The effect of feedback on the fidelity of information transmission of time-varying signals
arXiv:1002.2595 · doi:10.1103/PhysRevE.82.031914
Abstract
Living cells are continually exposed to environmental signals that vary in time. These signals are detected and processed by biochemical networks, which are often highly stochastic. To understand how cells cope with a fluctuating environment, we therefore have to understand how reliably biochemical networks can transmit time-varying signals. To this end, we must understand both the noise characteristics and the amplification properties of networks. In this manuscript, we use information theory to study how reliably signalling cascades employing autoregulation and feedback can transmit time-varying signals. We calculate the frequency-dependence of the gain-to-noise ratio, which reflects how reliably a network transmits signals at different frequencies. We find that the gain-to-noise ratio may differ qualitatively from the power spectrum of the output, showing that the latter does not directly reflect signaling performance. Moreover, we find that auto-activation and auto-repression increase and decrease the gain-to-noise ratio for all of frequencies, respectively. Positive feedback specifically enhances information transmission at low frequencies, while negative feedback increases signal fidelity at high frequencies. Our analysis not only elucidates the role of autoregulation and feedback in naturally-occurring biological networks, but also reveals design principles that can be used for the reliable transmission of time-varying signals in synthetic gene circuits.
Article 17 pages, S1: 12 pages
References in corpus (3)
Cited by in corpus (22)
- Information transmission in genetic regulatory networks: a review
- Mutual information in time-varying biochemical systems
- Optimal Prediction by Cellular Signaling Networks
- Noise and information transmission in promoters with multiple internal states
- Optimizing information flow in small genetic networks. III. A self-interacting gene
- Fundamental Limits on Sensing Chemical Concentrations with Linear Biochemical Networks
- Entropy production in systems with unidirectional transitions
- Redundancy in the information transmission in a two-step cascade
- Role of relaxation time scale in noisy signal transduction
- Optimal entrainment of circadian clocks in the presence of noise
- The accuracy of telling time via oscillatory signals
- Time-dependent information transmission in a model regulatory circuit
- Extending the dynamic range of transcription factor action by translational regulation
- Trade-offs in delayed information transmission in biochemical networks
- Multiplexing oscillatory biochemical signals
- Optimal information transfer in enzymatic networks: A field theoretic formulation
- Interplay of synergy and redundancy in diamond motif
- Positional information, in bits
- Characterizing the non-monotonic behavior of mutual information along biochemical reaction cascades
- Dissipation in non-steady state regulatory circuits
- Interplay of degeneracy and non-degeneracy in fluctuations propagation in coherent feed-forward loop motif
- Information transmission in a two-step cascade: Interplay of activation and repression