Trade-offs in delayed information transmission in biochemical networks
arXiv:1504.03637 · doi:10.1007/s10955-015-1332-8
Abstract
In order to transmit biochemical signals, biological regulatory systems dissipate energy with concomitant entropy production. Additionally, signaling often takes place in challenging environmental conditions. In a simple model regulatory circuit given by an input and a delayed output, we explore the trade-offs between information transmission and the system's energetic efficiency. We determine the maximally informative network, given a fixed amount of entropy production and delayed response, exploring both the case with and without feedback. We find that feedback allows the circuit to overcome energy constraints and transmit close to the maximum available information even in the dissipationless limit. Negative feedback loops, characteristic of shock responses, are optimal at high dissipation. Close to equilibrium positive feedback loops, known for their stability, become more informative. Asking how the signaling network should be constructed to best function in the worst possible environment, rather than an optimally tuned one or in steady state, we discover that at large dissipation the same universal motif is optimal in all of these conditions.
25 pages, 15 figures
References in corpus (13)
- The thermodynamics of prediction
- Stochastic thermodynamics of bipartite systems: transfer entropy inequalities and a Maxwell's demon interpretation
- Thermodynamic costs of information processing in sensory adaption
- Efficiency of cellular information processing
- Spectral solutions to stochastic models of gene expression with bursts and regulation
- Information-theoretic vs. thermodynamic entropy production in autonomous sensory networks
- A stochastic spectral analysis of transcriptional regulatory cascades
- Thermodynamic limits to information harvesting by sensory systems
- Modelling the Establishment of PAR Protein Polarity in the One-Cell C. elegans Embryo
- Memory improves precision of cell sensing in fluctuating environments
- Telling time with an intrinsically noisy clock
- Prediction and Dissipation in Biochemical Sensing
- Optimizing information flow in small genetic networks. IV. Spatial coupling