Self-centering steady-state flows emerge in confined actomyosin networks

Preprint, 2026

Abstract:

The actin cytoskeleton drives shape changes and transport in cells and supports mechanical signal transmission. However, how cells control and use active cytoskeletal flows at the mesoscale is not well understood. We reconstituted an active cytoskeleton in water-in-oil emulsion droplets of Xenopus laevis egg extract and observed, above a critical droplet size, the emergence of a 3D radially convergent steady-state flow of polymeric actin, maintained by continuous actin turnover. The flow condensed lipid-rich cellular debris into a centered inclusion. Steady-state F-actin density and flow velocity profiles roughly collapse onto scale-invariant master curves. This behavior can be explained by a physical model representing the network as an isotropic active viscous fluid with a percolation threshold. The contracting network behaves as an active swimmer with complex internal dynamics that centers itself and the central inclusion inside the droplets without physical boundary attachment. Active contraction, crosslinking and polymerization dynamics in an actin network can thus generate cell-scale flow patterns that sense the confining geometry and external signals and exert forces that are likely sufficient to move and localize organelles in cells.

Recommended citation: "Self-centering steady-state flows emerge in confined actomyosin networks", J. Zhao, C. Duclut, A. Singh, R. Golipour, A. Pham, B. Golschaei, C. Guan, M. Li, U. Schulz, R. Oldenbourg, I. F. Sbalzarini, S. W. Grill, J. L. Harden, F. Jülicher, C. F. Schmidt, bioRxiv:2026.09.24.754221 (2026). https://www.biorxiv.org/content/10.64898/2026.09.24.754221v1

bioRxiv version [pdf]