The impact of fluctuations on the dynamical behaviour of complex biological systems is a longstanding issue, whose understanding would elucidate how evolutionary pressure tends to modulate intrinsic noise. Using the Itō stochastic differential equation formalism, we performed analytic and numerical analyses of model systems containing different molecular species in contact with the environment and interacting with each other through mass-action kinetics. For networks of zero deficiency, which admit a detailed- or complex-balanced steady state, all molecular species are uncorrelated and their Fano factors are Poissonian. Systems of higher deficiency have non-equilibrium steady states and non-zero reaction fluxes flowing between the complexes...
3After being considered as a nuisance to be filtered out, it became recently clear that biochemical ...
AbstractStochastic evolution of Chemical Reactions Networks (CRNs) over time is usually analyzed thr...
First published on the web 8th April 2009 We present a simple, unifying theory for stochastic bioche...
The impact of fluctuations on the dynamical behaviour of complex biological systems is a longstandin...
Understanding under which conditions the increase of systems complexity is evolutionarily advantageo...
How random fluctuations impact on biological systems and what is their relationship with complexity ...
We provide a short review of stochastic modeling in chemical reaction networks for mathematical and ...
The dynamics of stochastic reaction networks within cells are inevitably modulated by factors consid...
Many biological mechanisms can be understood as a complex interaction of chemical reactions. In orde...
We analyse a class of chemical reaction networks under mass-action kinetics involving multiple time ...
We consider the general problem of describing the dynamics of subnetworks of larger biochemical reac...
In this monograph, we have provided a general framework of how noise can arise and be incorporated ...
Cell systems consist of a huge number of various molecules that display specific patterns of interac...
3In the first part of this invited paper we review the role of both extrinsic and intrinsic stochast...
Can a micron sized sack of interacting molecules understand, and adapt to a constantly-fluctuating e...
3After being considered as a nuisance to be filtered out, it became recently clear that biochemical ...
AbstractStochastic evolution of Chemical Reactions Networks (CRNs) over time is usually analyzed thr...
First published on the web 8th April 2009 We present a simple, unifying theory for stochastic bioche...
The impact of fluctuations on the dynamical behaviour of complex biological systems is a longstandin...
Understanding under which conditions the increase of systems complexity is evolutionarily advantageo...
How random fluctuations impact on biological systems and what is their relationship with complexity ...
We provide a short review of stochastic modeling in chemical reaction networks for mathematical and ...
The dynamics of stochastic reaction networks within cells are inevitably modulated by factors consid...
Many biological mechanisms can be understood as a complex interaction of chemical reactions. In orde...
We analyse a class of chemical reaction networks under mass-action kinetics involving multiple time ...
We consider the general problem of describing the dynamics of subnetworks of larger biochemical reac...
In this monograph, we have provided a general framework of how noise can arise and be incorporated ...
Cell systems consist of a huge number of various molecules that display specific patterns of interac...
3In the first part of this invited paper we review the role of both extrinsic and intrinsic stochast...
Can a micron sized sack of interacting molecules understand, and adapt to a constantly-fluctuating e...
3After being considered as a nuisance to be filtered out, it became recently clear that biochemical ...
AbstractStochastic evolution of Chemical Reactions Networks (CRNs) over time is usually analyzed thr...
First published on the web 8th April 2009 We present a simple, unifying theory for stochastic bioche...