Abstract

We describe a three-dimensional magnetic twisting device that is useful in characterizing the mechanical properties of cells. With the use of three pairs of orthogonally aligned coils, oscillatory mechanical torque was applied to magnetic beads about any chosen axis. Frequencies up to 1 kHz could be attained. Cell deformation was measured in response to torque applied via an RGD-coated, surface-bound magnetic bead. In both unpatterned and micropatterned elongated cells on extracellular matrix, the mechanical stiffness transverse to the long axis of the cell was less than half that parallel to the long axis. Elongated cells on poly-l-lysine lost stress fibers and exhibited little mechanical anisotropy; disrupting the actin cytoskeleton or decreasing cytoskeletal tension substantially decreased the anisotropy. These results suggest that mechanical anisotropy originates from intrinsic cytoskeletal tension within the stress fibers. Deformation patterns of the cytoskeleton and the nucleolus were sensitive to loading direction, suggesting anisotropic mechanical signaling. This technology may be useful for elucidating the structural basis of mechanotransduction.

Keywords

CytoskeletonAnisotropyMechanotransductionMaterials scienceStiffnessExtracellular matrixMechanobiologyStress (linguistics)Tension (geology)BiophysicsComposite materialCellChemistryPhysicsOpticsAnatomyUltimate tensile strengthCell biology

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Publication Info

Year
2004
Type
article
Volume
287
Issue
5
Pages
C1184-C1191
Citations
136
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Shaohua Hu, Luc Eberhard, Jianxin Chen et al. (2004). Mechanical anisotropy of adherent cells probed by a three-dimensional magnetic twisting device. American Journal of Physiology-Cell Physiology , 287 (5) , C1184-C1191. https://doi.org/10.1152/ajpcell.00224.2004

Identifiers

DOI
10.1152/ajpcell.00224.2004