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Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties

[Image: see text] The ability of mimicking the extracellular matrix architecture has gained electrospun scaffolds a prominent space into the tissue engineering field. The high surface-to-volume aspect ratio of nanofibers increases their bioactivity while enhancing the bonding strength with the host...

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Autores principales: de Deus, Wevernilson F., de França, Bruna M., Forero, Josué Sebastian B., Granato, Alessandro E. C., Ulrich, Henning, Dória, Anelise C. O. C., Amaral, Marcello M., Slabon, Adam, Rodrigues, Bruno V. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8289194/
https://www.ncbi.nlm.nih.gov/pubmed/34024099
http://dx.doi.org/10.1021/acsami.1c05034
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author de Deus, Wevernilson F.
de França, Bruna M.
Forero, Josué Sebastian B.
Granato, Alessandro E. C.
Ulrich, Henning
Dória, Anelise C. O. C.
Amaral, Marcello M.
Slabon, Adam
Rodrigues, Bruno V. M.
author_facet de Deus, Wevernilson F.
de França, Bruna M.
Forero, Josué Sebastian B.
Granato, Alessandro E. C.
Ulrich, Henning
Dória, Anelise C. O. C.
Amaral, Marcello M.
Slabon, Adam
Rodrigues, Bruno V. M.
author_sort de Deus, Wevernilson F.
collection PubMed
description [Image: see text] The ability of mimicking the extracellular matrix architecture has gained electrospun scaffolds a prominent space into the tissue engineering field. The high surface-to-volume aspect ratio of nanofibers increases their bioactivity while enhancing the bonding strength with the host tissue. Over the years, numerous polyesters, such as poly(lactic acid) (PLA), have been consolidated as excellent matrices for biomedical applications. However, this class of polymers usually has a high hydrophobic character, which limits cell attachment and proliferation, and therefore decreases biological interactions. In this way, functionalization of polyester-based materials is often performed in order to modify their interfacial free energy and achieve more hydrophilic surfaces. Herein, we report the preparation, characterization, and in vitro assessment of electrospun PLA fibers with low contents (0.1 wt %) of different curcuminoids featuring π-conjugated systems, and a central β-diketone unit, including curcumin itself. We evaluated the potential of these materials for photochemical and biomedical purposes. For this, we investigated their optical properties, water contact angle, and surface features while assessing their in vitro behavior using SH-SY5Y cells. Our results demonstrate the successful generation of homogeneous and defect-free fluorescent fibers, which are noncytotoxic, exhibit enhanced hydrophilicity, and as such greater cell adhesion and proliferation toward neuroblastoma cells. The unexpected tailoring of the scaffolds’ interfacial free energy has been associated with the strong interactions between the PLA hydrophobic sites and the nonpolar groups from curcuminoids, which indicate its role for releasing hydrophilic sites from both parts. This investigation reveals a straightforward approach to produce photoluminescent 3D-scaffolds with enhanced biological properties by using a polymer that is essentially hydrophobic combined with the low contents of photoactive and multifunctional curcuminoids
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spelling pubmed-82891942021-07-20 Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties de Deus, Wevernilson F. de França, Bruna M. Forero, Josué Sebastian B. Granato, Alessandro E. C. Ulrich, Henning Dória, Anelise C. O. C. Amaral, Marcello M. Slabon, Adam Rodrigues, Bruno V. M. ACS Appl Mater Interfaces [Image: see text] The ability of mimicking the extracellular matrix architecture has gained electrospun scaffolds a prominent space into the tissue engineering field. The high surface-to-volume aspect ratio of nanofibers increases their bioactivity while enhancing the bonding strength with the host tissue. Over the years, numerous polyesters, such as poly(lactic acid) (PLA), have been consolidated as excellent matrices for biomedical applications. However, this class of polymers usually has a high hydrophobic character, which limits cell attachment and proliferation, and therefore decreases biological interactions. In this way, functionalization of polyester-based materials is often performed in order to modify their interfacial free energy and achieve more hydrophilic surfaces. Herein, we report the preparation, characterization, and in vitro assessment of electrospun PLA fibers with low contents (0.1 wt %) of different curcuminoids featuring π-conjugated systems, and a central β-diketone unit, including curcumin itself. We evaluated the potential of these materials for photochemical and biomedical purposes. For this, we investigated their optical properties, water contact angle, and surface features while assessing their in vitro behavior using SH-SY5Y cells. Our results demonstrate the successful generation of homogeneous and defect-free fluorescent fibers, which are noncytotoxic, exhibit enhanced hydrophilicity, and as such greater cell adhesion and proliferation toward neuroblastoma cells. The unexpected tailoring of the scaffolds’ interfacial free energy has been associated with the strong interactions between the PLA hydrophobic sites and the nonpolar groups from curcuminoids, which indicate its role for releasing hydrophilic sites from both parts. This investigation reveals a straightforward approach to produce photoluminescent 3D-scaffolds with enhanced biological properties by using a polymer that is essentially hydrophobic combined with the low contents of photoactive and multifunctional curcuminoids American Chemical Society 2021-05-24 2021-06-02 /pmc/articles/PMC8289194/ /pubmed/34024099 http://dx.doi.org/10.1021/acsami.1c05034 Text en © 2021 The Authors. Published by American Chemical Society Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle de Deus, Wevernilson F.
de França, Bruna M.
Forero, Josué Sebastian B.
Granato, Alessandro E. C.
Ulrich, Henning
Dória, Anelise C. O. C.
Amaral, Marcello M.
Slabon, Adam
Rodrigues, Bruno V. M.
Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title_full Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title_fullStr Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title_full_unstemmed Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title_short Curcuminoid-Tailored Interfacial Free Energy of Hydrophobic Fibers for Enhanced Biological Properties
title_sort curcuminoid-tailored interfacial free energy of hydrophobic fibers for enhanced biological properties
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8289194/
https://www.ncbi.nlm.nih.gov/pubmed/34024099
http://dx.doi.org/10.1021/acsami.1c05034
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