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<scp>KEGG</scp> mapping tools for uncovering hidden features in biological data

Protein Science · 2021 · Vol. 31(1) · pp. 47–53
Minoru KanehisaYoko SatoMasayuki Kawashima

Abstract

In contrast to artificial intelligence and machine learning approaches, KEGG (https://www.kegg.jp) has relied on human intelligence to develop "models" of biological systems, especially in the form of KEGG pathway maps that are manually created by capturing knowledge from published literature. The KEGG models can then be used in biological big data analysis, for example, for uncovering systemic functions of an organism hidden in its genome sequence through the simple procedure of KEGG mapping. Here we present an updated version of KEGG Mapper, a suite of KEGG mapping tools reported previously (Kanehisa and Sato, Protein Sci 2020; 29:28-35), together with the new versions of the KEGG pathway map viewer and the BRITE hierarchy viewer. Significant enhancements have been made for BRITE mapping, where the mapping result can be examined by manipulation of hierarchical trees, such as pruning and zooming. The tree manipulation feature has also been implemented in the taxonomy mapping tool for linking KO (KEGG Orthology) groups and modules to phenotypes.

Genetics, Bioinformatics, and Biomedical ResearchBioinformatics and Genomic NetworksMachine Learning in BioinformaticsKEGGComputational biologyComputer scienceBiological dataBiologyBioinformaticsBiochemistryGene ontology

MeSH terms

Artificial IntelligenceSoftwareComputational BiologyDatabases, Genetic

Funding

  • Japan Science and Technology Agency
  • Institute for Chemical Research, Kyoto University
  • National Bioscience Database Center
Citations
705
FWCI
46.33
field-weighted impact
References
13
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100%
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References
KEGG: Kyoto Encyclopedia of Genes and Genomes
Nucleic Acids Research · 1999 · 32,330 citations
KEGG: Kyoto Encyclopedia of Genes and Genomes
Nucleic Acids Research · 2000 · 38,352 citations
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