4.7 Article Proceedings Paper

Meta-network: optimized species-species network analysis for microbial communities

期刊

BMC GENOMICS
卷 20, 期 -, 页码 -

出版社

BMC
DOI: 10.1186/s12864-019-5471-1

关键词

Microbial network; Data-mining; Network analysis; Associate-rule mining

资金

  1. National Science Foundation of China [31871334, 31671374]
  2. Ministry of Science and Technology's high-tech (863) [2018YFC0910502]
  3. Sino-German Research Center [GZ878]

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BackgroundThe explosive growth of microbiome data provides ample opportunities to gain a better understanding of the microbes and their interactions in microbial communities. Given these massive data, optimized data mining methods become important and necessary to perform deep and comprehensive analysis. Among the various priorities for microbiome data mining, the examination of species-species co-occurrence patterns becomes one of the key themes in urgent need.ResultsHence, in this work, we propose the Meta-Network framework to lucubrate the microbial communities. Rooted in loose definitions of network (two species co-exist in a certain samples rather than all samples) as well as association rule mining (mining more complex forms of correlations like indirect correlation and mutual information), this framework outperforms other methods in restoring the microbial communities, based on two cohorts of microbial communities: (a) the loose definition strategy is capable to generate more reasonable relationships among species in the species-species co-occurrence network; (b) important species-species co-occurrence patterns could not be identified by other existing approaches, but could successfully generated by association rule mining.ConclusionsResults have shown that the species-species co-occurrence network we generated are much more informative than those based on traditional methods. Meta-Network has consistently constructed more meaningful networks with biologically important clusters, hubs, and provides a general approach towards deciphering the species-species co-occurrence networks.

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