Related Experiment Video
Updated: Jul 19, 2025

ScanLag: High-throughput Quantification of Colony Growth and Lag Time
Published on: July 15, 2014
Emergent Lag Phase in Flux-Regulation Models of Bacterial Growth
Fiona Bate1, Yumechris Amekan2, Dmitri O Pushkin3
1Department of Mathematics, University of York, York, YO10 5DD, UK. fiona.bate@york.ac.uk.
Abstract:
Lag phase is observed in bacterial growth during a sudden change in conditions: growth is inhibited whilst cells adapt to the environment. Bi-phasic, or diauxic growth is commonly exhibited by many species. In the presence of two sugars, cells initially grow by consuming the preferred sugar then undergo a lag phase before resuming growth on the second. Biomass increase is characterised by a diauxic growth curve: exponential growth followed by a period of no growth before a second exponential growth. Recent literature lacks a complete dynamic description, artificially modelling lag phase and employing non-physical representations of precursor pools. Here, we formulate a rational mechanistic model based on flux-regulation/proteome partitioning with a finite precursor pool that reveals core mechanisms in a compact form. Unlike earlier systems, the characteristic dynamics emerge as part of the solution, including the lag phase. Focussing on growth of Escherichia coli on a glucose-lactose mixture we show results accurately reproduce experiments. We show that for a single strain of E. coli, diauxic growth leads to optimised biomass yields. However, intriguingly, for two competing strains diauxic growth is not always the best strategy. Our description can be generalised to model multiple different microorganisms and investigate competition between species/strains.
Related Concept Videos
Bacterial Growth Curve
Stringent Response in E. coli
Global Regulatory Systems
Other Stress Responses in Bacteria
Gene Regulation During Sporulation
Gene Regulation in Microbial Communities: Quorum Sensing

