The fitness effect of biological noise remains unclear. For example, even within clonal microbial populations, individual cells grow at different speeds. Although it is known that the individuals’ mean growth speed can affect population-level fitness, it is unclear how or whether growth speed heterogeneity itself is subject to natural selection. Here, we show that noisy single-cell division times can significantly affect population-level growth rate. Using time-lapse microscopy to measure the division times of thousands of individual S. cerevisiae cells across different genetic and environmental backgrounds, we find that the length of individual cells’ division times can vary substantially between clonal individuals and that sublineages oft...
<div><p>Recent advances in single-cell time-lapse microscopy have revealed non-genetic heterogeneity...
Growth pervades all areas of life from single cells to cell populations to tissues. Cell size often ...
The survival of organisms in randomly fluctuating environments not only depends on their ability to ...
The fitness effect of biological noise remains unclear. For example, even within clonal microbial po...
The field of microbiology has long ignored differences between cells within clonal populations. This...
Microbial populations show striking diversity in cell growth morphology and lifecycle; however, our ...
The partitioning and subsequent inheritance of cellular factors like proteins and RNAs is a ubiquito...
BACKGROUND: Most quantitative measures of phenotypic traits represent macroscopic contributions of l...
Neo-Darwinian evolution has presented a paradigm for population dynamics built on random mutations a...
There has been increasing awareness in the wider biological community of the role of clonal phenotyp...
BACKGROUND: Most quantitative measures of phenotypic traits represent macroscopic contributions of l...
Population growth is often ignored when quantifying gene expression levels across clonal cell popula...
The partitioning and subsequent inheritance of cellular factors like proteins and RNAs is a ubiquito...
The cell cycle is the fundamental process of cell populations, it is regulated by environmental cues...
International audienceThe cell cycle is the fundamental process of cell populations, it is regulated...
<div><p>Recent advances in single-cell time-lapse microscopy have revealed non-genetic heterogeneity...
Growth pervades all areas of life from single cells to cell populations to tissues. Cell size often ...
The survival of organisms in randomly fluctuating environments not only depends on their ability to ...
The fitness effect of biological noise remains unclear. For example, even within clonal microbial po...
The field of microbiology has long ignored differences between cells within clonal populations. This...
Microbial populations show striking diversity in cell growth morphology and lifecycle; however, our ...
The partitioning and subsequent inheritance of cellular factors like proteins and RNAs is a ubiquito...
BACKGROUND: Most quantitative measures of phenotypic traits represent macroscopic contributions of l...
Neo-Darwinian evolution has presented a paradigm for population dynamics built on random mutations a...
There has been increasing awareness in the wider biological community of the role of clonal phenotyp...
BACKGROUND: Most quantitative measures of phenotypic traits represent macroscopic contributions of l...
Population growth is often ignored when quantifying gene expression levels across clonal cell popula...
The partitioning and subsequent inheritance of cellular factors like proteins and RNAs is a ubiquito...
The cell cycle is the fundamental process of cell populations, it is regulated by environmental cues...
International audienceThe cell cycle is the fundamental process of cell populations, it is regulated...
<div><p>Recent advances in single-cell time-lapse microscopy have revealed non-genetic heterogeneity...
Growth pervades all areas of life from single cells to cell populations to tissues. Cell size often ...
The survival of organisms in randomly fluctuating environments not only depends on their ability to ...