arXiv · 2602.08779
How negative feedback from filamentous actin affects cell shapes and motility
Abstract
The crawling motility of many eukaryotic cells is driven by filamentous actin (F-actin), and regulated by a network of signaling proteins and lipids (including small GTPases). The tangle of positive and negative feedback loops gives rise to various experimentally observed dynamic patterns (actin waves). Here we consider a recent prototypical model for actin waves in which F-actin exerts negative feedback onto a GTPase. Guided by previous numerical PDE bifurcation analysis, we explore cell shapes and motility associated with polar, oscillatory, and traveling wave solutions of a mass-conserved partial differential equation (PDE) model. We use Morpheus (cellular Potts) simulations to investigate the implications of such regimes of behavior on the shapes and motion of cells, and on transitions between modes of behavior. The model demonstrates various cell states, including resting (spatially uniform GTPase activity), polar cells (static zones of GTPase activity), and traveling waves along the cell edge. In some parameter regimes, such states can coexist, so that cells can transition from one behavior to another in response to noisy stimuli.
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Jack M. Hughes, Jupiter Algorta, Leah Edelstein-Keshet. 2026-02-09. How negative feedback from filamentous actin affects cell shapes and motility. https://arxiv.org/abs/2602.08779
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