Decellularized skeletal muscle (dSkM) constructs have received much attention in recent years due to the versatility of their applications in vitro. In search of adequate in vitro models of the skeletal muscle tissue, the dSkM offers great advantages in terms of the preservation of native-tissue complexity, including three-dimensional organization, the presence of residual signaling molecules within the construct, and their myogenic and neurotrophic abilities. Here, we attempted to develop a 3D model of neuromuscular tissue. To do so, we repopulated rat dSkM with human primary myogenic cells along with murine fibroblasts and we coupled them with organotypic rat spinal cord samples. Such culture conditions not only maintained multiple cell type viability in a long-term experimental setup, but also resulted in functionally active construct capable of contraction. In addition, we have developed a customized culture system which enabled easy access, imaging, and analysis of in vitro engineered co-cultures. This work demonstrates the ability of dSkM to support the development of a contractile 3D in vitro model of neuromuscular tissue fit for long-term experimental evaluations.

Raffa, P., Easler, M., Cecchinato, F., Auletta, B., Scattolini, V., Perin, S., et al. (2021). Decellularized skeletal muscles support the generation of in vitro neuromuscular tissue models. APPLIED SCIENCES, 11(20), 9485 [10.3390/app11209485].

Decellularized skeletal muscles support the generation of in vitro neuromuscular tissue models

De Coppi P.;
2021-01-01

Abstract

Decellularized skeletal muscle (dSkM) constructs have received much attention in recent years due to the versatility of their applications in vitro. In search of adequate in vitro models of the skeletal muscle tissue, the dSkM offers great advantages in terms of the preservation of native-tissue complexity, including three-dimensional organization, the presence of residual signaling molecules within the construct, and their myogenic and neurotrophic abilities. Here, we attempted to develop a 3D model of neuromuscular tissue. To do so, we repopulated rat dSkM with human primary myogenic cells along with murine fibroblasts and we coupled them with organotypic rat spinal cord samples. Such culture conditions not only maintained multiple cell type viability in a long-term experimental setup, but also resulted in functionally active construct capable of contraction. In addition, we have developed a customized culture system which enabled easy access, imaging, and analysis of in vitro engineered co-cultures. This work demonstrates the ability of dSkM to support the development of a contractile 3D in vitro model of neuromuscular tissue fit for long-term experimental evaluations.
2021
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore BIOS-04/A - Anatomia, biologia cellulare e biologia dello sviluppo comparate
English
3D culture
Co-culture
Decellularized muscle
Neuromuscular model
Skeletal muscle
Spinal cord culture
Raffa, P., Easler, M., Cecchinato, F., Auletta, B., Scattolini, V., Perin, S., et al. (2021). Decellularized skeletal muscles support the generation of in vitro neuromuscular tissue models. APPLIED SCIENCES, 11(20), 9485 [10.3390/app11209485].
Raffa, P; Easler, M; Cecchinato, F; Auletta, B; Scattolini, V; Perin, S; Gerli, Mfm; Caccin, P; Elvassore, N; De Coppi, P; Urciuolo, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/417785
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