JOURNAL ARTICLE

Reconstruction of Gene Regulatory Networks using Differential Evolution

Abstract

Gene Regulatory Network (GRN) is an abstract mapping of gene regulations in living cells that can help to predict the system behavior of living organisms. In this research, we use a model based inference method to reconstruct GRN from gene expression data. We use linear time variant model which is of particular interest among all other models because of its capability of discovering the non-linear interactions among genes in a reasonably short time even while dealing with noisy time-series data. Here, Differential Evolution (DE), a versatile, robust and well-known Evolutionary Algorithm (EA) has been used. The potency of the proposed method has been verified in gene network reconstruction experiments, varying the network dimension and characteristics, the amount of gene expression data used for inference, and the noise level present in gene expression profiles. Real expression dataset of SOS DNA repair system in Escherichia coli is used to reconstruct the regulatory network. All these experiments have proved the efficacy of the proposed reconstruction method.

Keywords:
Inference Gene regulatory network Computer science Data mining Expression (computer science) Dimension (graph theory) Noise (video) Gene Computational biology Artificial intelligence Machine learning Gene expression Biology Mathematics Genetics Image (mathematics)

Metrics

10
Cited By
0.43
FWCI (Field Weighted Citation Impact)
23
Refs
0.62
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Gene Regulatory Network Analysis
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Evolutionary Algorithms and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Gene expression and cancer classification
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology

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