English

Embryonic lateral inhibition as optical modes: an analytical framework for mesoscopic pattern formation

Biological Physics 2019-05-01 v1 Dynamical Systems

Abstract

Cellular checkerboard patterns are observed at many developmental stages of embryos. We study an analytically tractable model for lateral inhibition and show that a coupling coefficient with a negative value is sufficient to obtain noisy or periodic checkerboard patterns. We solve the case of a linear chain of cells explicitly and show that noisy anti-correlated patterns are available in a post-critical regime (ϵc<ϵ<0)(\epsilon_c < \epsilon < 0). In the sub-critical regime (<ϵϵc)(-\infty < \epsilon \leq \epsilon_c) a periodic and alternating steady state is available, where pattern selection is determined by making an analogy with the optical modes of phonons. For cells arranged in a hexagonal lattice, the sub-critical pattern can be driven into three different states: two of those states are periodic checkerboards and a third in which both periodic states coexist.

Keywords

Cite

@article{arxiv.1808.09362,
  title  = {Embryonic lateral inhibition as optical modes: an analytical framework for mesoscopic pattern formation},
  author = {Jose Negrete and Andrew C. Oates},
  journal= {arXiv preprint arXiv:1808.09362},
  year   = {2019}
}
R2 v1 2026-06-23T03:46:35.673Z