Related Experiment Video
Updated: Dec 23, 2025

Directly Measuring Forces Within Reconstituted Active Microtubule Bundles
Published on: May 10, 2022
Self-straining of actively crosslinked microtubule networks
Sebastian Fürthauer1, Bezia Lemma2,3,4, Peter J Foster5
1Center for Computational Biology, Flatiron Institute, New York, NY, USA.
Abstract:
Cytoskeletal networks are foundational examples of active matter and central to self-organized structures in the cell. In vivo, these networks are active and densely crosslinked. Relating their large-scale dynamics to the properties of their constituents remains an unsolved problem. Here, we study an in vitro active gel made from aligned microtubules and XCTK2 kinesin motors. Using photobleaching, we demonstrate that the gel's aligned microtubules, driven by motors, continually slide past each other at a speed independent of the local microtubule polarity and motor concentration. This phenomenon is also observed, and remains unexplained, in spindles. We derive a general framework for coarse graining microtubule gels crosslinked by molecular motors from microscopic considerations. Using microtubule-microtubule coupling through a force-velocity relationship for kinesin, this theory naturally explains the experimental results: motors generate an active strain rate in regions of changing polarity, which allows microtubules of opposite polarities to slide past each other without stressing the material.
Related Concept Videos
Destabilization of Microtubules
Microtubule Instability
Anaphase A and B
Plus-end depolymerization releases tubulin heterodimers from the terminal region of the microtubule. As tubulin subunits are lost, the Ndc80 complexes detach...
Assembly of Cytoskeletal Filaments
Microtubule Associated Proteins (MAPs)
Microtubules
Microtubules have two structurally similar globular protein subunits: α and β tubulins. In the cytosol, the α and β tubulins form a heterodimer....

