Literature DB >> 27048512

Neural model of gene regulatory network: a survey on supportive meta-heuristics.

Surama Biswas1, Sriyankar Acharyya2.   

Abstract

Gene regulatory network (GRN) is produced as a result of regulatory interactions between different genes through their coded proteins in cellular context. Having immense importance in disease detection and drug finding, GRN has been modelled through various mathematical and computational schemes and reported in survey articles. Neural and neuro-fuzzy models have been the focus of attraction in bioinformatics. Predominant use of meta-heuristic algorithms in training neural models has proved its excellence. Considering these facts, this paper is organized to survey neural modelling schemes of GRN and the efficacy of meta-heuristic algorithms towards parameter learning (i.e. weighting connections) within the model. This survey paper renders two different structure-related approaches to infer GRN which are global structure approach and substructure approach. It also describes two neural modelling schemes, such as artificial neural network/recurrent neural network based modelling and neuro-fuzzy modelling. The meta-heuristic algorithms applied so far to learn the structure and parameters of neutrally modelled GRN have been reviewed here.

Keywords:  Gene regulatory network; Meta-heuristic algorithm; Microarray gene expression data; Neuro-fuzzy modelling; Optimization; Recurrent neural network

Mesh:

Year:  2016        PMID: 27048512     DOI: 10.1007/s12064-016-0224-z

Source DB:  PubMed          Journal:  Theory Biosci        ISSN: 1431-7613            Impact factor:   1.919


  57 in total

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Authors: 
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3.  Modeling genetic regulatory dynamics in neural development.

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6.  Inferring gene regulatory networks from gene expression data by path consistency algorithm based on conditional mutual information.

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Journal:  Annu Rev Genomics Hum Genet       Date:  2008       Impact factor: 8.929

9.  Comparison of threshold selection methods for microarray gene co-expression matrices.

Authors:  Bhavesh R Borate; Elissa J Chesler; Michael A Langston; Arnold M Saxton; Brynn H Voy
Journal:  BMC Res Notes       Date:  2009-12-02

10.  Effective dimension reduction methods for tumor classification using gene expression data.

Authors:  A Antoniadis; S Lambert-Lacroix; F Leblanc
Journal:  Bioinformatics       Date:  2003-03-22       Impact factor: 6.937

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