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From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications

Bacterial biopolymers are naturally occurring materials comprising a wide range of molecules with diverse chemical structures that can be produced from renewable sources following the principles of the circular economy. Over the last decades, they have gained substantial interest in the biomedical f...

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Autores principales: Blanco, Francisco G., Hernández, Natalia, Rivero-Buceta, Virginia, Maestro, Beatriz, Sanz, Jesús M., Mato, Aránzazu, Hernández-Arriaga, Ana M., Prieto, M. Auxiliadora
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8228158/
https://www.ncbi.nlm.nih.gov/pubmed/34200068
http://dx.doi.org/10.3390/nano11061492
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author Blanco, Francisco G.
Hernández, Natalia
Rivero-Buceta, Virginia
Maestro, Beatriz
Sanz, Jesús M.
Mato, Aránzazu
Hernández-Arriaga, Ana M.
Prieto, M. Auxiliadora
author_facet Blanco, Francisco G.
Hernández, Natalia
Rivero-Buceta, Virginia
Maestro, Beatriz
Sanz, Jesús M.
Mato, Aránzazu
Hernández-Arriaga, Ana M.
Prieto, M. Auxiliadora
author_sort Blanco, Francisco G.
collection PubMed
description Bacterial biopolymers are naturally occurring materials comprising a wide range of molecules with diverse chemical structures that can be produced from renewable sources following the principles of the circular economy. Over the last decades, they have gained substantial interest in the biomedical field as drug nanocarriers, implantable material coatings, and tissue-regeneration scaffolds or membranes due to their inherent biocompatibility, biodegradability into nonhazardous disintegration products, and their mechanical properties, which are similar to those of human tissues. The present review focuses upon three technologically advanced bacterial biopolymers, namely, bacterial cellulose (BC), polyhydroxyalkanoates (PHA), and γ-polyglutamic acid (PGA), as models of different carbon-backbone structures (polysaccharides, polyesters, and polyamides) produced by bacteria that are suitable for biomedical applications in nanoscale systems. This selection models evidence of the wide versatility of microorganisms to generate biopolymers by diverse metabolic strategies. We highlight the suitability for applied sustainable bioprocesses for the production of BC, PHA, and PGA based on renewable carbon sources and the singularity of each process driven by bacterial machinery. The inherent properties of each polymer can be fine-tuned by means of chemical and biotechnological approaches, such as metabolic engineering and peptide functionalization, to further expand their structural diversity and their applicability as nanomaterials in biomedicine.
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spelling pubmed-82281582021-06-26 From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications Blanco, Francisco G. Hernández, Natalia Rivero-Buceta, Virginia Maestro, Beatriz Sanz, Jesús M. Mato, Aránzazu Hernández-Arriaga, Ana M. Prieto, M. Auxiliadora Nanomaterials (Basel) Review Bacterial biopolymers are naturally occurring materials comprising a wide range of molecules with diverse chemical structures that can be produced from renewable sources following the principles of the circular economy. Over the last decades, they have gained substantial interest in the biomedical field as drug nanocarriers, implantable material coatings, and tissue-regeneration scaffolds or membranes due to their inherent biocompatibility, biodegradability into nonhazardous disintegration products, and their mechanical properties, which are similar to those of human tissues. The present review focuses upon three technologically advanced bacterial biopolymers, namely, bacterial cellulose (BC), polyhydroxyalkanoates (PHA), and γ-polyglutamic acid (PGA), as models of different carbon-backbone structures (polysaccharides, polyesters, and polyamides) produced by bacteria that are suitable for biomedical applications in nanoscale systems. This selection models evidence of the wide versatility of microorganisms to generate biopolymers by diverse metabolic strategies. We highlight the suitability for applied sustainable bioprocesses for the production of BC, PHA, and PGA based on renewable carbon sources and the singularity of each process driven by bacterial machinery. The inherent properties of each polymer can be fine-tuned by means of chemical and biotechnological approaches, such as metabolic engineering and peptide functionalization, to further expand their structural diversity and their applicability as nanomaterials in biomedicine. MDPI 2021-06-04 /pmc/articles/PMC8228158/ /pubmed/34200068 http://dx.doi.org/10.3390/nano11061492 Text en © 2021 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 Review
Blanco, Francisco G.
Hernández, Natalia
Rivero-Buceta, Virginia
Maestro, Beatriz
Sanz, Jesús M.
Mato, Aránzazu
Hernández-Arriaga, Ana M.
Prieto, M. Auxiliadora
From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title_full From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title_fullStr From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title_full_unstemmed From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title_short From Residues to Added-Value Bacterial Biopolymers as Nanomaterials for Biomedical Applications
title_sort from residues to added-value bacterial biopolymers as nanomaterials for biomedical applications
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8228158/
https://www.ncbi.nlm.nih.gov/pubmed/34200068
http://dx.doi.org/10.3390/nano11061492
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