Motion Anisotropy of Individual, Unconfined Rod-Like-Shaped Salmonella Typhimurium Bacteria

Abstract With the continuous advancement of microscopic imaging techniques, the motion of micro- and nanosized particles can be followed with increasing spatial and temporal accuracy. Analyzing the tracks of single particles enables one to address a broad range of scientific questions, e.g., the dynamics of active and passive (thermally driven) motion or the transport of particles in complex environments. While anisotropic motion, which is exhibited by the vast majority of biologically relevant particles (e.g., bacteria and viruses), has been amply studied in theoretical works, only little experimental data with single-particle resolution have been reported so far. In this study, fluorescence microscopy is used to follow the unconstrained motion of green-fluorescent protein (GFP)-labeled Salmonella enterica serovar Typhimurium (S. Typhimurium) in bulk. By decomposing the motion of individual bacteria into contributions parallel and perpendicular to the bacterial long axis, we introduce new scores that quantify the degree of motile activity and alignment with high throughput. We find that S. Typhimurium possesses a surprisingly broad spectrum of opening angles that range from full alignment of the bacterial long axis with the direction of translational motion to no alignment at all. Applied to mutants, in which motility-related proteins (the flagellins FljB and FliC) have been deleted, we find that wild-type (WT) and FliC-expressing S. Typhimurium exhibit very similar motility but differ significantly in the fraction of actively moving bacteria.

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Publication Details

Journal
ACS Nanoscience Au
Published
2026-09-06
DOI
https://doi.org/10.1021/acsnanoscienceau.6c00080
Primary Topic
Micro and Nano Robotics
Type
article
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article

Motion Anisotropy of Individual, Unconfined Rod-Like-Shaped Salmonella Typhimurium Bacteria

Kevin Diestelhorst, Roland R. Netz, Sebastian Braetz, Fereshteh Ghazisaeedi et al.
ACS Nanoscience Au
Micro and Nano Robotics
article

Motion Anisotropy of Individual, Unconfined Rod-Like-Shaped Salmonella Typhimurium Bacteria

Kevin Diestelhorst, Roland R. Netz, Sebastian Braetz, Fereshteh Ghazisaeedi, Karsten Tedin, Stephan Block, Anton Klimek, Marcus Fulde
article en

Abstract

Abstract With the continuous advancement of microscopic imaging techniques, the motion of micro- and nanosized particles can be followed with increasing spatial and temporal accuracy. Analyzing the tracks of single particles enables one to address a broad range of scientific questions, e.g., the dynamics of active and passive (thermally driven) motion or the transport of particles in complex environments. While anisotropic motion, which is exhibited by the vast majority of biologically relevant particles (e.g., bacteria and viruses), has been amply studied in theoretical works, only little experimental data with single-particle resolution have been reported so far. In this study, fluorescence microscopy is used to follow the unconstrained motion of green-fluorescent protein (GFP)-labeled Salmonella enterica serovar Typhimurium (S. Typhimurium) in bulk. By decomposing the motion of individual bacteria into contributions parallel and perpendicular to the bacterial long axis, we introduce new scores that quantify the degree of motile activity and alignment with high throughput. We find that S. Typhimurium possesses a surprisingly broad spectrum of opening angles that range from full alignment of the bacterial long axis with the direction of translational motion to no alignment at all. Applied to mutants, in which motility-related proteins (the flagellins FljB and FliC) have been deleted, we find that wild-type (WT) and FliC-expressing S. Typhimurium exhibit very similar motility but differ significantly in the fraction of actively moving bacteria.

ACS Nanoscience Au
University of Wuppertal (DE), University of Veterinary Medicine Hannover, Foundation (DE), Freie Universität Berlin (DE)
Openalex Percentile: Top 15%
Micro and Nano Robotics
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