Cell size control in bacteria is modulated through extrinsic noise, single-cell- and population-growth

Fuente: arXiv
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Main Authors: Genthon, Arthur, Thomas, Philipp
Format: Preprint
Published: 2026
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author Genthon, Arthur
Thomas, Philipp
author_facet Genthon, Arthur
Thomas, Philipp
contents Living cells maintain size homeostasis by actively compensating for size fluctuations. Here, we present two stochastic maps that unify phenomenological models by integrating fluctuating single-cell growth rates and size-dependent noise mechanisms with cell size control. One map is applicable to mother machine lineages and the other to lineage trees of exponentially-growing cell populations, which reveals that population dynamics alter size control measured in mother machine experiments. For example, an adder can become more sizer-like or more timer-like at the population level depending on the noise statistics. Our analysis of bacterial data identifies extrinsic noise as the dominant mechanism of size variability, characterized by a quadratic conditional variance-mean relationship for division size across growth conditions. This finding contradicts the reported independence of added size relative to birth size but is consistent with the adder property in terms of the independence of the mean added size. Finally, we derive a trade-off between population-growth-rate gain and division-size noise. Correlations between size control quantifiers and single-cell growth rates inferred from data indicate that bacteria prioritize a narrow division-size distribution over growth rate maximisation.
format Preprint
id arxiv_https___arxiv_org_abs_2601_05193
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Cell size control in bacteria is modulated through extrinsic noise, single-cell- and population-growth
Genthon, Arthur
Thomas, Philipp
Populations and Evolution
Statistical Mechanics
Cell Behavior
Living cells maintain size homeostasis by actively compensating for size fluctuations. Here, we present two stochastic maps that unify phenomenological models by integrating fluctuating single-cell growth rates and size-dependent noise mechanisms with cell size control. One map is applicable to mother machine lineages and the other to lineage trees of exponentially-growing cell populations, which reveals that population dynamics alter size control measured in mother machine experiments. For example, an adder can become more sizer-like or more timer-like at the population level depending on the noise statistics. Our analysis of bacterial data identifies extrinsic noise as the dominant mechanism of size variability, characterized by a quadratic conditional variance-mean relationship for division size across growth conditions. This finding contradicts the reported independence of added size relative to birth size but is consistent with the adder property in terms of the independence of the mean added size. Finally, we derive a trade-off between population-growth-rate gain and division-size noise. Correlations between size control quantifiers and single-cell growth rates inferred from data indicate that bacteria prioritize a narrow division-size distribution over growth rate maximisation.
title Cell size control in bacteria is modulated through extrinsic noise, single-cell- and population-growth
topic Populations and Evolution
Statistical Mechanics
Cell Behavior
url https://arxiv.org/abs/2601.05193