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Updated: May 23, 2026

A Direct Force Probe for Measuring Mechanical Integration Between the Nucleus and the Cytoskeleton
Published on: July 29, 2018
Vimentin molecular linkages with nesprin-3 enhance nuclear deformations by cell geometric constraints
Maxx Swoger1,2,3, Minh Tri Ho Thanh1,2, Renita Saldanha1,2
1Physics Department, Syracuse University, Syracuse, NY, USA.
Abstract:
The nucleus is the organelle of the cell responsible for controlling protein expression, which has a direct effect on cellular biological functions. Here we show that the cytoskeletal protein vimentin plays an important role in increasing the amount of cell-generated forces transmitted to the cell nucleus, resulting in increased nuclear deformations in strongly polarized cells. Using micropatterned substrates to geometrically control cell shape in wild-type and vimentin-null cells, we show vimentin increases polarization and deformation of the cell nucleus. Loss of nesprin-3, which physically couples vimentin to the nuclear envelope, phenotypically copies the loss of vimentin, suggesting vimentin transmits forces to the cell nucleus through direct molecular linkages. Use of a Forster resonance energy transfer (FRET) sensor that binds to the nuclear envelope through lamin A/C suggests vimentin increases the tension on the nuclear envelope. Our results indicate that nuclear shape and deformation can be modified by the vimentin cytoskeleton and its specific crosslinks to the cell nucleus.
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