Depletion-Driven Morphological Control of Bundled Actin Networks
Abstract
The actin cytoskeleton is a semiflexible biopolymer network whose morphology is controlled by a wide range of biochemical and physical factors. Actin is known to undergo a phase transition from a single-filament state to a bundled state by the addition of polyethylene glycol (PEG) molecules in sufficient concentration. While the depletion interaction experienced by these biopolymers is well-known, the effect of changing the molecular weight of the depletant is less well understood. Here, we experimentally identify a phase transition in solutions of actin from networks of filaments to networks of bundles by varying the molecular weight of PEG polymers, while holding the concentration of these PEG polymers constant. We examine the states straddling the phase transition in terms of micro and macroscale properties. We find that the mesh size, bundle diameter, persistence length, and intra-bundle spacing between filaments across the line of criticality do not show significant differences, while the relaxation time, storage modulus, and degree of bundling change between the two states do show significant differences. Our results demonstrate the ability to tune actin network morphology and mechanics by controlling depletant size, a property which could be exploited to develop actin-based materials with switchable rigidity.
Keywords
Cite
@article{arxiv.2205.01864,
title = {Depletion-Driven Morphological Control of Bundled Actin Networks},
author = {James Clarke and Francis Cavanna and Anne D. Crowell and Lauren Melcher and Justin R. Houser and Kristin Graham and Allison Green and Jeanne C. Stachowiak and Thomas M. Truskett and Delia J. Milliron and Adrianne M. Rosales and Moumita Das and José Alvarado},
journal= {arXiv preprint arXiv:2205.01864},
year = {2026}
}
Comments
22 pages, 10 figures. Authors James Clarke and Francis Cavanna contributed equally; Changes: Added modeling work, extended dynamic light scattering analysis