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Steady state probability approximation applied to stochastic model of biological network

Authors :
Gregery T. Buzzard
David M. Umulis
Md. Shahriar Karim
Source :
GENSiPS
Publication Year :
2011
Publisher :
IEEE, 2011.

Abstract

The Steady State (SS) probability distribution for the Chemical Master Equation (CME) is an important quantity used to characterize many biological systems. In this paper, we propose a comparatively easy, yet efficient and accurate, way of finding the SS distribution assuming the existence of a unique deterministic SS (unimodal) of the system. In order to find the approximate SS, we first use the truncated-state space representation to reduce the system to a finite dimension, and subsequently reformulate an eigenvalue problem into a linear system. To demonstrate the utility of the approach, we apply the method and determine the SS probability distribution to quantify the parameter dependency of surface-associated BMP binding proteins (SBPs) in the regulation of BMP mediated signaling and pattern formation.

Details

Database :
OpenAIRE
Journal :
2011 IEEE International Workshop on Genomic Signal Processing and Statistics (GENSIPS)
Accession number :
edsair.doi...........17c4365a4ce98c0ab87424a805ea21bb
Full Text :
https://doi.org/10.1109/gensips.2011.6169442