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Differential Equation Based Reverse-Engineering Algorithms: Pros and Cons

Chapter
Publication Date:
2013
abstract:
Ordinary Differential Equations (ODEs) represent a deterministic approach to model gene regulatory networks. ODEs can be used to model changes in gene transcription induced by an external perturbation, such as gene overexpression/downregulation or treatment with a drug. Reverse-engineering algorithms based on ODEs require a choice of a functional form describing the effect of a regulator on its target genes. Here, we focused on an ODE-based reverse engineering algorithm named Network Identification by multiple Regression (NIR) which is rooted on the hypothesis that the regulation exerted by one gene (i.e., a TF) on a target gene can be approximated by a linear function, i.e., the transcription rate of the target gene is proportional to the amount of TF. NIR uses steady-state gene expression measurements and requires knowledge of the genes perturbed in each experiment. We showed that even if originally NIR was created for a different purpose, it can be successfully used to infer gene regulation from an integrated genotype and phenotype dataset. Our results provide evidence of the feasibility of applying reverse-engineering algorithms, such as NIR, to infer gene regulatory networks by integrated analysis of genotype and phenotype.
Iris type:
02.01 Contributo in volume (Capitolo o Saggio)
Keywords:
ODE; Reverse engineering; Gene networks
List of contributors:
Gregoretti, Francesco; Oliva, Gennaro
Authors of the University:
GREGORETTI FRANCESCO
Handle:
https://iris.cnr.it/handle/20.500.14243/261101
Book title:
Gene Network Inference: Verification of Methods for Systems Genetics Data
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URL

http://dx.doi.org/10.1007/978-3-642-45161-4_4
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