AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics has been employed to describe the propulsion of bacterial flagella in a viscous hydrodynamic environment. The method explicitly models the two aspects of bacterial propulsion that involve flagellar flexibility and long-range hydrodynamic interaction of low-Reynolds-number flow. The model further incorporates the molecular organization of the flagellar filament at a coarse-grained level in terms of the 11 protofilaments. Each of these protofilaments is represented by a collection of material points that represent the flagellin proteins. A computational model of a single flexible helical segment representing the filament of a bacterial flagellum ...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Many theoretical studies of bacterial locomotion adopt a simple model for the organism consisting of...
The bacterial flagellar motor is driven by a flux of ions between the cytoplasm and the periplasmic ...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Bacteria, one of the most common prokaryotic germs, typically move through fluids by rotating one or...
Flagellated bacteria categorized as microorganisms, play vital roles in human life such that their b...
Motility of flagellated bacteria has been a topic of increasing scientific interest over the past de...
AbstractThe flagellar filament, the bacterial organelle of motility, is the smallest rotary propelle...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
A crucial structure in the motility of flagellated bacteria is the hook, which connects the flagellu...
In this thesis, we explore different topics in the broad field of microscale swimming, focussing on ...
Swimming bacteria with helical flagella are self-propelled micro-swimmers in nature, and the swimmin...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Many theoretical studies of bacterial locomotion adopt a simple model for the organism consisting of...
The bacterial flagellar motor is driven by a flux of ions between the cytoplasm and the periplasmic ...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Bacteria, one of the most common prokaryotic germs, typically move through fluids by rotating one or...
Flagellated bacteria categorized as microorganisms, play vital roles in human life such that their b...
Motility of flagellated bacteria has been a topic of increasing scientific interest over the past de...
AbstractThe flagellar filament, the bacterial organelle of motility, is the smallest rotary propelle...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
A crucial structure in the motility of flagellated bacteria is the hook, which connects the flagellu...
In this thesis, we explore different topics in the broad field of microscale swimming, focussing on ...
Swimming bacteria with helical flagella are self-propelled micro-swimmers in nature, and the swimmin...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Many theoretical studies of bacterial locomotion adopt a simple model for the organism consisting of...
The bacterial flagellar motor is driven by a flux of ions between the cytoplasm and the periplasmic ...