Transcription factor competition facilitates self-sustained oscillations in single gene genetic circuits

Author:

Landman JasperORCID,Verduyn Lunel Sjoerd M.ORCID,Kegel Willem K.ORCID

Abstract

Genetic feedback loops can be used by cells to regulate internal processes or to keep track of time. It is often thought that, for a genetic circuit to display self-sustained oscillations, a degree of cooperativity is needed in the binding and unbinding of actor species. This cooperativity is usually modeled using a Hill function, regardless of the actual promoter architecture. Furthermore, genetic circuits do not operate in isolation and often transcription factors are shared between different promoters. In this work we show how mathematical modelling of genetic feedback loops can be facilitated with a mechanistic fold-change function that takes into account the titration effect caused by competing binding sites for transcription factors. The model shows how the titration effect facilitates self-sustained oscillations in a minimal genetic feedback loop: a gene that produces its own repressor directly without cooperative transcription factor binding. The use of delay-differential equations leads to a stability contour that predicts whether a genetic feedback loop will show self-sustained oscillations, even when taking the bursty nature of transcription into account.

Publisher

Public Library of Science (PLoS)

Subject

Computational Theory and Mathematics,Cellular and Molecular Neuroscience,Genetics,Molecular Biology,Ecology,Modeling and Simulation,Ecology, Evolution, Behavior and Systematics

Reference79 articles.

1. Nobelprize org. The Nobel Prize in Physiology or Medicine 2017; 2017. Available from: http://www.nobelprize.org/nobel_prizes/medicine/laureates/2017/.

2. Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels;PE Hardin;Nature,1990

3. Time zones: a comparative genetics of circadian clocks;MW Young;Nature Reviews Genetics,2001

4. Periodical oxidation of malonic acid in solution (a study of the Belousov reaction kinetics);AM Zhabotinsky;Biofizika,1964

5. An oscillating reaction and its mechanism;BP Belousov;Collection of Abstracts on Radiation Medicine,1959

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