The taming of the cell: shape-memory nanopatterns direct cell orientation

Mitsuhiro Ebara, Koichiro Uto, Naokazu Idota, John M Hoffman, Takao AoyagiBiomaterials Unit, International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), Namiki, Tsukuba, JapanAbstract: We report here that the direction of aligned cells on nanop...

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Main Authors: Ebara M, Uto K, Idota N, Hoffman JM, Aoyagi T
Format: Article
Language:English
Published: Dove Medical Press 2014-05-01
Series:International Journal of Nanomedicine
Online Access:http://www.dovepress.com/the-taming-of-the-cell-shape-memory-nanopatterns-direct-cell-orientati-a16698
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spelling doaj-41f6b950dc14468cb98e987e921970232020-11-25T00:13:19ZengDove Medical PressInternational Journal of Nanomedicine1178-20132014-05-012014Supplement 111712616698The taming of the cell: shape-memory nanopatterns direct cell orientationEbara MUto KIdota NHoffman JMAoyagi T Mitsuhiro Ebara, Koichiro Uto, Naokazu Idota, John M Hoffman, Takao AoyagiBiomaterials Unit, International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), Namiki, Tsukuba, JapanAbstract: We report here that the direction of aligned cells on nanopatterns can be tuned to a perpendicular direction without use of any biochemical reagents. This was enabled by shape-memory activation of nanopatterns that transition from a memorized temporal pattern to the original permanent pattern by heating. The thermally induced shape-memory nanopatterns were prepared by chemically crosslinking semi-crystalline poly(ε-caprolactone) (PCL) in a mold to show shape-memory effects over its melting temperature (Tm = 33°C). Permanent surface patterns were first generated by crosslinking the PCL macromonomers in a mold, and temporary surface patterns were then embossed onto the permanent patterns. The temporary surface patterns could be easily triggered to transition quickly to the permanent surface patterns by a 37°C heat treatment, while surface wettability was independent of temperature. To investigate the role of dynamic and reversible surface nanopatterns on cell alignment on the PCL films before and after a topographic transition, NIH 3T3 fibroblasts were seeded on fibronectin-coated PCL films with a temporary grooved topography (grooves with a height of 300 nm and width of 2 µm were spaced 9 µm apart). Interestingly, cells did not change their direction immediately after the surface transition. However, cell alignment was gradually lost with time, and finally cells realigned parallel to the permanent grooves that emerged. The addition of a cytoskeletal inhibitor prevented realignment. These results clearly indicate that cells can sense dynamic changes in the surrounding environments and spontaneously adapt to a new environment by remodeling their cytoskeleton. These findings will serve as the basis for new development of spatiotemporal tunable materials to direct cell fate.Keywords: shape-memory surface, poly(ε-caprolactone), nanopatterns, temperature-responsive polymers, cell orientationhttp://www.dovepress.com/the-taming-of-the-cell-shape-memory-nanopatterns-direct-cell-orientati-a16698
collection DOAJ
language English
format Article
sources DOAJ
author Ebara M
Uto K
Idota N
Hoffman JM
Aoyagi T
spellingShingle Ebara M
Uto K
Idota N
Hoffman JM
Aoyagi T
The taming of the cell: shape-memory nanopatterns direct cell orientation
International Journal of Nanomedicine
author_facet Ebara M
Uto K
Idota N
Hoffman JM
Aoyagi T
author_sort Ebara M
title The taming of the cell: shape-memory nanopatterns direct cell orientation
title_short The taming of the cell: shape-memory nanopatterns direct cell orientation
title_full The taming of the cell: shape-memory nanopatterns direct cell orientation
title_fullStr The taming of the cell: shape-memory nanopatterns direct cell orientation
title_full_unstemmed The taming of the cell: shape-memory nanopatterns direct cell orientation
title_sort taming of the cell: shape-memory nanopatterns direct cell orientation
publisher Dove Medical Press
series International Journal of Nanomedicine
issn 1178-2013
publishDate 2014-05-01
description Mitsuhiro Ebara, Koichiro Uto, Naokazu Idota, John M Hoffman, Takao AoyagiBiomaterials Unit, International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), Namiki, Tsukuba, JapanAbstract: We report here that the direction of aligned cells on nanopatterns can be tuned to a perpendicular direction without use of any biochemical reagents. This was enabled by shape-memory activation of nanopatterns that transition from a memorized temporal pattern to the original permanent pattern by heating. The thermally induced shape-memory nanopatterns were prepared by chemically crosslinking semi-crystalline poly(ε-caprolactone) (PCL) in a mold to show shape-memory effects over its melting temperature (Tm = 33°C). Permanent surface patterns were first generated by crosslinking the PCL macromonomers in a mold, and temporary surface patterns were then embossed onto the permanent patterns. The temporary surface patterns could be easily triggered to transition quickly to the permanent surface patterns by a 37°C heat treatment, while surface wettability was independent of temperature. To investigate the role of dynamic and reversible surface nanopatterns on cell alignment on the PCL films before and after a topographic transition, NIH 3T3 fibroblasts were seeded on fibronectin-coated PCL films with a temporary grooved topography (grooves with a height of 300 nm and width of 2 µm were spaced 9 µm apart). Interestingly, cells did not change their direction immediately after the surface transition. However, cell alignment was gradually lost with time, and finally cells realigned parallel to the permanent grooves that emerged. The addition of a cytoskeletal inhibitor prevented realignment. These results clearly indicate that cells can sense dynamic changes in the surrounding environments and spontaneously adapt to a new environment by remodeling their cytoskeleton. These findings will serve as the basis for new development of spatiotemporal tunable materials to direct cell fate.Keywords: shape-memory surface, poly(ε-caprolactone), nanopatterns, temperature-responsive polymers, cell orientation
url http://www.dovepress.com/the-taming-of-the-cell-shape-memory-nanopatterns-direct-cell-orientati-a16698
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