Literature DB >> 34495484

Inferring Gene Regulatory Networks Using the Improved Markov Blanket Discovery Algorithm.

Wei Liu1,2, Yi Jiang1, Li Peng3, Xingen Sun1, Wenqing Gan1, Qi Zhao4, Huanrong Tang5.   

Abstract

Inferring gene regulatory networks (GRNs) from microarray data can help us understand the mechanisms of life and eventually develop effective therapies. Currently, many computational methods have been used in inferring GRNs. However, owing to high-dimensional data and small samples, these methods often tend to introduce redundant regulatory relationships. Therefore, a novel network inference method based on the improved Markov blanket discovery algorithm, IMBDANET, is proposed to infer GRNs. Specifically, for each target gene, data processing inequality was applied to the Markov blanket discovery algorithm for the accurate differentiation of direct regulatory genes from indirect regulatory genes. Finally, direct regulatory genes were used in constructing GRNs, and the network structure was optimized according to the importance degree score. Experimental results on six public network datasets show that the proposed method can be effectively used to infer GRNs.
© 2021. International Association of Scientists in the Interdisciplinary Areas.

Entities:  

Keywords:  Data processing inequality; Feature selection; Gene regulatory networks; Markov blanket

Mesh:

Year:  2021        PMID: 34495484     DOI: 10.1007/s12539-021-00478-9

Source DB:  PubMed          Journal:  Interdiscip Sci        ISSN: 1867-1462            Impact factor:   2.233


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