Collective deformation modes promote fibrous self-assembly in protein-like particles

Fuente: arXiv
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Autori principali: Roy, Hugo Le, Terzi, M. Mert, lenz, Martin
Natura: Preprint
Pubblicazione: 2023
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author Roy, Hugo Le
Terzi, M. Mert
lenz, Martin
author_facet Roy, Hugo Le
Terzi, M. Mert
lenz, Martin
contents The self-assembly of particles into organized structures is a key feature of living organisms and a major engineering challenge. While it may proceed through the binding of perfectly matched, puzzle-pieces-like particles, many other instances involve ill-fitting particles that must deform to fit together. These include some pathological proteins, which have a known propensity to form fibrous aggregates. Despite this observation, the general relationship between the individual characteristics of the particles and the overall structure of the aggregate is not understood. To elucidate it, we analytically and numerically study the self-assembly of two-dimensional, deformable ill-fitting particles. We find that moderately sticky particles tend to form equilibrium self-limited aggregates whose size is set by an elastic boundary layer associated with collective deformations that may extend over many particles. Particles with a soft internal deformation mode thus give rise to large aggregates. Besides, when the particles are incompressible, their aggregates tend to be anisotropic and fiber-like. Our results are preserved in a more complex particle model with randomly chosen elastic properties. This indicates that generic protein characteristics such as allostery and incompressibility could favor the formation of fibers in protein aggregation, and suggests design principles for artificial self-assembling structures.
format Preprint
id arxiv_https___arxiv_org_abs_2308_04698
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Collective deformation modes promote fibrous self-assembly in protein-like particles
Roy, Hugo Le
Terzi, M. Mert
lenz, Martin
Soft Condensed Matter
Biological Physics
The self-assembly of particles into organized structures is a key feature of living organisms and a major engineering challenge. While it may proceed through the binding of perfectly matched, puzzle-pieces-like particles, many other instances involve ill-fitting particles that must deform to fit together. These include some pathological proteins, which have a known propensity to form fibrous aggregates. Despite this observation, the general relationship between the individual characteristics of the particles and the overall structure of the aggregate is not understood. To elucidate it, we analytically and numerically study the self-assembly of two-dimensional, deformable ill-fitting particles. We find that moderately sticky particles tend to form equilibrium self-limited aggregates whose size is set by an elastic boundary layer associated with collective deformations that may extend over many particles. Particles with a soft internal deformation mode thus give rise to large aggregates. Besides, when the particles are incompressible, their aggregates tend to be anisotropic and fiber-like. Our results are preserved in a more complex particle model with randomly chosen elastic properties. This indicates that generic protein characteristics such as allostery and incompressibility could favor the formation of fibers in protein aggregation, and suggests design principles for artificial self-assembling structures.
title Collective deformation modes promote fibrous self-assembly in protein-like particles
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2308.04698