English

Diffusion-driven self-assembly of emerin nanodomains at the nuclear envelope

Biological Physics 2024-07-17 v1 Soft Condensed Matter Statistical Mechanics Adaptation and Self-Organizing Systems Subcellular Processes

Abstract

Emerin, a nuclear membrane protein with important biological roles in mechanotransduction and nuclear shape adaptation, self-assembles into nanometer-size domains at the inner nuclear membrane. The size and emerin occupancy of these nanodomains change with applied mechanical stress as well as under emerin mutations associated with Emery-Dreifuss muscular dystrophy (EDMD). Through a combination of theory and experiment we show here that a simple reaction-diffusion model explains the self-assembly of emerin nanodomains. Our model yields quantitative agreement with experimental observations on the size and occupancy of emerin nanodomains for wild-type emerin and EDMD-associated mutations of emerin, with and without applied forces, and allows successful prediction of emerin diffusion coefficients from observations on the overall properties of emerin nanodomains. Our results provide a physical understanding of EDMD-associated defects in emerin organization in terms of changes in key reaction and diffusion properties of emerin and its nuclear binding partners.

Keywords

Cite

@article{arxiv.2407.11758,
  title  = {Diffusion-driven self-assembly of emerin nanodomains at the nuclear envelope},
  author = {Carlos D. Alas and Liying Wu and Fabien Pinaud and Christoph A. Haselwandter},
  journal= {arXiv preprint arXiv:2407.11758},
  year   = {2024}
}

Comments

17 pages, 5 figures total. 6 main pages and 2 main figures, 11 supplemental material pages and 3 supplemental material figures