Hypersensitivity of the vimentin cytoskeleton to net-charge states and Coulomb repulsion
Unger, B.; Wu, C. Y.; Choi, A.; He, C.; Xu, K.
Show abstract
As with most intermediate filament systems, the hierarchical self-assembly of vimentin into nonpolar filaments requires no nucleators or energy input. Utilizing a set of live-cell, single-molecule, and super-resolution microscopy tools, here we show that in mammalian cells, the assembly and disassembly of the vimentin cytoskeleton is highly sensitive to the protein net charge state. Starting with the intriguing observation that the vimentin cytoskeleton fully disassembles under hypotonic stress yet reassembles within seconds upon osmotic pressure recovery, we pinpoint ionic strength as its underlying driving factor. Further modulating the pH and expressing differently charged constructs, we converge on a model in which the vimentin cytoskeleton is destabilized by Coulomb repulsion when its mass-accumulated negative charges (-18 per vimentin protein) along the filament are less screened or otherwise intensified, and stabilized when the charges are better screened or otherwise reduced. Generalizing this model to other intermediate filaments, we further show that whereas the negatively charged GFAP cytoskeleton is similarly subject to fast disassembly under hypotonic stress, the cytokeratin, as a copolymer of negatively and positively charged subunits, does not exhibit this behavior. Thus, in cells containing both vimentin and keratin cytoskeletons, hypotonic stress disassembles the former but not the latter. Together, our results both provide new handles for modulating cell behavior and call for new attention to the effects of net charges in intracellular protein interactions.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Tissue Fluidity Mediates a Trade-off Between the Speed and Accuracy of Multicellular Patterning by Cell Sorting 95%
- Long-Range Electrostatic Interactions Significantly Modulate the Affinity of Dynein for Microtubules 95%
- Actin bundle architecture and mechanics regulate myosin II force generation 94%
Similar papers in this journal
Similar papers in this journal
- Activated I-BAR IRSp53 clustering controls the formation of VASP-actin-based membrane protrusions 96%
- Molecular organization and mechanics of single vimentin filaments revealed by super-resolution imaging 95%
- Myosin-I Synergizes with Arp2/3 Complex to Enhance Pushing Forces of Branched Actin Networks 95%
Similar papers in this journal
- Native cyclase-associated protein and actin from Xenopus laevis oocytes form a 4:4 complex with a tripartite structure 94%
- A flexible network of Vimentin intermediate filaments promotes the migration of amoeboid cancer cells through confined environments 93%
- Intrinsically disordered regions that drive phase separation form a robustly distinct protein class 93%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.