English

Emergence of Complex Dynamics in a Simple Model of Signaling Networks

Other Quantitative Biology 2009-11-10 v1 Soft Condensed Matter Biological Physics

Abstract

A variety of physical, social and biological systems generate complex fluctuations with correlations across multiple time scales. In physiologic systems, these long-range correlations are altered with disease and aging. Such correlated fluctuations in living systems have been attributed to the interaction of multiple control systems; however, the mechanisms underlying this behavior remain unknown. Here, we show that a number of distinct classes of dynamical behaviors, including correlated fluctuations characterized by 1/f1/f-scaling of their power spectra, can emerge in networks of simple signaling units. We find that under general conditions, complex dynamics can be generated by systems fulfilling two requirements: i) a ``small-world'' topology and ii) the presence of noise. Our findings support two notable conclusions: first, complex physiologic-like signals can be modeled with a minimal set of components; and second, systems fulfilling conditions (i) and (ii) are robust to some degree of degradation, i.e., they will still be able to generate 1/f1/f-dynamics.

Keywords

Cite

@article{arxiv.q-bio/0411039,
  title  = {Emergence of Complex Dynamics in a Simple Model of Signaling Networks},
  author = {Luis A. N. Amaral and Albert Diaz-Guilera and Andre A. Moreira and Ary L. Goldberger and Lewis A. Lipsitz},
  journal= {arXiv preprint arXiv:q-bio/0411039},
  year   = {2009}
}