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Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential
We report on the design, development, characterization, and a preliminary cellular evaluation of a novel solid material. This material is composed of low-molecular-weight hyaluronic acid (LMWHA) and polyarginine (PArg), which generate aqueous ionic nanocomplexes (INC) that are then freeze-dried to c...
Autores principales: | , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2019
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6669755/ https://www.ncbi.nlm.nih.gov/pubmed/31261871 http://dx.doi.org/10.3390/nano9070944 |
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author | Villamizar-Sarmiento, María Gabriela Moreno-Villoslada, Ignacio Martínez, Samuel Giacaman, Annesi Miranda, Victor Vidal, Alejandra Orellana, Sandra L. Concha, Miguel Pavicic, Francisca Lisoni, Judit G. Leyton, Lisette Oyarzun-Ampuero, Felipe A. |
author_facet | Villamizar-Sarmiento, María Gabriela Moreno-Villoslada, Ignacio Martínez, Samuel Giacaman, Annesi Miranda, Victor Vidal, Alejandra Orellana, Sandra L. Concha, Miguel Pavicic, Francisca Lisoni, Judit G. Leyton, Lisette Oyarzun-Ampuero, Felipe A. |
author_sort | Villamizar-Sarmiento, María Gabriela |
collection | PubMed |
description | We report on the design, development, characterization, and a preliminary cellular evaluation of a novel solid material. This material is composed of low-molecular-weight hyaluronic acid (LMWHA) and polyarginine (PArg), which generate aqueous ionic nanocomplexes (INC) that are then freeze-dried to create the final product. Different ratios of LMWHA/PArg were selected to elaborate INC, the size and zeta potential of which ranged from 100 to 200 nm and +25 to −43 mV, respectively. Turbidimetry and nanoparticle concentration analyses demonstrated the high capacity of the INC to interact with increasing concentrations of LMWHA, improving the yield of production of the nanostructures. Interestingly, once the selected formulations of INC were freeze-dried, only those comprising a larger excess of LMWHA could form reproducible sponge formulations, as seen with the naked eye. This optical behavior was consistent with the scanning transmission electron microscopy (STEM) images, which showed a tendency of the particles to agglomerate when an excess of LMWHA was present. Mechanical characterization evidenced low stiffness in the materials, attributed to the low density and high porosity. A preliminary cellular evaluation in a fibroblast cell line (RMF-EG) evidenced the concentration range where swollen formulations did not affect cell proliferation (93–464 µM) at 24, 48, or 72 h. Considering that the reproducible sponge formulations were elaborated following inexpensive and non-contaminant methods and comprised bioactive components, we postulate them with potential for biomedical purposes. Additionally, this systematic study provides important information to design reproducible porous solid materials using ionic nanocomplexes. |
format | Online Article Text |
id | pubmed-6669755 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-66697552019-08-08 Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential Villamizar-Sarmiento, María Gabriela Moreno-Villoslada, Ignacio Martínez, Samuel Giacaman, Annesi Miranda, Victor Vidal, Alejandra Orellana, Sandra L. Concha, Miguel Pavicic, Francisca Lisoni, Judit G. Leyton, Lisette Oyarzun-Ampuero, Felipe A. Nanomaterials (Basel) Article We report on the design, development, characterization, and a preliminary cellular evaluation of a novel solid material. This material is composed of low-molecular-weight hyaluronic acid (LMWHA) and polyarginine (PArg), which generate aqueous ionic nanocomplexes (INC) that are then freeze-dried to create the final product. Different ratios of LMWHA/PArg were selected to elaborate INC, the size and zeta potential of which ranged from 100 to 200 nm and +25 to −43 mV, respectively. Turbidimetry and nanoparticle concentration analyses demonstrated the high capacity of the INC to interact with increasing concentrations of LMWHA, improving the yield of production of the nanostructures. Interestingly, once the selected formulations of INC were freeze-dried, only those comprising a larger excess of LMWHA could form reproducible sponge formulations, as seen with the naked eye. This optical behavior was consistent with the scanning transmission electron microscopy (STEM) images, which showed a tendency of the particles to agglomerate when an excess of LMWHA was present. Mechanical characterization evidenced low stiffness in the materials, attributed to the low density and high porosity. A preliminary cellular evaluation in a fibroblast cell line (RMF-EG) evidenced the concentration range where swollen formulations did not affect cell proliferation (93–464 µM) at 24, 48, or 72 h. Considering that the reproducible sponge formulations were elaborated following inexpensive and non-contaminant methods and comprised bioactive components, we postulate them with potential for biomedical purposes. Additionally, this systematic study provides important information to design reproducible porous solid materials using ionic nanocomplexes. MDPI 2019-06-29 /pmc/articles/PMC6669755/ /pubmed/31261871 http://dx.doi.org/10.3390/nano9070944 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Villamizar-Sarmiento, María Gabriela Moreno-Villoslada, Ignacio Martínez, Samuel Giacaman, Annesi Miranda, Victor Vidal, Alejandra Orellana, Sandra L. Concha, Miguel Pavicic, Francisca Lisoni, Judit G. Leyton, Lisette Oyarzun-Ampuero, Felipe A. Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title | Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title_full | Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title_fullStr | Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title_full_unstemmed | Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title_short | Ionic Nanocomplexes of Hyaluronic Acid and Polyarginine to Form Solid Materials: A Green Methodology to Obtain Sponges with Biomedical Potential |
title_sort | ionic nanocomplexes of hyaluronic acid and polyarginine to form solid materials: a green methodology to obtain sponges with biomedical potential |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6669755/ https://www.ncbi.nlm.nih.gov/pubmed/31261871 http://dx.doi.org/10.3390/nano9070944 |
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