The ability to control cell alignment represents a fundamental requirement toward the production of tissue in vitro but also to create biohybrid materials presenting the functional properties of human organs. However, cell cultures on standard commercial supports do not provide a selective control on the cell organization morphology, and different techniques, such as the use of patterned or stimulated substrates, are developed to induce cellular alignment. In this work, a new approach toward in vitro muscular tissue morphogenesis is presented exploiting liquid crystalline networks. By using smooth polymeric films with planar homogeneous alignment, a certain degree of cellular order is observed in myoblast cultures with direction of higher cell alignment corresponding to the nematic director. The molecular organization inside the polymer determines such effects since no cell organization is observed using homeotropic or isotropic samples. These findings represent the first example of cellular alignment induced by the interaction with a nematic polymeric scaffold, setting the stage for new applications of liquid crystal polymers as active matter to control tissue growth.

Liquid Crystal-Induced Myoblast Alignment

Martella Daniele;Parmeggiani Camilla
2019

Abstract

The ability to control cell alignment represents a fundamental requirement toward the production of tissue in vitro but also to create biohybrid materials presenting the functional properties of human organs. However, cell cultures on standard commercial supports do not provide a selective control on the cell organization morphology, and different techniques, such as the use of patterned or stimulated substrates, are developed to induce cellular alignment. In this work, a new approach toward in vitro muscular tissue morphogenesis is presented exploiting liquid crystalline networks. By using smooth polymeric films with planar homogeneous alignment, a certain degree of cellular order is observed in myoblast cultures with direction of higher cell alignment corresponding to the nematic director. The molecular organization inside the polymer determines such effects since no cell organization is observed using homeotropic or isotropic samples. These findings represent the first example of cellular alignment induced by the interaction with a nematic polymeric scaffold, setting the stage for new applications of liquid crystal polymers as active matter to control tissue growth.
2019
Istituto Nazionale di Ottica - INO
Inglese
8
3
1801489
1801489
10
http://www.scopus.com/inward/record.url?eid=2-s2.0-85059506361&partnerID=q2rCbXpz
Sì, ma tipo non specificato
biomaterials
cell alignment
liquid crystalline alignments
liquid crystalline network
muscular tissue engineering
CSGI is acknowledged for financially supporting the physical-chemical characterization activities. The research leading to these results has also received funding from Laserlab-EuropeEU-H2020 654148 and from Ente Cassa di Risparmio di Firenze (Grant No. 2015/0781), and Fondazione Telethon (Grant No. GGP16191).
9
info:eu-repo/semantics/article
262
Martella, Daniele; Pattelli, Lorenzo; Matassini, Camilla; Ridi, Francesca; Bonini, Massimo; Paoli, Paolo; Baglioni, Piero; Wiersma Diederik, S; Parmeg...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/382634
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