Aug 2026· Biophysical Journal· Vol 125, pp. 4809-4827· 0 citations
Medicine
TL;DR
It is concluded that surface-mediated polymerization can outpace solution-mediated elongation, even at high actin concentrations (>100 μM); the finite time required for profilin dissociation decreases the advantage conferred by surface-associated polymerases, but only in the absence of force.
Abstract
Actin filaments created by the Arp2/3 complex form branched networks that grow and push against cellular membranes. We employ theory and simulation to describe how membrane surfaces accelerate filament assembly via clustering of proteins, including WAVE-family nucleation promoting factors, that bind actin monomers and/or profilin-actin complexes. Briefly, thermal fluctuations drive filament tips on constrained, two-dimensional random walks across the membrane, where they collide with actin-charged polymerases. At low soluble actin concentrations, filament elongation is limited by delivery of monomers to the membrane surface; at high actin concentrations, elongation depends on how quickly fluctuating filaments search the membrane. Using measured parameter values we conclude that surface-mediated polymerization can outpace solution-mediated elongation, even at high actin concentrations (>100 μM). The finite time required for profilin dissociation decreases the advantage conferred by surface-associated polymerases, but only in the absence of force. Load forces enhance the effect of surface polymerases, which can both accelerate elongation and increase the force required to stall filament assembly.
Branched actin polymerization mediated by the actin-related protein 2/3 (Arp2/3) complex provides the primary pushing forces for a variety of cellular processes, including cell migration, endocytosis, and phagocytosis. Myosin-I motors, which frequently colocalize with branched actin networks at the cell leading edge, h...
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The Arp2/3 (Actin-Related Protein 2/3) complex nucleates branched actin networks, while myosin motors generate force and reorganize actin through ATP-dependent motor activity. Their coordination is central to membrane remodeling, but the underlying mechanisms differ substantially among cellular processes and organisms....
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