Competing addition processes give distinct growth regimes in the assembly of 1D filaments
Sk Ashif Akram, Tyler Brown, Stephen Whitelam, Georg Meisl, Tuomas, P.J. Knowles, Jeremy D. Schmit

TL;DR
This paper introduces a model for protein filament growth that captures distinct regimes influenced by competing addition processes, revealing how molecular interactions and defect capture affect growth dynamics at different concentrations.
Contribution
The study presents a novel two-state model explaining concentration-dependent filament growth and the impact of molecular interactions on growth regimes.
Findings
Linear growth occurs at low concentrations.
Plateau growth results from defect capture and competitive processes.
Interactions modulate growth differently in linear and plateau regimes.
Abstract
We present a model to describe the concentration-dependent growth of protein filaments. Our model contains two states, a low entropy/high affinity ordered state and a high entropy/low affinity disordered state. Consistent with experiments, our model shows a diffusion-limited linear growth regime at low concentration, followed by a concentration independent plateau at intermediate concentrations, and rapid disordered precipitation at the highest concentrations. We show that growth in the linear and plateau regions is the result of two processes that compete amid the rapid binding and unbinding of non-specific states. The first process is the addition of ordered molecules during the periods where the end of the filament is free of incorrectly bound molecules. The second process is the capture of defects, which occurs when consecutive ordered additions occur on top of incorrectly bound…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Modular Robots and Swarm Intelligence
