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Le Nagard, L.

Publications and source records attributed to Le Nagard, L..

2 recordsLinked to original sources

Metabolic feedback during bacterial fermentation is a motility brake

We study an unexpectedly fast decay of motility in dense suspensions of Escherichia coli bacteria supplied with excess glucose under anaerobic conditions. The decrease in swimming speed occurs on a timescale inversely proportional to the cell concentration, and is associated with the secretion of organic acids by the bacteria. We show that the decay is driven by the progressive accumulation of non-ionised organic acids in the medium, and develop a chemical kinetic model that successfully predicts the swimming speed variations over a range of conditions in the presence of these acids. We further measure the internal pH of E. coli cells exposed to organic acids, and find that the speed decay coincides with sharp declines in internal pH and metabolic rate. Our findings identify an additional layer of motility control that can arise in complex environments even when motility genes are expressed and energy sources are abundant. This mechanism is likely relevant for understanding bacterial motility in habitats such as the human gut, where high densities of bacteria and organic acids are common.

microbiology↗

Nonlinear dependency of the bacterial flagellar motor speed on proton motive force and its consequences for swimming

The bacterial flagellar motor enables bacteria to swim by rotating helical flagellar filaments that form a bundle at the back of the cell. Escherichia colis motor uses the energy stored in the electrochemical gradient of protons, the proton motive force (PMF), to generate the torque driving this rotation. Until now, motor speed was thought to be proportional to the PMF, irrespective of the viscous load on the motor, and across the physiological range of PMF values. Here, we show that the PMF-speed relationship is non-linear in the high-torque regime. Because saturation in the relationship occurs in the physiologically relevant range, it challenges all current models of motor function that assume a tight coupling between the motor rotation and PMF across the entire physiological range. Furthermore, we experimentally determine the load on the motor experienced by swimming cells, and show that free swimming occurs close to or within the saturation regime, making the observed limiting torque evolutionary relevant.

microbiology↗