Recent experiment of Darnton and Berg [34] showed that phase transition of bacterial flagellar filament is loading rate-dependent. The object of this paper is to describe the observed loading rate-dependent phase transition responses of the filament by using time dependent Ginzberg-Landau continuum model. We developed a finite element method (FEM) code to simulate the phase transition under a displacement-controlled loading condition (controlled helix-twist) by using viscosity-type kinetics. Our FEM simulation captures the main features of the rate-dependence: under slow loading (i.e., loading time ≫ the relaxation time) the filament phase transition is an equilibrium process and each phase grows via interface propagation on the Maxwell lin...
The intermittent transition between slow growth and rapid shrinkage in polymeric assemblies is terme...
AbstractThe bacterial flagellar filament is a very large macromolecular assembly of a single protein...
AbstractThe intermittent transition between slow growth and rapid shrinkage in polymeric assemblies ...
Bacterial flagellar filament can undergo a stress-induced polymorphic phase transition in both vitro...
AbstractBacterial flagellar filament can undergo a stress-induced polymorphic phase transition in bo...
Phase transition is a very common phenomenon in nature. Besides Martensite phase transitions in Shap...
Bacterial flagellar filaments can undergo a polymorphic phase transition in both vitro and vivo envi...
Bacterial flagella assume different helical shapes during the tumbling phase of a bacterium but also...
The growth of bacterial flagellar filaments is a self-assembly process where flagellin molecules are...
The Filament Based Lamellipodium Model (FBLM) is a two-phase two-dimensional continuum model, descri...
The Filament Based Lamellipodium Model (FBLM) is a two-phase two-dimensional continuum model, descri...
Many interesting problems in cellular biophysics involve the dynamics of filamentary elastic objects...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
We describe a method for simulating the inertialess dynamics of a flexible filament immersed in a fl...
The intermittent transition between slow growth and rapid shrinkage in polymeric assemblies is terme...
AbstractThe bacterial flagellar filament is a very large macromolecular assembly of a single protein...
AbstractThe intermittent transition between slow growth and rapid shrinkage in polymeric assemblies ...
Bacterial flagellar filament can undergo a stress-induced polymorphic phase transition in both vitro...
AbstractBacterial flagellar filament can undergo a stress-induced polymorphic phase transition in bo...
Phase transition is a very common phenomenon in nature. Besides Martensite phase transitions in Shap...
Bacterial flagellar filaments can undergo a polymorphic phase transition in both vitro and vivo envi...
Bacterial flagella assume different helical shapes during the tumbling phase of a bacterium but also...
The growth of bacterial flagellar filaments is a self-assembly process where flagellin molecules are...
The Filament Based Lamellipodium Model (FBLM) is a two-phase two-dimensional continuum model, descri...
The Filament Based Lamellipodium Model (FBLM) is a two-phase two-dimensional continuum model, descri...
Many interesting problems in cellular biophysics involve the dynamics of filamentary elastic objects...
AbstractThe bacterial flagellum is a self-assembling filament, which bacteria use for swimming. It i...
Twenty years ago the experiments of Hotani revealed that flagellar polymorphism (the ability of bact...
We describe a method for simulating the inertialess dynamics of a flexible filament immersed in a fl...
The intermittent transition between slow growth and rapid shrinkage in polymeric assemblies is terme...
AbstractThe bacterial flagellar filament is a very large macromolecular assembly of a single protein...
AbstractThe intermittent transition between slow growth and rapid shrinkage in polymeric assemblies ...