya, Naresh D., Prajatelistia, Ekavianty, Oh, Dongyeop X., Hwang, Dong Soo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6432548/
https://www.ncbi.nlm.nih.gov/pubmed/30979192
http://dx.doi.org/10.3390/polym8030102
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author Nguyen, Hoang-Linh
Jo, Yun Kee
Cha, Minkyu
Cha, Yun Jeong
Yoon, Dong Ki
Sanandiya, Naresh D.
Prajatelistia, Ekavianty
Oh, Dongyeop X.
Hwang, Dong Soo
author_facet Nguyen, Hoang-Linh
Jo, Yun Kee
Cha, Minkyu
Cha, Yun Jeong
Yoon, Dong Ki
Sanandiya, Naresh D.
Prajatelistia, Ekavianty
Oh, Dongyeop X.
Hwang, Dong Soo
author_sort Nguyen, Hoang-Linh
collection PubMed
description Materials for wearable devices, tissue engineering and bio-sensing applications require both antibacterial activity to prevent bacterial infection and biofilm formation, and electrical conductivity to electric signals inside and outside of the human body. Recently, cellulose nanofibers have been utilized for various applications but cellulose itself has neither antibacterial activity nor conductivity. Here, an antibacterial and electrically conductive composite was formed by generating catechol mediated silver nanoparticles (AgNPs) on the surface of cellulose nanofibers. The chemically immobilized catechol moiety on the nanofibrous cellulose network reduced Ag(+) to form AgNPs on the cellulose nanofiber. The AgNPs cellulose composite showed excellent antibacterial efficacy against both Gram-positive and Gram-negative bacteria. In addition, the catechol conjugation and the addition of AgNP induced anisotropic self-alignment of the cellulose nanofibers which enhances electrical and mechanical properties of the composite. Therefore, the composite containing AgNPs and anisotropic aligned the cellulose nanofiber may be useful for biomedical applications.
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spelling pubmed-64325482019-04-02 Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity Nguyen, Hoang-Linh Jo, Yun Kee Cha, Minkyu Cha, Yun Jeong Yoon, Dong Ki Sanandiya, Naresh D. Prajatelistia, Ekavianty Oh, Dongyeop X. Hwang, Dong Soo Polymers (Basel) Article Materials for wearable devices, tissue engineering and bio-sensing applications require both antibacterial activity to prevent bacterial infection and biofilm formation, and electrical conductivity to electric signals inside and outside of the human body. Recently, cellulose nanofibers have been utilized for various applications but cellulose itself has neither antibacterial activity nor conductivity. Here, an antibacterial and electrically conductive composite was formed by generating catechol mediated silver nanoparticles (AgNPs) on the surface of cellulose nanofibers. The chemically immobilized catechol moiety on the nanofibrous cellulose network reduced Ag(+) to form AgNPs on the cellulose nanofiber. The AgNPs cellulose composite showed excellent antibacterial efficacy against both Gram-positive and Gram-negative bacteria. In addition, the catechol conjugation and the addition of AgNP induced anisotropic self-alignment of the cellulose nanofibers which enhances electrical and mechanical properties of the composite. Therefore, the composite containing AgNPs and anisotropic aligned the cellulose nanofiber may be useful for biomedical applications. MDPI 2016-03-22 /pmc/articles/PMC6432548/ /pubmed/30979192 http://dx.doi.org/10.3390/polym8030102 Text en © 2016 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nguyen, Hoang-Linh
Jo, Yun Kee
Cha, Minkyu
Cha, Yun Jeong
Yoon, Dong Ki
Sanandiya, Naresh D.
Prajatelistia, Ekavianty
Oh, Dongyeop X.
Hwang, Dong Soo
Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title_full Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title_fullStr Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title_full_unstemmed Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title_short Mussel-Inspired Anisotropic Nanocellulose and Silver Nanoparticle Composite with Improved Mechanical Properties, Electrical Conductivity and Antibacterial Activity
title_sort mussel-inspired anisotropic nanocellulose and silver nanoparticle composite with improved mechanical properties, electrical conductivity and antibacterial activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6432548/
https://www.ncbi.nlm.nih.gov/pubmed/30979192
http://dx.doi.org/10.3390/polym8030102
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