Related Experiment Video
Updated: Jul 18, 2026

Reconstituting and Characterizing Actin-Microtubule Composites with Tunable Motor-Driven Dynamics and Mechanics
Published on: August 25, 2022
Biomechanical properties of intermediate filaments: from tissues to single filaments and back
Laurent Kreplak1, Douglas Fudge
1M.E. Müller Institute for Structural Biology, Biozentrum, University of Basel, Switzerland. Laurent.kreplak@unibas.ch
Abstract:
The animal cell cytoskeleton consists of three interconnected filament systems: actin-containing microfilaments (MFs), microtubules (MTs), and the lesser known intermediate filaments (IFs). All IF proteins share a common tripartite domain structure and the ability to assemble into 8-12 nm wide filaments. Electron microscopy data suggest that IFs are built according to a completely different plan from that of MFs and MTs. IFs are known to impart mechanical stability to cells and tissues but, until recently, the biomechanical properties of single IFs were unknown. However, with the discovery of naturally occurring micrometer-wide IF bundles and the development of new methodologies to mechanically probe single filaments, it is now possible to propose a more unified view of IF biomechanics. Unlike MFs and MTs, single IFs can now be described as flexible, extensible and tough, which has important implications for our understanding of cell and tissue mechanics. Furthermore, the molecular mechanisms at play when IFs are deformed point toward a pivotal role for them in mechanotransduction.
Related Concept Videos
The Structure of Intermediate Filaments
Intermediate filaments...
Formation of Intermediate Filaments
Types of Intermediate Filaments
Adaptability of Cytoskeletal Filaments
Disassembly of Intermediate Filaments
Keratin proteins, found at the cell periphery near cell junctions, undergo a cycle of assembly and disassembly. In Type...
Studying the Cytoskeleton
