We perform Monte Carlo simulations in three-dimensional (3D) lattice in order to study diffusion-controlled and mixed activation-diffusion reactions following Michaelis-Menten scheme in crowded media. The simulation data reveal the rate coefficient dependence on time for diffusion-controlled bimolecular reactions developing in three- dimensional media with obstacles, as predicted by fractal kinetics approach. For the cases of mixed activation-diffusion reactions, the fractality of the reaction decreases as the activation control increases. We propose a modified form of the Zipf-Mandelbrot equation to describe the time dependence of the rate coefficient, k (t ) = k0 (1 + t /τ )− h . This equation provides a good description of the fractal re...
Many computational models for analyzing and predicting cell physiology rely on in vitro data collect...
Background In this paper we apply a novel agent-based simulation method in order to model intracell...
The particle distributions and macroscopic reaction rate laws of the diffusion-limited trapping reac...
We perform Monte Carlo simulations in three-dimensional (3D) lattice in order to study diffusion-con...
Published data reveal that the rate coefficients of diffusion controlled reactions taking place in c...
Published data reveal that the rate coefficients of diffusion controlled reactions taking place in c...
Abstract: In this paper, several aspects of implementing a Monte Carlo simulation algorithm for stud...
Using Monte Carlo simulations in 3D media we investigate the effect of macromolecular crowding on bi...
AbstractConventional equations for enzyme kinetics are based on mass-action laws, that may fail in l...
ABSTRACT Conventional equations for enzyme kinetics are based on mass-action laws, that may fail in ...
AbstractConventional equations for enzyme kinetics are based on mass-action laws, that may fail in l...
Lattice-based stochastic simulators are commonly used to study biological reaction-diffusion process...
We present a general-purpose model for biomolecular simulations at the molecular level that incorpor...
We present a general-purpose model for biomolecular simulations at the molecular level that incorpor...
AbstractWe present a general-purpose model for biomolecular simulations at the molecular level that ...
Many computational models for analyzing and predicting cell physiology rely on in vitro data collect...
Background In this paper we apply a novel agent-based simulation method in order to model intracell...
The particle distributions and macroscopic reaction rate laws of the diffusion-limited trapping reac...
We perform Monte Carlo simulations in three-dimensional (3D) lattice in order to study diffusion-con...
Published data reveal that the rate coefficients of diffusion controlled reactions taking place in c...
Published data reveal that the rate coefficients of diffusion controlled reactions taking place in c...
Abstract: In this paper, several aspects of implementing a Monte Carlo simulation algorithm for stud...
Using Monte Carlo simulations in 3D media we investigate the effect of macromolecular crowding on bi...
AbstractConventional equations for enzyme kinetics are based on mass-action laws, that may fail in l...
ABSTRACT Conventional equations for enzyme kinetics are based on mass-action laws, that may fail in ...
AbstractConventional equations for enzyme kinetics are based on mass-action laws, that may fail in l...
Lattice-based stochastic simulators are commonly used to study biological reaction-diffusion process...
We present a general-purpose model for biomolecular simulations at the molecular level that incorpor...
We present a general-purpose model for biomolecular simulations at the molecular level that incorpor...
AbstractWe present a general-purpose model for biomolecular simulations at the molecular level that ...
Many computational models for analyzing and predicting cell physiology rely on in vitro data collect...
Background In this paper we apply a novel agent-based simulation method in order to model intracell...
The particle distributions and macroscopic reaction rate laws of the diffusion-limited trapping reac...