bioRxiv ScienceSearch

Biology subjects

Willis, L.

Publications and source records attributed to Willis, L..

2 recordsLinked to original sources

Limits and constraints on mechanisms of cell-cycle regulation imposed by cell size-homeostasis measurements

High-throughput imaging has led to an explosion of observations regarding cell-size homeostasis across the kingdoms of life. Among bacteria, \"adder\" behavior in which a constant size appears to be added during each cell cycle is ubiquitous, while various eukaryotes show other size-homeostasis behaviors. Since interactions between cell-cycle progression and growth ultimately determine size-homeostasis behaviors, we developed a general model of cell proliferation to: 1) discover how the requirement of cell-size homeostasis limits mechanisms of cell-cycle control; 2) predict how features of cell-cycle control translate into size-homeostasis measurements. Our analyses revealed plausible cell-cycle control scenarios that nevertheless fail to regulate cell size, conditions that generate apparent adder behavior without underlying adder mechanisms, cell-cycle features that play unintuitive roles in causing deviations from adder, and distinguishing predictions for extended size-homeostasis statistics according to the underlying control mechanism. The model thus provides holistic insight into the mechanistic implications of cell-size homeostasis measurements.

systems biology

Biosurfactant production maintains viability in anoxic conditions by depolarizing the membrane in Bacillus subtilis

The presence or absence of oxygen in the environment is a strong effector of cellular metabolism and physiology. Like many eukaryotes and some bacteria, Bacillus subtilis is an obligate aerobe that primarily utilizes oxygen during respiration to generate ATP. Despite the importance of oxygen for B. subtilis survival, we know little about how oxygen is consumed during growth and how populations respond to shifts in oxygen availability. Here, we find that when oxygen was depleted from stationary phase cultures [~]90% of B. subtilis 3610 cells died and lysed due to autolysin activity; the remaining cells maintained colony-forming ability. Interestingly, the domesticated 168 strain maintained a higher optical density than 3610 during oxygen depletion due to the formation of cell-wall-less protoplasts, but the remaining, rod-shaped cells were >100-fold less viable than 3610. We discovered that the higher viability in 3610 was due to its ability to produce the antibacterial compound surfactin, as surfactin addition rescued 168 viability and also increased yield in aerobic growth. We further demonstrate that surfactin strongly depolarizes the B. subtilis membrane, and that other known membrane-potential disruptors restore viability to 168. These findings highlight the importance of surfactin for survival during oxygen-depleted conditions and demonstrate that antimicrobials normally considered harmful can instead benefit cells in stressful conditions when the terminal electron acceptor in respiration is limiting.

microbiology