Metabolic activity controls the emergence of coherent flows in microbial suspensions

A Alexandros A. Fragkopoulos (Experimental Physics V, Department of Physics) F Florian Böhme (Experimental Physics V, Department of Physics) N Nicole Drewes (Max Planck Institute for Dynamics and Self-Organization) O Oliver Bäumchen (Experimental Physics V, Department of Physics)

Abstract

Photosynthetic microbes have evolved and successfully adapted to the ever-changing environmental conditions in complex microhabitats throughout almost all ecosystems on Earth. In the absence of light, they can sustain their biological functionalities through aerobic respiration, and even in anoxic conditions through anaerobic metabolic activity. For a suspension of photosynthetic microbes in an anaerobic environment, individual cellular motility is directly controlled by its photosynthetic activity, i.e. the intensity of the incident light absorbed by chlorophyll. The effects of the metabolic activity on the collective motility on the population level, however, remain elusive so far. Here, we demonstrate that at high light intensities, a suspension of photosynthetically active microbes exhibits a stable reverse sedimentation profile of the cell density due to the microbes’ natural bias to move against gravity. With decreasing photosynthetic activity, and therefore suppressed individual motility, the living suspension becomes unstable giving rise to coherent bioconvective flows. The collective motility is fully reversible and manifests as regular, three-dimensional plume structures, in which flow rates and cell distributions are directly controlled via the light intensity. The coherent flows emerge in the highly unfavorable condition of lacking both light and oxygen and, thus, might help the microbial collective to expand the exploration of their natural habitat in search for better survival conditions.

Article Details

Volume / Issue Vol. 122, Issue 4
Published January 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (4)

A

Alexandros A. Fragkopoulos

Experimental Physics V, Department of Physics

F

Florian Böhme

Experimental Physics V, Department of Physics

N

Nicole Drewes

Max Planck Institute for Dynamics and Self-Organization

O

Oliver Bäumchen

Experimental Physics V, Department of Physics