Published October 21, 2015 | Version v1
Journal article Open

Digital signaling decouples activation probability and population heterogeneity

  • 1. Eidgenössische Technische Hochschule Zürich
  • 2. University of Copenhagen
  • 3. Polish Academy of Sciences
  • 4. Stanford University
  • 5. University of Chicago

Description

Digital signaling enhances robustness of cellular decisions in noisy environments, but it is unclear how digital systems transmit temporal information about a stimulus. To understand how temporal input information is encoded and decoded by the NF-κB system, we studied transcription factor dynamics and gene regulation under dose- and duration-modulated inflammatory inputs. Mathematical modeling predicted and microfluidic single-cell experiments confirmed that integral of the stimulus (or area, concentration × duration) controls the fraction of cells that activate NF-κB in the population. However, stimulus temporal profile determined NF-κB dynamics, cell-to-cell variability, and gene expression phenotype. A sustained, weak stimulation lead to heterogeneous activation and delayed timing that is transmitted to gene expression. In contrast, a transient, strong stimulus with the same area caused rapid and uniform dynamics. These results show that digital NF-κB signaling enables multidimensional control of cellular phenotype via input profile, allowing parallel and independent control of single-cell activation probability and population heterogeneity.

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Additional details

Identifiers

DOI
10.7554/eLife.08931
Other
oai:uchicago.tind.io:9891

Funding

European Research Council
Starting Grant (SingleCellDynamics)
Narodowe Centrum Nauki
2011/03/B/NZ2/00281
National Centres of Competence in Research
Molecular Systems Engineering

UChicago Information

Division(s)
Pritzker School of Molecular Engineering