The effect of natural selection on the propagation of protein expression noise to bacterial growth

Publication date

2021-07-19

Authors

Krah, Laurens H JISNI 0000000492529007
Hermsen, RutgerORCID 0000-0003-4633-4877ISNI 0000000394734437

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

In bacterial cells, protein expression is a highly stochastic process. Gene expression noise moreover propagates through the cell and adds to fluctuations in the cellular growth rate. A common intuition is that, due to their relatively high noise amplitudes, proteins with a low mean expression level are the most important drivers of fluctuations in physiological variables. In this work, we challenge this intuition by considering the effect of natural selection on noise propagation. Mathematically, the contribution of each protein species to the noise in the growth rate depends on two factors: The noise amplitude of the protein's expression level, and the sensitivity of the growth rate to fluctuations in that protein's concentration. We argue that natural selection, while shaping mean abundances to increase the mean growth rate, also affects cellular sensitivities. In the limit in which cells grow optimally fast, the growth rate becomes most sensitive to fluctuations in highly abundant proteins. This causes abundant proteins to overall contribute strongly to the noise in the growth rate, despite their low noise levels. We further explore this result in an experimental data set of protein abundances, and test key assumptions in an evolving, stochastic toy model of cellular growth.

Keywords

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

Citation

Krah, L H J & Hermsen, R 2021, 'The effect of natural selection on the propagation of protein expression noise to bacterial growth', PLoS Computational Biology, vol. 17, no. 7, e1009208. https://doi.org/10.1371/journal.pcbi.1009208