Mesoangioblasts are outstanding candidates for stem-cell therapy and are already being explored in clinical trials. However, a crucial challenge in regenerative medicine is the limited availability of undifferentiated myogenic progenitor cells because growth is typically accompanied by differentiation. Here reversible myogenic-differentiation switching during proliferation is achieved by functionalizing the glass substrate with high-density ZnO nanowires (NWs). Specifically, mesoangioblasts grown on ZnO NWs present a spherical viable undifferentiated cell state without lamellopodia formation during the entire observation time (8 days). Consistently, the myosin heavy chain, typically expressed in skeletal muscle tissue and differentiated myogenic progenitors, is completely absent. Remarkably, NWs do not induce any damage while they reversibly block differentiation, so that the differentiation capabilities are completely recovered upon cell removal from the NW-functionalized substrate and replating on standard culture glass. This is the first evidence of a reversible myogenic-differentiation switch that does not affect the viability. These results can be the first step toward for the in vitro growth of a large number of undifferentiated stem/progenitor cells and therefore can represent a breakthrough for cell-based therapy and tissue engineering.

Errico, V., Arrabito, G., Fornetti, E., Fuoco, C., Testa, S., Saggio, G., et al. (2018). High-Density ZnO Nanowires as a Reversible Myogenic-Differentiation Switch. ACS APPLIED MATERIALS & INTERFACES, 10(16), 14097-14107 [10.1021/acsami.7b19758].

High-Density ZnO Nanowires as a Reversible Myogenic-Differentiation Switch

Fuoco C.;Testa S.
Membro del Collaboration Group
;
Saggio G.
Formal Analysis
;
Rufini S.
Membro del Collaboration Group
;
Cannata S.
Conceptualization
;
Desideri A.
Validation
;
Falconi C.
Conceptualization
;
Gargioli C.
Membro del Collaboration Group
2018-01-01

Abstract

Mesoangioblasts are outstanding candidates for stem-cell therapy and are already being explored in clinical trials. However, a crucial challenge in regenerative medicine is the limited availability of undifferentiated myogenic progenitor cells because growth is typically accompanied by differentiation. Here reversible myogenic-differentiation switching during proliferation is achieved by functionalizing the glass substrate with high-density ZnO nanowires (NWs). Specifically, mesoangioblasts grown on ZnO NWs present a spherical viable undifferentiated cell state without lamellopodia formation during the entire observation time (8 days). Consistently, the myosin heavy chain, typically expressed in skeletal muscle tissue and differentiated myogenic progenitors, is completely absent. Remarkably, NWs do not induce any damage while they reversibly block differentiation, so that the differentiation capabilities are completely recovered upon cell removal from the NW-functionalized substrate and replating on standard culture glass. This is the first evidence of a reversible myogenic-differentiation switch that does not affect the viability. These results can be the first step toward for the in vitro growth of a large number of undifferentiated stem/progenitor cells and therefore can represent a breakthrough for cell-based therapy and tissue engineering.
2018
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore BIO/09 - FISIOLOGIA
English
Con Impact Factor ISI
ZnO nanowires; mesoangioblasts; muscle differentiation; tissue engineering
Errico, V., Arrabito, G., Fornetti, E., Fuoco, C., Testa, S., Saggio, G., et al. (2018). High-Density ZnO Nanowires as a Reversible Myogenic-Differentiation Switch. ACS APPLIED MATERIALS & INTERFACES, 10(16), 14097-14107 [10.1021/acsami.7b19758].
Errico, V; Arrabito, G; Fornetti, E; Fuoco, C; Testa, S; Saggio, G; Rufini, S; Cannata, S; Desideri, A; Falconi, C; Gargioli, C
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/205582
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