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Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells

Injured tendons are challenging in their regeneration; thus, tissue engineering represents a promising solution. This research tests the hypothesis that the response of amniotic epithelial stem cells (AECs) can be modulated by fiber diameter size of tendon biomimetic fleeces. Particularly, the effec...

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Autores principales: El Khatib, Mohammad, Mauro, Annunziata, Di Mattia, Miriam, Wyrwa, Ralf, Schweder, Martina, Ancora, Massimo, Lazzaro, Francesco, Berardinelli, Paolo, Valbonetti, Luca, Di Giacinto, Oriana, Polci, Andrea, Cammà, Cesare, 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/PMC7290802/
https://www.ncbi.nlm.nih.gov/pubmed/32413998
http://dx.doi.org/10.3390/cells9051207
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author El Khatib, Mohammad
Mauro, Annunziata
Di Mattia, Miriam
Wyrwa, Ralf
Schweder, Martina
Ancora, Massimo
Lazzaro, Francesco
Berardinelli, Paolo
Valbonetti, Luca
Di Giacinto, Oriana
Polci, Andrea
Cammà, Cesare
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
author_facet El Khatib, Mohammad
Mauro, Annunziata
Di Mattia, Miriam
Wyrwa, Ralf
Schweder, Martina
Ancora, Massimo
Lazzaro, Francesco
Berardinelli, Paolo
Valbonetti, Luca
Di Giacinto, Oriana
Polci, Andrea
Cammà, Cesare
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
author_sort El Khatib, Mohammad
collection PubMed
description Injured tendons are challenging in their regeneration; thus, tissue engineering represents a promising solution. This research tests the hypothesis that the response of amniotic epithelial stem cells (AECs) can be modulated by fiber diameter size of tendon biomimetic fleeces. Particularly, the effect of electrospun poly(lactide-co-glycolide) (PLGA) fleeces with highly aligned microfibers possessing two different diameter sizes (1.27 and 2.5 µm: ha1- and ha2-PLGA, respectively) was tested on the ability of AECs to differentiate towards the tenogenic lineage by analyzing tendon related markers (Collagen type I: COL1 protein and mRNA Scleraxis: SCX, Tenomodulin: TNMD and COL1 gene expressions) and to modulate their immunomodulatory properties by investigating the pro- (IL-6 and IL-12) and anti- (IL-4 and IL-10) inflammatory cytokines. It was observed that fiber alignment and not fiber size influenced cell morphology determining the morphological change of AECs from cuboidal to fusiform tenocyte-like shape. Instead, fleece mechanical properties, cell proliferation, tenogenic differentiation, and immunomodulation were regulated by changing the ha-PLGA microfiber diameter size. Specifically, higher DNA quantity and better penetration within the fleece were found on ha2-PLGA, while ha1-PLGA fleeces with small fiber diameter size had better mechanical features and were more effective on AECs trans-differentiation towards the tenogenic lineage by significantly translating more efficiently SCX into the downstream effector TNMD. Moreover, the fiber diameter of 1.27 µm induced higher expression of pro-regenerative, anti-inflammatory interleukins mRNA expression (IL-4 and IL-10) with favorable IL-12/IL-10 ratio with respect to the fiber diameter of 2.5 µm. The obtained results demonstrate that fiber diameter is a key factor to be considered when designing tendon biomimetic fleece for tissue repair and provide new insights into the importance of controlling matrix parameters in enhancing cell differentiation and immunomodulation either for the cells functionalized within or for the transplanted host tissue.
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spelling pubmed-72908022020-06-17 Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells El Khatib, Mohammad Mauro, Annunziata Di Mattia, Miriam Wyrwa, Ralf Schweder, Martina Ancora, Massimo Lazzaro, Francesco Berardinelli, Paolo Valbonetti, Luca Di Giacinto, Oriana Polci, Andrea Cammà, Cesare Schnabelrauch, Matthias Barboni, Barbara Russo, Valentina Cells Article Injured tendons are challenging in their regeneration; thus, tissue engineering represents a promising solution. This research tests the hypothesis that the response of amniotic epithelial stem cells (AECs) can be modulated by fiber diameter size of tendon biomimetic fleeces. Particularly, the effect of electrospun poly(lactide-co-glycolide) (PLGA) fleeces with highly aligned microfibers possessing two different diameter sizes (1.27 and 2.5 µm: ha1- and ha2-PLGA, respectively) was tested on the ability of AECs to differentiate towards the tenogenic lineage by analyzing tendon related markers (Collagen type I: COL1 protein and mRNA Scleraxis: SCX, Tenomodulin: TNMD and COL1 gene expressions) and to modulate their immunomodulatory properties by investigating the pro- (IL-6 and IL-12) and anti- (IL-4 and IL-10) inflammatory cytokines. It was observed that fiber alignment and not fiber size influenced cell morphology determining the morphological change of AECs from cuboidal to fusiform tenocyte-like shape. Instead, fleece mechanical properties, cell proliferation, tenogenic differentiation, and immunomodulation were regulated by changing the ha-PLGA microfiber diameter size. Specifically, higher DNA quantity and better penetration within the fleece were found on ha2-PLGA, while ha1-PLGA fleeces with small fiber diameter size had better mechanical features and were more effective on AECs trans-differentiation towards the tenogenic lineage by significantly translating more efficiently SCX into the downstream effector TNMD. Moreover, the fiber diameter of 1.27 µm induced higher expression of pro-regenerative, anti-inflammatory interleukins mRNA expression (IL-4 and IL-10) with favorable IL-12/IL-10 ratio with respect to the fiber diameter of 2.5 µm. The obtained results demonstrate that fiber diameter is a key factor to be considered when designing tendon biomimetic fleece for tissue repair and provide new insights into the importance of controlling matrix parameters in enhancing cell differentiation and immunomodulation either for the cells functionalized within or for the transplanted host tissue. MDPI 2020-05-13 /pmc/articles/PMC7290802/ /pubmed/32413998 http://dx.doi.org/10.3390/cells9051207 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
Di Mattia, Miriam
Wyrwa, Ralf
Schweder, Martina
Ancora, Massimo
Lazzaro, Francesco
Berardinelli, Paolo
Valbonetti, Luca
Di Giacinto, Oriana
Polci, Andrea
Cammà, Cesare
Schnabelrauch, Matthias
Barboni, Barbara
Russo, Valentina
Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title_full Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title_fullStr Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title_full_unstemmed Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title_short Electrospun PLGA Fiber Diameter and Alignment of Tendon Biomimetic Fleece Potentiate Tenogenic Differentiation and Immunomodulatory Function of Amniotic Epithelial Stem Cells
title_sort electrospun plga fiber diameter and alignment of tendon biomimetic fleece potentiate tenogenic differentiation and immunomodulatory function of amniotic epithelial stem cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7290802/
https://www.ncbi.nlm.nih.gov/pubmed/32413998
http://dx.doi.org/10.3390/cells9051207
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