: In this work, we present an innovative, high-throughput rotary wet-spinning biofabrication method for manufacturing cellularized constructs composed of highly-aligned hydrogel fibers. The platform is supported by an innovative microfluidic printing head (MPH) bearing a crosslinking bath microtank with a co-axial nozzle placed at the bottom of it for the immediate gelation of extruded core/shell fibers. After a thorough characterization and optimization of the new MPH and the fiber deposition parameters, we demonstrate the suitability of the proposed system for thein vitroengineering of functional myo-substitutes. The samples produced through the described approach were first characterizedin vitroand then used as a substrate to ascertain the effects of electro-mechanical stimulation on myogenic maturation. Of note, we found a characteristic gene expression modulation of fast (MyH1), intermediate (MyH2), and slow (MyH7) twitching myosin heavy chain isoforms, depending on the applied stimulation protocol. This feature should be further investigated in the future to biofabricate engineered myo-substitutes with specific functionalities.

Combining rotary wet-spinning biofabrication and electro-mechanical stimulation for thein vitroproduction of functional myo-substitutes / Celikkin, Nehar; Presutti, Dario; Maiullari, Fabio; Volpi, Marina; Promovych, Yurii; Gizynski, Konrad; Dolinska, Joanna; Wiśniewska, Agnieszka; Opałło, Marcin; Paradiso, Alessia; Rinoldi, Chiara; Fuoco, Claudia; Swieszkowski, Wojciech; Bearzi, Claudia; Rizzi, Roberto; Gargioli, Cesare; Costantini, Marco. - In: BIOFABRICATION. - ISSN 1758-5082. - 15:4(2023). [10.1088/1758-5090/ace934]

Combining rotary wet-spinning biofabrication and electro-mechanical stimulation for thein vitroproduction of functional myo-substitutes

Rizzi, Roberto;
2023

Abstract

: In this work, we present an innovative, high-throughput rotary wet-spinning biofabrication method for manufacturing cellularized constructs composed of highly-aligned hydrogel fibers. The platform is supported by an innovative microfluidic printing head (MPH) bearing a crosslinking bath microtank with a co-axial nozzle placed at the bottom of it for the immediate gelation of extruded core/shell fibers. After a thorough characterization and optimization of the new MPH and the fiber deposition parameters, we demonstrate the suitability of the proposed system for thein vitroengineering of functional myo-substitutes. The samples produced through the described approach were first characterizedin vitroand then used as a substrate to ascertain the effects of electro-mechanical stimulation on myogenic maturation. Of note, we found a characteristic gene expression modulation of fast (MyH1), intermediate (MyH2), and slow (MyH7) twitching myosin heavy chain isoforms, depending on the applied stimulation protocol. This feature should be further investigated in the future to biofabricate engineered myo-substitutes with specific functionalities.
2023
3D bioprinting; bioreactor; electrical stimulation; mechanical stimulation; skeletal muscle tissue engineering
01 Pubblicazione su rivista::01a Articolo in rivista
Combining rotary wet-spinning biofabrication and electro-mechanical stimulation for thein vitroproduction of functional myo-substitutes / Celikkin, Nehar; Presutti, Dario; Maiullari, Fabio; Volpi, Marina; Promovych, Yurii; Gizynski, Konrad; Dolinska, Joanna; Wiśniewska, Agnieszka; Opałło, Marcin; Paradiso, Alessia; Rinoldi, Chiara; Fuoco, Claudia; Swieszkowski, Wojciech; Bearzi, Claudia; Rizzi, Roberto; Gargioli, Cesare; Costantini, Marco. - In: BIOFABRICATION. - ISSN 1758-5082. - 15:4(2023). [10.1088/1758-5090/ace934]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1686186
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