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Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes

AIM: The aim of the present work was to develop biodegradable alginate (ALG)-containing fibrous membranes intended for tissue repair, acting as both drug delivery systems and cell growth guidance. METHODS: Membranes were prepared by electrospinning. Since ALG can be electrospun only when blended wit...

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Autores principales: Vigani, Barbara, Rossi, Silvia, Sandri, Giuseppina, Bonferoni, Maria Cristina, Milanesi, Giulia, Bruni, Giovanna, Ferrari, Franca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6198875/
https://www.ncbi.nlm.nih.gov/pubmed/30410337
http://dx.doi.org/10.2147/IJN.S175069
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author Vigani, Barbara
Rossi, Silvia
Sandri, Giuseppina
Bonferoni, Maria Cristina
Milanesi, Giulia
Bruni, Giovanna
Ferrari, Franca
author_facet Vigani, Barbara
Rossi, Silvia
Sandri, Giuseppina
Bonferoni, Maria Cristina
Milanesi, Giulia
Bruni, Giovanna
Ferrari, Franca
author_sort Vigani, Barbara
collection PubMed
description AIM: The aim of the present work was to develop biodegradable alginate (ALG)-containing fibrous membranes intended for tissue repair, acting as both drug delivery systems and cell growth guidance. METHODS: Membranes were prepared by electrospinning. Since ALG can be electrospun only when blended with other spinnable polymers, dextran (DEX) and polyethylene oxide (PEO) were investigated as process adjuvants. ALG/DEX mixtures, characterized by different rheological and conductivity properties, were prepared in phosphate buffer or deionized water; surfactants were added to modulate polymer solution surface tension. The Design of Experiments (DoE) approach (full factorial design) was used to investigate the role of polymer solution features (rheological properties, surface tension, and conductivity) on electrospun fiber morphology. A high viscosity at 1,000 s(−1) (1.3–1.9 Pa.s) or a high pseudoplasticity index (≥1.7), combined with a low surface tension (30–32 mN/m) and a low conductivity (800–1,000 μS/cm), was responsible for the production of ALG/DEX homogeneous fibers. Such ranges were successfully employed for the preparation of ALG-containing fibers, using PEO, instead of DEX, as process adjuvant. ALG/DEX and ALG/PEO fibers were subsequently subjected to cross-linking/coating processes to make them slowly biodegradable in aqueous medium. In particular, ALG/PEO fibers were cross-linked and coated with CaCl(2)/chitosan solutions in water/ethanol mixtures. Due to DEX high content, ALG/DEX fibers were soaked in a polylactide-co-glycolide (PLGA) solution in ethyl acetate. RESULTS: Both cross-linking and coating processes made fibers insoluble in physiological medium and produced an increase in their mechanical resistance, assessed by means of a tensile test. PLGA-coated ALG/DEX and chitosan-coated ALG/PEO fibers were biocompatible and able to support fibroblast adhesion. CONCLUSION: The DoE approach allowed to draw up guidelines useful for the preparation of homogeneous fibers, starting from mixtures of ALG and non-ionic polymers. Such fibers, upon coating, resulted to be good cell substrates, allowing cell adhesion and growth.
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spelling pubmed-61988752018-11-08 Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes Vigani, Barbara Rossi, Silvia Sandri, Giuseppina Bonferoni, Maria Cristina Milanesi, Giulia Bruni, Giovanna Ferrari, Franca Int J Nanomedicine Original Research AIM: The aim of the present work was to develop biodegradable alginate (ALG)-containing fibrous membranes intended for tissue repair, acting as both drug delivery systems and cell growth guidance. METHODS: Membranes were prepared by electrospinning. Since ALG can be electrospun only when blended with other spinnable polymers, dextran (DEX) and polyethylene oxide (PEO) were investigated as process adjuvants. ALG/DEX mixtures, characterized by different rheological and conductivity properties, were prepared in phosphate buffer or deionized water; surfactants were added to modulate polymer solution surface tension. The Design of Experiments (DoE) approach (full factorial design) was used to investigate the role of polymer solution features (rheological properties, surface tension, and conductivity) on electrospun fiber morphology. A high viscosity at 1,000 s(−1) (1.3–1.9 Pa.s) or a high pseudoplasticity index (≥1.7), combined with a low surface tension (30–32 mN/m) and a low conductivity (800–1,000 μS/cm), was responsible for the production of ALG/DEX homogeneous fibers. Such ranges were successfully employed for the preparation of ALG-containing fibers, using PEO, instead of DEX, as process adjuvant. ALG/DEX and ALG/PEO fibers were subsequently subjected to cross-linking/coating processes to make them slowly biodegradable in aqueous medium. In particular, ALG/PEO fibers were cross-linked and coated with CaCl(2)/chitosan solutions in water/ethanol mixtures. Due to DEX high content, ALG/DEX fibers were soaked in a polylactide-co-glycolide (PLGA) solution in ethyl acetate. RESULTS: Both cross-linking and coating processes made fibers insoluble in physiological medium and produced an increase in their mechanical resistance, assessed by means of a tensile test. PLGA-coated ALG/DEX and chitosan-coated ALG/PEO fibers were biocompatible and able to support fibroblast adhesion. CONCLUSION: The DoE approach allowed to draw up guidelines useful for the preparation of homogeneous fibers, starting from mixtures of ALG and non-ionic polymers. Such fibers, upon coating, resulted to be good cell substrates, allowing cell adhesion and growth. Dove Medical Press 2018-10-17 /pmc/articles/PMC6198875/ /pubmed/30410337 http://dx.doi.org/10.2147/IJN.S175069 Text en © 2018 Vigani et al. This work is published and licensed by Dove Medical Press Limited The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Vigani, Barbara
Rossi, Silvia
Sandri, Giuseppina
Bonferoni, Maria Cristina
Milanesi, Giulia
Bruni, Giovanna
Ferrari, Franca
Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title_full Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title_fullStr Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title_full_unstemmed Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title_short Coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
title_sort coated electrospun alginate-containing fibers as novel delivery systems for regenerative purposes
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6198875/
https://www.ncbi.nlm.nih.gov/pubmed/30410337
http://dx.doi.org/10.2147/IJN.S175069
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