Prediction of Pairwise Gene Interaction Using Threshold Logic
- 30 March 2009
- journal article
- Published by Wiley in Annals of the New York Academy of Sciences
- Vol. 1158 (1) , 276-286
- https://doi.org/10.1111/j.1749-6632.2008.03763.x
Abstract
The two important problems of computational biology are the modeling of gene regulatory networks and the study of the network structure of complex biological systems. There is an increased use of mathematical and computational theory techniques to solve both these problems. The Boolean circuit model is one of the most popular modeling paradigms used to model gene regulatory networks. In this paper we try to make use of the properties of threshold logic (an alternative to Boolean logic to design digital circuits) to determine the network structure of gene systems. This approach uses the gene‐expression data from microarray experiments as input. The proposed method was first used to build the gene network for a set of genes, proteins, and other molecular components based onin silicodata. Then, the method was applied to a biological dataset to build the gene regulatory network for a core set of genes associated with melanoma. Some of the interactions found could be verified by earlier biological experiments reported in published literature. Other interactions that could not be validated by existing biological knowledge can provide insights into the investigation of bio‐chemical pathways associated with melanoma development.Keywords
This publication has 35 references indexed in Scilit:
- THRESHOLD LOGIC GENE REGULATORY MODEL - Prediction of Dorsal-ventral Patterning and Hardware-based Simulation of DrosophilaPublished by INSTICC ,2008
- Threshold Logic Gene Regulatory NetworksPublished by Institute of Electrical and Electronics Engineers (IEEE) ,2007
- MODELING GENETIC REGULATORY NETWORKS: CONTINUOUS OR DISCRETE?Journal of Biological Systems, 2006
- A computational algebra approach to the reverse engineering of gene regulatory networksJournal of Theoretical Biology, 2004
- The Human Genome Project: Lessons from Large-Scale BiologyScience, 2003
- Modeling and Simulation of Genetic Regulatory Systems: A Literature ReviewJournal of Computational Biology, 2002
- The large-scale organization of metabolic networksNature, 2000
- Genetic network inference: from co-expression clustering to reverse engineeringBioinformatics, 2000
- Spectral techniques in digital logicSignal Processing, 1985
- Homeostasis and Differentiation in Random Genetic Control NetworksNature, 1969