TY - JOUR
T1 - Adhesion and proliferation of skeletal muscle cells on single layer poly(lactic acid) ultra-thin films
AU - Ricotti, Leonardo
AU - Taccola, Silvia
AU - Pensabene, Virginia
AU - Mattoli, Virgilio
AU - Fujie, Toshinori
AU - Takeoka, Shinji
AU - Menciassi, Arianna
AU - Dario, Paolo
N1 - Copyright:
Copyright 2011 Elsevier B.V., All rights reserved.
PY - 2010/10
Y1 - 2010/10
N2 - An increasing interest in bio-hybrid systems and cell-material interactions is evident in the last years. This leads towards the development of new nano-structured devices and the assessment of their biocompatibility. In the present study, the development of free-standing single layer poly(lactic acid) (PLA) ultra-thin films is described, together with the analysis of topography and roughness properties. The biocompatibility of the PLA films has been tested in vitro, by seeding C2C12 skeletal muscle cells, and thus assessing cells shape, density and viability after 24, 48 and 72 h. The results show that free-standing flexible PLA nanofilms represent a good matrix for C2C12 cells adhesion, spreading and proliferation. Early differentiation into myotubes is also allowed. The biocompatibility of the novel ultra-thin films as substrates for cell growth promotes their application in the fields of regenerative medicine, muscle tissue engineering, drug delivery, and-in general- in the field of bio-hybrid devices.
AB - An increasing interest in bio-hybrid systems and cell-material interactions is evident in the last years. This leads towards the development of new nano-structured devices and the assessment of their biocompatibility. In the present study, the development of free-standing single layer poly(lactic acid) (PLA) ultra-thin films is described, together with the analysis of topography and roughness properties. The biocompatibility of the PLA films has been tested in vitro, by seeding C2C12 skeletal muscle cells, and thus assessing cells shape, density and viability after 24, 48 and 72 h. The results show that free-standing flexible PLA nanofilms represent a good matrix for C2C12 cells adhesion, spreading and proliferation. Early differentiation into myotubes is also allowed. The biocompatibility of the novel ultra-thin films as substrates for cell growth promotes their application in the fields of regenerative medicine, muscle tissue engineering, drug delivery, and-in general- in the field of bio-hybrid devices.
KW - Bio-hybrid devices
KW - Biocompatibility
KW - C2C12
KW - Nanofilms
KW - Poly(lactic acid)
KW - Skeletal muscle cells
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U2 - 10.1007/s10544-010-9435-0
DO - 10.1007/s10544-010-9435-0
M3 - Article
C2 - 20552402
AN - SCOPUS:78049248887
SN - 1387-2176
VL - 12
SP - 809
EP - 819
JO - Biomedical Microdevices
JF - Biomedical Microdevices
IS - 5
ER -