English

Resolving Speed and Encoding Bottlenecks in Fast Heteromeric Self-Assembly

Statistical Mechanics 2025-11-21 v1

Abstract

The cytoplasm is a heterogeneous mixture containing many types of proteins that self-assemble into a wide variety of complexes. The accuracy and speed of cytoplasmic self-assembly is astonishing because it involves the correct identification of components shared among different structures, despite pervasive thermal fluctuations. Typical toy models of self-assembly are based on the specificity of binding energies among components and neglect kinetic effects. However, kinetics plays a key role in biological self-assembly, often catalyzed by a plethora of assembly factors. Building on this observation, we extend a previous heteropolymer growth model to describe the retrieval of two-dimensional structures. We find that the self-assembly of structures in this model is subject to strong speed and encoding bottlenecks. Moreover, we show that these bottlenecks can be suppressed by increasing the connectivity of a small fraction of components. This mechanism of kinetically controlling a small number of critical binding events provides a simple explanation for the timely assembly of large protein, and suggests a unifying principle for the role of assembly factors.

Keywords

Cite

@article{arxiv.2511.16362,
  title  = {Resolving Speed and Encoding Bottlenecks in Fast Heteromeric Self-Assembly},
  author = {Félix Benoist and Pablo Sartori},
  journal= {arXiv preprint arXiv:2511.16362},
  year   = {2025}
}

Comments

Main: 10 pages, 6 figures. SI: 9 pages, 8 figures

R2 v1 2026-07-01T07:47:15.732Z