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A Silicone-based Stretchable Micropost Array Membrane for Monitoring Live-cell Subcellular Cytoskeletal Response

Overview
Journal Lab Chip
Specialties Biotechnology
Chemistry
Date 2011 Dec 24
PMID 22193351
Citations 51
Authors
Affiliations
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Abstract

External forces are increasingly recognized as major regulators of cellular structure and function, yet the underlying mechanism by which cells sense forces and transduce them into intracellular biochemical signals and behavioral responses ('mechanotransduction') is largely undetermined. To aid in the mechanistic study of mechanotransduction, herein we devised a cell stretching device that allowed for quantitative control and real-time measurement of mechanical stimuli and cellular biomechanical responses. Our strategy involved a microfabricated array of silicone elastomeric microposts integrated onto a stretchable elastomeric membrane. Using a computer-controlled vacuum, this micropost array membrane (mPAM) was activated to apply equibiaxial cell stretching forces to adherent cells attached to the microposts. Using the mPAM, we studied the live-cell subcellular dynamic responses of contractile forces in vascular smooth muscle cells (VSMCs) to a sustained static equibiaxial cell stretch. Our data showed that in response to a sustained cell stretch, VSMCs regulated their cytoskeletal (CSK) contractility in a biphasic manner: they first acutely enhanced their contraction to resist rapid cell deformation ('stiffening') before they allowed slow adaptive inelastic CSK reorganization to release their contractility ('softening'). The contractile response across entire single VSMCs was spatially inhomogeneous and force-dependent. Our mPAM device and live-cell subcellular contractile measurements will help elucidate the mechanotransductive system in VSMCs and thus contribute to our understanding of pressure-induced vascular disease processes.

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References
1.
Brown T . Techniques for mechanical stimulation of cells in vitro: a review. J Biomech. 1999; 33(1):3-14. DOI: 10.1016/s0021-9290(99)00177-3. View

2.
Matthews B, Overby D, Mannix R, Ingber D . Cellular adaptation to mechanical stress: role of integrins, Rho, cytoskeletal tension and mechanosensitive ion channels. J Cell Sci. 2006; 119(Pt 3):508-18. DOI: 10.1242/jcs.02760. View

3.
Riveline D, Zamir E, Balaban N, Schwarz U, Ishizaki T, Narumiya S . Focal contacts as mechanosensors: externally applied local mechanical force induces growth of focal contacts by an mDia1-dependent and ROCK-independent mechanism. J Cell Biol. 2001; 153(6):1175-86. PMC: 2192034. DOI: 10.1083/jcb.153.6.1175. View

4.
Gilbert P, Havenstrite K, Magnusson K, Sacco A, Leonardi N, Kraft P . Substrate elasticity regulates skeletal muscle stem cell self-renewal in culture. Science. 2010; 329(5995):1078-81. PMC: 2929271. DOI: 10.1126/science.1191035. View

5.
Lee R, Sandow S, Demey J . Vascular remodeling arterioles: plasticity of the vessel wall. Physiology (Bethesda). 2009; 24:271-2. DOI: 10.1152/physiol.00027.2009. View