Literature DB >> 23733484

One-dimensional patterning of cells in silicone wells via compression-induced fracture.

Angela R Dixon1, Christopher Moraes, Marie E Csete, M D Thouless, Martin A Philbert, Shuichi Takayama.   

Abstract

We have adapted our existing compression-induced fracture technology to cell culture studies by generating linear patterns on a complex cell culture well structure rather than on simple solid constructs. We present a simple method to create one-dimensional (1D), submicron, and linear patterns of extracellular matrix on a multilayer silicone material. We identified critical design parameters necessary to optimize compression-induced fracture patterning on the wells, and applied stresses using compression Hoffman clamps. Finite-element analyses show that the incorporation of the well improves stress homogeneity (stress variation = 25%), and, thus, crack uniformity over the patterned region. Notably, a shallow well with a thick base (vs. deeper wells with thinner bases) reduces out-of-plane deflections by greater than a sixth in the cell culture region, improving clarity for optical imaging. The comparison of cellular and nuclear shape indices of a neuroblast line cultured on patterned 1D lines and unpatterned 2D surfaces reveals significant differences in cellular morphology, which could impact many cellular functions. Because 1D cell cultures recapitulate many important phenotypical traits of 3D cell cultures, our culture system offers a simple means to further study the relationship between 1D and 3D cell culture environments, without demanding expensive engineering techniques and expertise.
Copyright © 2013 Wiley Periodicals, Inc.

Entities:  

Keywords:  biomaterial design; compression; fracture; patterning; polydimethyl siloxane

Mesh:

Substances:

Year:  2013        PMID: 23733484      PMCID: PMC3912204          DOI: 10.1002/jbm.a.34814

Source DB:  PubMed          Journal:  J Biomed Mater Res A        ISSN: 1549-3296            Impact factor:   4.396


  42 in total

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Review 4.  Nuclear shape, mechanics, and mechanotransduction.

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9.  Harnessing traction-mediated manipulation of the cell/matrix interface to control stem-cell fate.

Authors:  Nathaniel Huebsch; Praveen R Arany; Angelo S Mao; Dmitry Shvartsman; Omar A Ali; Sidi A Bencherif; José Rivera-Feliciano; David J Mooney
Journal:  Nat Mater       Date:  2010-04-25       Impact factor: 43.841

10.  Cytoskeletal control of fibroblast length: experiments with linear strips of substrate.

Authors:  E M Levina; M A Kharitonova; Y A Rovensky; J M Vasiliev
Journal:  J Cell Sci       Date:  2001-12       Impact factor: 5.285

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  2 in total

1.  The Collapse and Expansion of Liquid-Filled Elastic Channels and Cracks.

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Journal:  J Appl Mech       Date:  2015-07-22       Impact factor: 2.168

2.  Defined topologically-complex protein matrices to manipulate cell shape via three-dimensional fiber-like patterns.

Authors:  Christopher Moraes; Byoung Choul Kim; Xiaoyue Zhu; Kristen L Mills; Angela R Dixon; M D Thouless; Shuichi Takayama
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  2 in total

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