English

Switch and template pattern formation in a discrete reaction diffusion system inspired by the Drosophila eye

Molecular Networks 2010-01-26 v1 Pattern Formation and Solitons Cell Behavior

Abstract

We examine a spatially discrete reaction diffusion model based on the interactions that create a periodic pattern in the Drosophila eye imaginal disc. This model is capable of generating a regular hexagonal pattern of gene expression behind a moving front, as observed in the fly system. In order to better understand the novel switch and template mechanism behind this pattern formation, we present here a detailed study of the model's behavior in one dimension, using a combination of analytic methods and numerical searches of parameter space. We find that patterns are created robustly provided that there is an appropriate separation of timescales and that self-activation is sufficiently strong, and we derive expressions in this limit for the front speed and the pattern wavelength. Moving fronts in pattern-forming systems near an initial linear instability generically select a unique pattern, but our model operates in a strongly nonlinear regime where the final pattern depends on the initial conditions as well as on parameter values. Our work highlights the important role that cellularization and cell-autonomous feedback can play in biological pattern formation.

Keywords

Cite

@article{arxiv.1001.4451,
  title  = {Switch and template pattern formation in a discrete reaction diffusion system inspired by the Drosophila eye},
  author = {Matthew W. Pennington and David K. Lubensky},
  journal= {arXiv preprint arXiv:1001.4451},
  year   = {2010}
}
R2 v1 2026-06-21T14:39:04.856Z