vimentin intermediate filament
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2021 ◽  
Vol 118 (27) ◽  
pp. e2102026118
Author(s):  
Anna V. Schepers ◽  
Charlotta Lorenz ◽  
Peter Nietmann ◽  
Andreas Janshoff ◽  
Stefan Klumpp ◽  
...  

The cytoskeleton, an intricate network of protein filaments, motor proteins, and cross-linkers, largely determines the mechanical properties of cells. Among the three filamentous components, F-actin, microtubules, and intermediate filaments (IFs), the IF network is by far the most extensible and resilient to stress. We present a multiscale approach to disentangle the three main contributions to vimentin IF network mechanics—single-filament mechanics, filament length, and interactions between filaments—including their temporal evolution. Combining particle tracking, quadruple optical trapping, and computational modeling, we derive quantitative information on the strength and kinetics of filament interactions. Specifically, we find that hydrophobic contributions to network mechanics enter mostly via filament-elongation kinetics, whereas electrostatics have a direct influence on filament–filament interactions.


2021 ◽  
Author(s):  
Anna V. Schepers ◽  
Charlotta Lorenz ◽  
Peter Nietmann ◽  
Andreas Janshoff ◽  
Stefan Klumpp ◽  
...  

AbstractThe cytoskeleton, an intricate network of protein filaments, motor proteins, and crosslinkers, largely determines the mechanical properties of cells. Among the three filamentous components, F-actin, microtubules, and intermediate filaments (IFs), the IF network is by far the most extensible and resilient to stress. We present a multiscale approach to disentangle the three main contributions to vimentin IF network mechanics – single filament mechanics, filament length, and interactions between filaments – including their temporal evolution. Combining particle tracking, quadruple optical trapping and computational modeling, we derive quantitative information on the strength and kinetics of filament interactions. Specifically, we find that hydrophobic contributions to network mechanics enter mostly via filament elongation kinetics, whereas electrostatics have a direct influence on filament–filament interactions. These results indicate that cells might need to explicitly suppress attractive interactions to re-organize the extremely stable cellular vimentin network.


2021 ◽  
Vol 22 (1) ◽  
pp. 410
Author(s):  
Byung Geun Ha ◽  
Jung-Yoon Heo ◽  
Yu-Jin Jang ◽  
Tae-Shin Park ◽  
Ju-Yeon Choi ◽  
...  

Mitochondrial dysfunction contributes to neurodegenerative diseases and developmental disorders such as Fragile X syndrome (FXS). The cross-talk between mitochondria and extracellular vesicles (EVs) suggests that EVs may transfer mitochondrial components as intermediators for intracellular communication under physiological and pathological conditions. In the present study, the ability of EVs to transfer mitochondrial components and their role in mitochondrial dysfunction in astrocytes were examined in the brains of Fmr1 knockout (KO) mice, a model of FXS. The amounts of mitochondrial transcription factor NRF-1, ATP synthases ATP5A and ATPB, and the mitochondrial membrane protein VDAC1 in EVs were reduced in cerebral cortex samples and astrocytes from Fmr1 KO mice. These reductions correspond to decreased mitochondrial biogenesis and transcriptional activities in Fmr1 KO brain, along with decreased mitochondrial membrane potential (MMP) with abnormal localization of vimentin intermediate filament (VIF) in Fmr1 KO astrocytes. Our results suggest that mitochondrial dysfunction in astrocytes is associated with the pathogenesis of FXS and can be monitored by depletion of components in EVs. These findings may improve the ability to diagnose developmental diseases associated with mitochondrial dysfunction, such as FXS and autism spectrum disorders (ASD).


2020 ◽  
Vol 295 (19) ◽  
pp. 6700-6709 ◽  
Author(s):  
Sandrine B. Lavenus ◽  
Sara M. Tudor ◽  
Maria F. Ullo ◽  
Karl W. Vosatka ◽  
Jeremy S. Logue

Tumor cells can spread to distant sites through their ability to switch between mesenchymal and amoeboid (bleb-based) migration. Because of this difference, inhibitors of metastasis must account for each migration mode. However, the role of vimentin in amoeboid migration has not been determined. Because amoeboid leader bleb–based migration (LBBM) occurs in confined spaces and vimentin is known to strongly influence cell-mechanical properties, we hypothesized that a flexible vimentin network is required for fast amoeboid migration. To this end, here we determined the precise role of the vimentin intermediate filament system in regulating the migration of amoeboid human cancer cells. Vimentin is a classic marker of epithelial-to-mesenchymal transition and is therefore an ideal target for a metastasis inhibitor. Using a previously developed polydimethylsiloxane slab–based approach to confine cells, RNAi-based vimentin silencing, vimentin overexpression, pharmacological treatments, and measurements of cell stiffness, we found that RNAi-mediated depletion of vimentin increases LBBM by ∼50% compared with control cells and that vimentin overexpression and simvastatin-induced vimentin bundling inhibit fast amoeboid migration and proliferation. Importantly, these effects were independent of changes in actomyosin contractility. Our results indicate that a flexible vimentin intermediate filament network promotes LBBM of amoeboid cancer cells in confined environments and that vimentin bundling perturbs cell-mechanical properties and inhibits the invasive properties of cancer cells.


JCI Insight ◽  
2019 ◽  
Vol 4 (7) ◽  
Author(s):  
Ranu Surolia ◽  
Fu Jun Li ◽  
Zheng Wang ◽  
Huashi Li ◽  
Kevin Dsouza ◽  
...  

Soft Matter ◽  
2019 ◽  
Vol 15 (36) ◽  
pp. 7127-7136 ◽  
Author(s):  
Anders Aufderhorst-Roberts ◽  
Gijsje H. Koenderink

Nonlinear shear rheology reveals that intermediate filaments balance two contradictory roles: mechanoprotection by stiffening and dynamic cellular processes through softening.


2018 ◽  
Vol 128 (10) ◽  
pp. 4604-4621 ◽  
Author(s):  
Cameron McDonald-Hyman ◽  
James T. Muller ◽  
Michael Loschi ◽  
Govindarajan Thangavelu ◽  
Asim Saha ◽  
...  

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