Journal of Visualized Experiments · 2015 · 52 citations · 31 references
Currently, most of the in vitro cell research is performed on rigid tissue culture polystyrene (~1 GPa), while most cells in the body are attached to a matrix that is elastic and much softer (0.1-100 kPa). Since such stiffness mismatch greatly affects cell responses, there is a strong interest in developing hydrogel materials that span a wide range of stiffness to serve as cell substrates. Polyacrylamide gels, which are inexpensive and cover the stiffness range of all soft tissues in the body, are the hydrogel of choice for many research groups. However, polyacrylamide gel preparation is lengthy, tedious, and only suitable for small batches. Here, we describe an assay which by utilizing a permanent flexible plastic film as a structural support for the gels, enables the preparation of polyacrylamide gels in a multiwell plate format. The technique is faster, more efficient, and less costly than current methods and permits the preparation of gels of custom sizes not otherwise available. As it doesn't require any specialized equipment, the method could be easily adopted by any research laboratory and would be particularly useful in research focused on understanding stiffness-dependent cell responses.
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Matrix Elasticity Directs Stem Cell Lineage Specification
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Cell Movement Is Guided by the Rigidity of the Substrate
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Pattern Formation, Intracellular Transport, Cell Movement Is +12
Mechanical regulation of cell function with geometrically modulated elastomeric substrates
Jianping Fu, Yang-Kao Wang, Michael T. Yang et al. · Nature Methods · 2010 · 1.1K citations · Full text