Complex and unexpected dynamics in simple genetic regulatory networks

Author:

Borg Yanika1,Ullner Ekkehard2,Alagha Afnan3,Alsaedi Ahmed3,Nesbeth Darren4,Zaikin Alexey56

Affiliation:

1. Department of Mathematics and Department of Biochemical Engineering, University College London, Gower Street, London, WC1E 6BT, United Kingdom

2. Department of Physics (SUPA), Institute for Complex Systems and Mathematical Biology, (ICSMB) and Institute of Medical Sciences, University of Aberdeen, Aberdeen, AB24 3UE, United Kingdom

3. Nonlinear Analysis and Applied Mathematics Research Group (NAAM), Department of Mathematics, King Abdulaziz University, Jeddah, Saudi Arabia

4. Department of Biochemical Engineering, University College London, Gower Street London, WC1E 6BT, United Kingdom

5. Institute of Women's Health and Department of Mathematics, University College London, Gower Street, London, WC1E 6BT, United Kingdom

6. Lobachevsky State University of Nizhniy Novgorod, Nizhniy Novgorod, Russia

Abstract

One aim of synthetic biology is to construct increasingly complex genetic networks from interconnected simpler ones to address challenges in medicine and biotechnology. However, as systems increase in size and complexity, emergent properties lead to unexpected and complex dynamics due to nonlinear and nonequilibrium properties from component interactions. We focus on four different studies of biological systems which exhibit complex and unexpected dynamics. Using simple synthetic genetic networks, small and large populations of phase-coupled quorum sensing repressilators, Goodwin oscillators, and bistable switches, we review how coupled and stochastic components can result in clustering, chaos, noise-induced coherence and speed-dependent decision making. A system of repressilators exhibits oscillations, limit cycles, steady states or chaos depending on the nature and strength of the coupling mechanism. In large repressilator networks, rich dynamics can also be exhibited, such as clustering and chaos. In populations of Goodwin oscillators, noise can induce coherent oscillations. In bistable systems, the speed with which incoming external signals reach steady state can bias the network towards particular attractors. These studies showcase the range of dynamical behavior that simple synthetic genetic networks can exhibit. In addition, they demonstrate the ability of mathematical modeling to analyze nonlinearity and inhomogeneity within these systems.

Publisher

World Scientific Pub Co Pte Lt

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

Reference133 articles.

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