DocumentCode :
3610875
Title :
Structural and practical identifiability analysis of S-system
Author :
Choujun Zhan ; Li, Benjamin Yee Shing ; Lam Fat Yeung
Author_Institution :
Nanfang Coll., Dept. of Electron. Commun. & Software Eng., Sun Yat-Sen Univ., Guangzhou, China
Volume :
9
Issue :
6
fYear :
2015
Firstpage :
285
Lastpage :
293
Abstract :
In the field of systems biology, biological reaction networks are usually modelled by ordinary differential equations. A sub-class, the S-systems representation, is a widely used form of modelling. Existing S-systems identification techniques assume that the system itself is always structurally identifiable. However, due to practical limitations, biological reaction networks are often only partially measured. In addition, the captured data only covers a limited trajectory, therefore data can only be considered as a local snapshot of the system responses with respect to the complete set of state trajectories over the entire state space. Hence the estimated model can only reflect partial system dynamics and may not be unique. To improve the identification quality, the structural and practical identifiablility of S-system are studied. The S-system is shown to be identifiable under a set of assumptions. Then, an application on yeast fermentation pathway was conducted. Two case studies were chosen; where the first case is based on a larger state trajectories and the second case is based on a smaller one. By expanding the dataset which span a relatively larger state space, the uncertainty of the estimated system can be reduced. The results indicated that initial concentration is related to the practical identifiablity.
Keywords :
biochemistry; cellular biophysics; differential equations; fermentation; microorganisms; S-system; biological reaction networks; estimated model; identification quality; local snapshot; ordinary differential equations; partial system dynamics; practical identifiability analysis; relatively larger state space; state trajectories; structural identifiability analysis; system biology; yeast fermentation pathway;
fLanguage :
English
Journal_Title :
Systems Biology, IET
Publisher :
iet
ISSN :
1751-8849
Type :
jour
DOI :
10.1049/iet-syb.2015.0014
Filename :
7331751
Link To Document :
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