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Identification of gene regulation models from single-cell data

Date

2017

Authors

Weber, Lisa, author
Raymond, Will, author
Munsky, Brian, author

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Abstract

In quantitative biology, one may use many different model scales or approaches to match models to experimental data. We use a simplified gene regulation model with a time-dependent input signal to illustrate many concepts, including ODE analyses of deterministic processes; chemical master equation and finite-state projection analyses of heterogeneous processes; and stochastic simulations. We consider several model hypotheses and simulated single-cell data to illustrate mechanism and parameter identification as precisely as possible, while exploring how approach or experiment design affect parameter uncertainty. Our approach is based upon previous investigations to explore signal-activated gene expression models in yeast and human cells.

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Subject

gene regulation
parameter identification
finite state projection
predictive modeling
parameter uncertainty

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