AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The bacterial flagellar filament is a relatively simple and well-studied macromolecular assembly, which assumes different helical shapes when rotated in different directions. This polymorphism enables a bacterium to switch between running and tumbling modes; however, the mechanism governing the filament polymorphism is not completely understood. Here we report a study of the bacterial flagellar filament using numerical simulations that employ a novel coarse-grained molecular dynamics method. The simulations reveal the dynamics of a half-micrometer-long flagellum segment on a timescale of tens of microseconds. Depending on the rotation direction, s...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
AbstractTo study the swimming of a peritrichous bacterium such as Escherichia coli, which is able to...
Abstract: Many species of bacteria swim through viscous environments by rotating multiple helical fl...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
SummarySwitching of flagellar motor rotation sense dictates bacterial chemotaxis. Multi-subunit FliM...
Bacteria like Escherichia coli and Salmonella typhimurium swim by rotating flagella. These are long ...
127 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2008.Molecular dynamics simulation...
Experiments and mathematical modeling show that complex flows driven by unexpected flagellar arrange...
AbstractThe chemotaxis of bacteria such as Salmonella and Escherichia coli involves smooth swimming ...
AbstractThe flagellar filament, the bacterial organelle of motility, is the smallest rotary propelle...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
Peritrichous bacteria exploit bundles of helical flagella for propulsion and chemotaxis. Here, chang...
Switching of flagellar motor rotation sense dictates bacterial chemotaxis. Multi-subunit FliM-FliG r...
Bacterial mobility is powered by rotation of helical flagellar filaments driven by rotary motors. Fl...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
AbstractTo study the swimming of a peritrichous bacterium such as Escherichia coli, which is able to...
Abstract: Many species of bacteria swim through viscous environments by rotating multiple helical fl...
AbstractMany types of bacteria propel themselves using elongated structures known as flagella. The b...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
SummarySwitching of flagellar motor rotation sense dictates bacterial chemotaxis. Multi-subunit FliM...
Bacteria like Escherichia coli and Salmonella typhimurium swim by rotating flagella. These are long ...
127 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2008.Molecular dynamics simulation...
Experiments and mathematical modeling show that complex flows driven by unexpected flagellar arrange...
AbstractThe chemotaxis of bacteria such as Salmonella and Escherichia coli involves smooth swimming ...
AbstractThe flagellar filament, the bacterial organelle of motility, is the smallest rotary propelle...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
Peritrichous bacteria exploit bundles of helical flagella for propulsion and chemotaxis. Here, chang...
Switching of flagellar motor rotation sense dictates bacterial chemotaxis. Multi-subunit FliM-FliG r...
Bacterial mobility is powered by rotation of helical flagellar filaments driven by rotary motors. Fl...
AbstractA particle-based hybrid method of elastic network model and smooth-particle hydrodynamics ha...
AbstractTo study the swimming of a peritrichous bacterium such as Escherichia coli, which is able to...
Abstract: Many species of bacteria swim through viscous environments by rotating multiple helical fl...