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Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics

Pectin is a plant-derived heteropolysaccharide that has been implicated in drug development, tissue engineering, and visceral organ repair. Pectin demonstrates remarkable biostability in a variety of physiologic environments but is biodegradable in water. To understand the dynamics of pectin biodegr...

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Autores principales: Liao, Matthew W., Liu, Betty S., Sutlive, Joseph, Wagner, Willi L., Khalil, Hassan A., Chen, Zi, Ackermann, Maximilian, Mentzer, Steven J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9501333/
https://www.ncbi.nlm.nih.gov/pubmed/36146055
http://dx.doi.org/10.3390/polym14183911
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author Liao, Matthew W.
Liu, Betty S.
Sutlive, Joseph
Wagner, Willi L.
Khalil, Hassan A.
Chen, Zi
Ackermann, Maximilian
Mentzer, Steven J.
author_facet Liao, Matthew W.
Liu, Betty S.
Sutlive, Joseph
Wagner, Willi L.
Khalil, Hassan A.
Chen, Zi
Ackermann, Maximilian
Mentzer, Steven J.
author_sort Liao, Matthew W.
collection PubMed
description Pectin is a plant-derived heteropolysaccharide that has been implicated in drug development, tissue engineering, and visceral organ repair. Pectin demonstrates remarkable biostability in a variety of physiologic environments but is biodegradable in water. To understand the dynamics of pectin biodegradation in basic environments, we developed a microfluidics system that facilitated the quantitative comparison of pectin films exposed to facial erosion. Pectin biodegradation was assessed using fluorescein tracer embedded in pectin, trypan blue quenching of released fluorescence, and highly sensitive microfluorimetry. The microfluidic perfusate, delivered through 6 um-pore synthetic membrane interface, demonstrated nonlinear erosion of the pectin film; 75% of tracer was released in 28 h. The microfluidics system was used to identify potential modifiers of pectin erosion. The polyphenolic compound tannic acid, loaded into citrus pectin films, demonstrated a dose-dependent decrease in pectin erosion. Tannic acid had no detectable impact on the physical properties of citrus pectin including adhesivity and cohesion. In contrast, tannic acid weakened the burst strength and cohesion of pectins derived from soy bean and potato sources. We conclude that facial erosion may explain the biostability of citrus pectin on visceral organ surfaces as well as provide a useful method for identifying modifiers of citrus pectin biodegradation.
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spelling pubmed-95013332022-09-24 Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics Liao, Matthew W. Liu, Betty S. Sutlive, Joseph Wagner, Willi L. Khalil, Hassan A. Chen, Zi Ackermann, Maximilian Mentzer, Steven J. Polymers (Basel) Article Pectin is a plant-derived heteropolysaccharide that has been implicated in drug development, tissue engineering, and visceral organ repair. Pectin demonstrates remarkable biostability in a variety of physiologic environments but is biodegradable in water. To understand the dynamics of pectin biodegradation in basic environments, we developed a microfluidics system that facilitated the quantitative comparison of pectin films exposed to facial erosion. Pectin biodegradation was assessed using fluorescein tracer embedded in pectin, trypan blue quenching of released fluorescence, and highly sensitive microfluorimetry. The microfluidic perfusate, delivered through 6 um-pore synthetic membrane interface, demonstrated nonlinear erosion of the pectin film; 75% of tracer was released in 28 h. The microfluidics system was used to identify potential modifiers of pectin erosion. The polyphenolic compound tannic acid, loaded into citrus pectin films, demonstrated a dose-dependent decrease in pectin erosion. Tannic acid had no detectable impact on the physical properties of citrus pectin including adhesivity and cohesion. In contrast, tannic acid weakened the burst strength and cohesion of pectins derived from soy bean and potato sources. We conclude that facial erosion may explain the biostability of citrus pectin on visceral organ surfaces as well as provide a useful method for identifying modifiers of citrus pectin biodegradation. MDPI 2022-09-19 /pmc/articles/PMC9501333/ /pubmed/36146055 http://dx.doi.org/10.3390/polym14183911 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
Liao, Matthew W.
Liu, Betty S.
Sutlive, Joseph
Wagner, Willi L.
Khalil, Hassan A.
Chen, Zi
Ackermann, Maximilian
Mentzer, Steven J.
Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title_full Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title_fullStr Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title_full_unstemmed Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title_short Kinetics of Pectin Biopolymer Facial Erosion Characterized by Fluorescent Tracer Microfluidics
title_sort kinetics of pectin biopolymer facial erosion characterized by fluorescent tracer microfluidics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9501333/
https://www.ncbi.nlm.nih.gov/pubmed/36146055
http://dx.doi.org/10.3390/polym14183911
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