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Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential

Electrospun PLGA microfibers with adequate intrinsic physical features (fiber alignment and diameter) have been shown to boost teno-differentiation and may represent a promising solution for tendon tissue engineering. However, the hydrophobic properties of PLGA may be adjusted through specific treat...

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Autores principales: El Khatib, Mohammad, Mauro, Annunziata, Wyrwa, Ralf, Di Mattia, Miriam, Turriani, Maura, Di Giacinto, Oriana, Kretzschmar, Björn, Seemann, Thomas, Valbonetti, Luca, Berardinelli, Paolo, Schnabelrauch, Matthias, Barboni, Barbara, Russo, Valentina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396982/
https://www.ncbi.nlm.nih.gov/pubmed/32664582
http://dx.doi.org/10.3390/molecules25143176
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author El Khatib, Mohammad
Mauro, Annunziata
Wyrwa, Ralf
Di Mattia, Miriam
Turriani, Maura
Di Giacinto, Oriana
Kretzschmar, Björn
Seemann, Thomas
Valbonetti, Luca
Berardinelli, Paolo
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
author_facet El Khatib, Mohammad
Mauro, Annunziata
Wyrwa, Ralf
Di Mattia, Miriam
Turriani, Maura
Di Giacinto, Oriana
Kretzschmar, Björn
Seemann, Thomas
Valbonetti, Luca
Berardinelli, Paolo
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
author_sort El Khatib, Mohammad
collection PubMed
description Electrospun PLGA microfibers with adequate intrinsic physical features (fiber alignment and diameter) have been shown to boost teno-differentiation and may represent a promising solution for tendon tissue engineering. However, the hydrophobic properties of PLGA may be adjusted through specific treatments to improve cell biodisponibility. In this study, electrospun PLGA with highly aligned microfibers were cold atmospheric plasma (CAP)-treated by varying the treatment exposure time (30, 60, and 90 s) and the working distance (1.3 and 1.7 cm) and characterized by their physicochemical, mechanical and bioactive properties on ovine amniotic epithelial cells (oAECs). CAP improved the hydrophilic properties of the treated materials due to the incorporation of new oxygen polar functionalities on the microfibers’ surface especially when increasing treatment exposure time and lowering working distance. The mechanical properties, though, were affected by the treatment exposure time where the optimum performance was obtained after 60 s. Furthermore, CAP treatment did not alter oAECs’ biocompatibility and improved cell adhesion and infiltration onto the microfibers especially those treated from a distance of 1.3 cm. Moreover, teno-inductive potential of highly aligned PLGA electrospun microfibers was maintained. Indeed, cells cultured onto the untreated and CAP treated microfibers differentiated towards the tenogenic lineage expressing tenomodulin, a mature tendon marker, in their cytoplasm. In conclusion, CAP treatment on PLGA microfibers conducted at 1.3 cm working distance represent the optimum conditions to activate PLGA surface by improving their hydrophilicity and cell bio-responsiveness. Since for tendon tissue engineering purposes, both high cell adhesion and mechanical parameters are crucial, PLGA treated for 60 s at 1.3 cm was identified as the optimal construct.
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spelling pubmed-73969822020-08-05 Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential El Khatib, Mohammad Mauro, Annunziata Wyrwa, Ralf Di Mattia, Miriam Turriani, Maura Di Giacinto, Oriana Kretzschmar, Björn Seemann, Thomas Valbonetti, Luca Berardinelli, Paolo Schnabelrauch, Matthias Barboni, Barbara Russo, Valentina Molecules Article Electrospun PLGA microfibers with adequate intrinsic physical features (fiber alignment and diameter) have been shown to boost teno-differentiation and may represent a promising solution for tendon tissue engineering. However, the hydrophobic properties of PLGA may be adjusted through specific treatments to improve cell biodisponibility. In this study, electrospun PLGA with highly aligned microfibers were cold atmospheric plasma (CAP)-treated by varying the treatment exposure time (30, 60, and 90 s) and the working distance (1.3 and 1.7 cm) and characterized by their physicochemical, mechanical and bioactive properties on ovine amniotic epithelial cells (oAECs). CAP improved the hydrophilic properties of the treated materials due to the incorporation of new oxygen polar functionalities on the microfibers’ surface especially when increasing treatment exposure time and lowering working distance. The mechanical properties, though, were affected by the treatment exposure time where the optimum performance was obtained after 60 s. Furthermore, CAP treatment did not alter oAECs’ biocompatibility and improved cell adhesion and infiltration onto the microfibers especially those treated from a distance of 1.3 cm. Moreover, teno-inductive potential of highly aligned PLGA electrospun microfibers was maintained. Indeed, cells cultured onto the untreated and CAP treated microfibers differentiated towards the tenogenic lineage expressing tenomodulin, a mature tendon marker, in their cytoplasm. In conclusion, CAP treatment on PLGA microfibers conducted at 1.3 cm working distance represent the optimum conditions to activate PLGA surface by improving their hydrophilicity and cell bio-responsiveness. Since for tendon tissue engineering purposes, both high cell adhesion and mechanical parameters are crucial, PLGA treated for 60 s at 1.3 cm was identified as the optimal construct. MDPI 2020-07-11 /pmc/articles/PMC7396982/ /pubmed/32664582 http://dx.doi.org/10.3390/molecules25143176 Text en © 2020 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
El Khatib, Mohammad
Mauro, Annunziata
Wyrwa, Ralf
Di Mattia, Miriam
Turriani, Maura
Di Giacinto, Oriana
Kretzschmar, Björn
Seemann, Thomas
Valbonetti, Luca
Berardinelli, Paolo
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title_full Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title_fullStr Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title_full_unstemmed Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title_short Fabrication and Plasma Surface Activation of Aligned Electrospun PLGA Fiber Fleeces with Improved Adhesion and Infiltration of Amniotic Epithelial Stem Cells Maintaining their Teno-inductive Potential
title_sort fabrication and plasma surface activation of aligned electrospun plga fiber fleeces with improved adhesion and infiltration of amniotic epithelial stem cells maintaining their teno-inductive potential
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396982/
https://www.ncbi.nlm.nih.gov/pubmed/32664582
http://dx.doi.org/10.3390/molecules25143176
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