Optimizing information flow in small genetic networks. III. A self-interacting gene
arXiv:1112.5026 · doi:10.1103/PhysRevE.85.041903
Abstract
Living cells must control the reading out or "expression" of information encoded in their genomes, and this regulation often is mediated by transcription factors--proteins that bind to DNA and either enhance or repress the expression of nearby genes. But the expression of transcription factor proteins is itself regulated, and many transcription factors regulate their own expression in addition to responding to other input signals. Here we analyze the simplest of such self-regulatory circuits, asking how parameters can be chosen to optimize information transmission from inputs to outputs in the steady state. Some nonzero level of self-regulation is almost always optimal, with self-activation dominant when transcription factor concentrations are low and self-repression dominant when concentrations are high. In steady state the optimal self-activation is never strong enough to induce bistability, although there is a limit in which the optimal parameters are very close to the critical point.
18 pages, 9 figures
References in corpus (3)
Cited by in corpus (21)
- Optimal decoding of information from a genetic network
- Evolution of bow-tie architectures in biology
- Morphogenesis at criticality?
- Noise and information transmission in promoters with multiple internal states
- Perspectives on theory at the interface of physics and biology
- Estimating information in time-varying signals
- Noise expands the response range of the Bacillus subtilis competence circuit
- Beyond the French Flag Model: Exploiting Spatial and Gene Regulatory Interactions for Positional Information
- Optimal census by quorum sensing
- Universality of biochemical feedback and its application to immune cells
- Only accessible information is useful: insights from gradient-mediated patterning
- 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
- Cross-talk and interference enhance information capacity of a signaling pathway
- Multiplexing oscillatory biochemical signals
- Irreversibility in Bacterial Regulatory Networks
- Statistics of optimal information flow in ensembles of regulatory motifs
- Ambitions for theory in the physics of life
- Dissipation in non-steady state regulatory circuits
- Detecting concentration changes with cooperative receptors