AbstractThe dependences of the steady-state critical concentration and average filament length of actin solutions, on the filament branching and capping rates, are calculated using a rate methodology based on the total number of actin filaments. The methodology generalizes calculations of the “treadmilling” actin concentration at which an average filament has net zero growth rate. The predictions of the rate methodology are validated by comparison with stochastic-growth simulations that track the positions of all filament subunits over time. For side branching, the critical concentration drops proportionally to the square root of the branching rate; for end branching the drop is linear. The polymerization response to branching has a maximum...
AbstractWe have performed computer simulations and free energy calculations to determine the thermod...
AbstractWe measured the lengths of actin filaments formed by spontaneous polymerization of highly pu...
Polymerization of dendritic actin networks underlies important mechanical processes in cell biology ...
AbstractThe dependences of the steady-state critical concentration and average filament length of ac...
AbstractThe extent and dynamics of actin polymerization in solution are calculated as functions of t...
ABSTRACTThe growth of an actin network against an obstacle that stimulates branching locally is stud...
AbstractWe investigate the issue of end versus side branching of actin filaments by Arp2/3 complex, ...
AbstractA method for simulating the growth of branched actin networks against obstacles has been dev...
Branched actin networks at the leading edge of a crawling cell evolve via protein-regulated processe...
Branching actin networks are made up of polymerous actin filaments and play a principle role in cell...
We study force generation and actin filament dynamics using stochastic and deterministic methods. Fi...
We study mathematical models for the length distributions of actin filaments under the effects of po...
AbstractThe actin filament network at the leading edge of motile cells relies on localized branching...
ABSTRACT Polymerization dynamics of single actin filaments is investigated theoretically using a sto...
AbstractPolymerization dynamics of single actin filaments is investigated theoretically using a stoc...
AbstractWe have performed computer simulations and free energy calculations to determine the thermod...
AbstractWe measured the lengths of actin filaments formed by spontaneous polymerization of highly pu...
Polymerization of dendritic actin networks underlies important mechanical processes in cell biology ...
AbstractThe dependences of the steady-state critical concentration and average filament length of ac...
AbstractThe extent and dynamics of actin polymerization in solution are calculated as functions of t...
ABSTRACTThe growth of an actin network against an obstacle that stimulates branching locally is stud...
AbstractWe investigate the issue of end versus side branching of actin filaments by Arp2/3 complex, ...
AbstractA method for simulating the growth of branched actin networks against obstacles has been dev...
Branched actin networks at the leading edge of a crawling cell evolve via protein-regulated processe...
Branching actin networks are made up of polymerous actin filaments and play a principle role in cell...
We study force generation and actin filament dynamics using stochastic and deterministic methods. Fi...
We study mathematical models for the length distributions of actin filaments under the effects of po...
AbstractThe actin filament network at the leading edge of motile cells relies on localized branching...
ABSTRACT Polymerization dynamics of single actin filaments is investigated theoretically using a sto...
AbstractPolymerization dynamics of single actin filaments is investigated theoretically using a stoc...
AbstractWe have performed computer simulations and free energy calculations to determine the thermod...
AbstractWe measured the lengths of actin filaments formed by spontaneous polymerization of highly pu...
Polymerization of dendritic actin networks underlies important mechanical processes in cell biology ...