Robustness of DNA Looping Across Multiple Divisions in Individual Bacteria
Chang, C.; Garcia-Alcala, M.; Saiz, L.; Vilar, J. M. G.; Cluzel, P.
Show abstract
DNA looping has emerged as a central paradigm of transcriptional regulation as it is shared across many living systems. One core property of DNA looping-based regulation is its ability to greatly enhance repression or activation of genes with only a few copies of transcriptional regulators. However, this property based on small number of proteins raises the question of the robustness of such a mechanism with respect to the large intracellular perturbations taking place during growth and division of the cell. Here we address the issue of sensitivity to variations of intracellular parameters of gene regulation by DNA looping. We use the lac system as a prototype to experimentally identify the key features of the robustness of DNA looping in growing E. coli cells. Surprisingly, we observe time intervals of tight repression spanning across division events, which can sometimes exceed ten generations. Remarkably, the distribution of such long time intervals exhibits memoryless statistics that is mostly insensitive to repressor concentration, cell division events, and the number of distinct loops accessible to the system. By contrast, gene regulation becomes highly sensitive to these perturbations when DNA looping is absent. Using stochastic simulations, we propose that the robustness to division events of memoryless distributions emerges from the competition between fast, multiple re-binding events of repressors and slow initiation rate of the RNA-polymerase. We argue that fast re-binding events are a direct consequence of DNA looping that ensures robust gene repression across a range of intracellular perturbations. Significance statementIt is well-established that certain intracellular regulators can stabilize DNA loops to greatly enhance activation or repression of gene transcription. In vitro but also in vivo ensemble measurements have determined that only a few copies of regulators are in fact needed to stably form DNA loops. In view of such a small number, we address the issue of sensitivity of gene regulation by DNA looping to variations of intracellular parameters in individual growing E. coli bacteria. Surprisingly, we find that DNA looping from the lac system is robust to a range of perturbations including divisions during which cells can maintain tight repression over many generations. We propose a mechanism that governs the observed robustness across a range of intracellular perturbations.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Bacterial cell shape control by nutrient-dependent synthesis of cell division inhibitors 97%
- Spatial control over near-critical-point operation ensures fidelity of ParABS-mediated bacterial genome segregation 97%
- Bacterial chemotaxis to saccharides is governed by a trade-off between sensing and uptake 96%
Similar papers in this journal
- A simple model explains the cell cycle-dependent assembly of centromeric nucleosomes in holocentric species 95%
- Generalised interrelations among mutation rates drive the genomic compliance of Chargaff's second parity rule 95%
- Quantitative parameters of bacterial RNA polymerase open-complex formation, stabilization and disruption on a consensus promoter 95%
Similar papers in this journal
- Single-cell growth inference of Corynebacterium glutamicum reveals asymptotically linear growth 97%
- Synthetic analysis of chromatin tracing and live-cell imaging indicates pervasive spatial coupling between genes 96%
- Catalytic growth in a shared enzyme pool ensures robust control of centrosome size 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.