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Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells

The goal of this research was to develop a novel oxygen therapeutic made from a pectin-based hydrogel microcapsule carrier mimicking red blood cells. The study focused on three main criteria for developing the oxygen therapeutic to mimic red blood cells: size (5–10 μm), morphology (biconcave shape),...

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Autores principales: Cherwin, Amanda, Namen, Shelby, Rapacz, Justyna, Kusik, Grace, Anderson, Alexa, Wang, Yale, Kaltchev, Matey, Schroeder, Rebecca, O’Connell, Kellen, Stephens, Sydney, Chen, Junhong, Zhang, Wujie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6921010/
https://www.ncbi.nlm.nih.gov/pubmed/31703298
http://dx.doi.org/10.3390/pharmaceutics11110583
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author Cherwin, Amanda
Namen, Shelby
Rapacz, Justyna
Kusik, Grace
Anderson, Alexa
Wang, Yale
Kaltchev, Matey
Schroeder, Rebecca
O’Connell, Kellen
Stephens, Sydney
Chen, Junhong
Zhang, Wujie
author_facet Cherwin, Amanda
Namen, Shelby
Rapacz, Justyna
Kusik, Grace
Anderson, Alexa
Wang, Yale
Kaltchev, Matey
Schroeder, Rebecca
O’Connell, Kellen
Stephens, Sydney
Chen, Junhong
Zhang, Wujie
author_sort Cherwin, Amanda
collection PubMed
description The goal of this research was to develop a novel oxygen therapeutic made from a pectin-based hydrogel microcapsule carrier mimicking red blood cells. The study focused on three main criteria for developing the oxygen therapeutic to mimic red blood cells: size (5–10 μm), morphology (biconcave shape), and functionality (encapsulation of oxygen carriers; e.g., hemoglobin (Hb)). The hydrogel carriers were generated via the electrospraying of the pectin-based solution into an oligochitosan crosslinking solution using an electrospinning setup. The pectin-based solution was investigated first to develop the simplest possible formulation for electrospray. Then, Design-Expert(®) software was used to optimize the production process of the hydrogel microcapsules. The optimal parameters were obtained through the analysis of a total of 17 trials and the microcapsule with the desired morphology and size was successfully prepared under the optimized condition. Fourier transform infrared spectroscopy (FTIR) was used to analyze the chemistry of the microcapsules. Moreover, the encapsulation of Hb into the microcapsule did not adversely affect the microcapsule preparation process, and the encapsulation efficiency was high (99.99%). The produced hydrogel microcapsule system shows great promise for creating a novel oxygen therapeutic.
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spelling pubmed-69210102019-12-24 Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells Cherwin, Amanda Namen, Shelby Rapacz, Justyna Kusik, Grace Anderson, Alexa Wang, Yale Kaltchev, Matey Schroeder, Rebecca O’Connell, Kellen Stephens, Sydney Chen, Junhong Zhang, Wujie Pharmaceutics Communication The goal of this research was to develop a novel oxygen therapeutic made from a pectin-based hydrogel microcapsule carrier mimicking red blood cells. The study focused on three main criteria for developing the oxygen therapeutic to mimic red blood cells: size (5–10 μm), morphology (biconcave shape), and functionality (encapsulation of oxygen carriers; e.g., hemoglobin (Hb)). The hydrogel carriers were generated via the electrospraying of the pectin-based solution into an oligochitosan crosslinking solution using an electrospinning setup. The pectin-based solution was investigated first to develop the simplest possible formulation for electrospray. Then, Design-Expert(®) software was used to optimize the production process of the hydrogel microcapsules. The optimal parameters were obtained through the analysis of a total of 17 trials and the microcapsule with the desired morphology and size was successfully prepared under the optimized condition. Fourier transform infrared spectroscopy (FTIR) was used to analyze the chemistry of the microcapsules. Moreover, the encapsulation of Hb into the microcapsule did not adversely affect the microcapsule preparation process, and the encapsulation efficiency was high (99.99%). The produced hydrogel microcapsule system shows great promise for creating a novel oxygen therapeutic. MDPI 2019-11-07 /pmc/articles/PMC6921010/ /pubmed/31703298 http://dx.doi.org/10.3390/pharmaceutics11110583 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 Communication
Cherwin, Amanda
Namen, Shelby
Rapacz, Justyna
Kusik, Grace
Anderson, Alexa
Wang, Yale
Kaltchev, Matey
Schroeder, Rebecca
O’Connell, Kellen
Stephens, Sydney
Chen, Junhong
Zhang, Wujie
Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title_full Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title_fullStr Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title_full_unstemmed Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title_short Design of a Novel Oxygen Therapeutic Using Polymeric Hydrogel Microcapsules Mimicking Red Blood Cells
title_sort design of a novel oxygen therapeutic using polymeric hydrogel microcapsules mimicking red blood cells
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6921010/
https://www.ncbi.nlm.nih.gov/pubmed/31703298
http://dx.doi.org/10.3390/pharmaceutics11110583
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