Mutual information in time-varying biochemical systems
arXiv:1002.4273 · doi:10.1103/PhysRevE.81.061917
Abstract
Cells must continuously sense and respond to time-varying environmental stimuli. These signals are transmitted and processed by biochemical signalling networks. However, the biochemical reactions making up these networks are intrinsically noisy, which limits the reliability of intracellular signalling. Here we use information theory to characterise the reliability of transmission of time-varying signals through elementary biochemical reactions in the presence of noise. We calculate the mutual information for both instantaneous measurements and trajectories of biochemical systems for a Gaussian model. Our results indicate that the same network can have radically different characteristics for the transmission of instantaneous signals and trajectories. For trajectories, the ability of a network to respond to changes in the input signal is determined by the timing of reaction events, and is independent of the correlation time of the output of the network. We also study how reliably signals on different time-scales can be transmitted by considering the frequency-dependent coherence and gain-to-noise ratio. We find that a detector that does not consume the ligand molecule upon detection can more reliably transmit slowly varying signals, while an absorbing detector can more reliably transmit rapidly varying signals. Furthermore, we find that while one reaction may more reliably transmit information than another when considered in isolation, when placed within a signalling cascade the relative performance of the two reactions can be reversed. This means that optimising signal transmission at a single level of a signalling cascade can reduce signalling performance for the cascade as a whole.
Minor corrections and expanded references. 17 pages, 4 figures, 2 tables; revtex4
References in corpus (5)
- Stochastic fluctuations in metabolic pathways
- Optimizing information flow in small genetic networks. II: Feed forward interactions
- The effect of feedback on the fidelity of information transmission of time-varying signals
- A stochastic spectral analysis of transcriptional regulatory cascades
- A rate-distortion scenario for the emergence and evolution of noisy molecular codes
Cited by in corpus (28)
- Information transmission in genetic regulatory networks: a review
- Second-law-like inequalities with information and their interpretations
- Information-theoretic vs. thermodynamic entropy production in autonomous sensory networks
- Noise and information transmission in promoters with multiple internal states
- A Markovian Approach to the Optimal Demodulation of Diffusion-based Molecular Communication Networks
- Estimating information in time-varying signals
- Dynamic sampling and information encoding in biochemical networks
- Improving the capacity of molecular communication using enzymatic reaction cycles
- Communication and Information Theory of Single Action Potential Signals in Plants
- Robustness of clocks to input noise
- Path Weight Sampling: Exact Monte Carlo Computation of the Mutual Information between Stochastic Trajectories
- Redundancy in the information transmission in a two-step cascade
- The behaviour of information flow near criticality
- Optimal entrainment of circadian clocks in the presence of noise
- Time-dependent information transmission in a model regulatory circuit
- The accuracy of telling time via oscillatory signals
- Trade-offs in delayed information transmission in biochemical networks
- Communication in Plants: Comparison of Multiple Action Potential and Mechanosensitive Signals with Experiments
- Molecular communication networks with general molecular circuit receivers
- Multiplexing oscillatory biochemical signals
- Characterizing Information Propagation in Plants
- Interplay of synergy and redundancy in diamond motif
- The coherent feed-forward loop acts as an efficient information transmitting motif
- Statistics of optimal information flow in ensembles of regulatory motifs
- Characterizing the non-monotonic behavior of mutual information along biochemical reaction cascades
- Diffusion-dynamics laws in stochastic reaction networks
- Dissipation in non-steady state regulatory circuits
- Signal Manifestation Trade-offs in Incoherent Feed-Forward Loops