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NPClassifier: A Deep Neural Network-Based Structural Classification Tool for Natural Products

Journal of Natural Products · 2021 · Vol. 84(11) · pp. 2795–2807
Hyun Woo KimMingxun WangChristopher A. LeberLouis‐Félix NothiasRaphael ReherKyo Bin KangJustin J. J. van der HooftPieter C. DorresteinWilliam H. GerwickGarrison W. Cottrell

Abstract

Computational approaches such as genome and metabolome mining are becoming essential to natural products (NPs) research. Consequently, a need exists for an automated structure-type classification system to handle the massive amounts of data appearing for NP structures. An ideal semantic ontology for the classification of NPs should go beyond the simple presence/absence of chemical substructures, but also include the taxonomy of the producing organism, the nature of the biosynthetic pathway, and/or their biological properties. Thus, a holistic and automatic NP classification framework could have considerable value to comprehensively navigate the relatedness of NPs, and especially so when analyzing large numbers of NPs. Here, we introduce NPClassifier, a deep-learning tool for the automated structural classification of NPs from their counted Morgan fingerprints. NPClassifier is expected to accelerate and enhance NP discovery by linking NP structures to their underlying properties.

Computational Drug Discovery MethodsMicrobial Natural Products and BiosynthesisPlant biochemistry and biosynthesisComputer scienceArtificial intelligenceOntologyArtificial neural networkComputational biologyMachine learningBiology

MeSH terms

Biological ProductsNeural Networks, ComputerBiosynthetic Pathways

Funding

  • Gordon and Betty Moore Foundation
  • Netherlands eScience Center
  • National Research Foundation of Korea
  • National Institute of General Medical Sciences
Citations
453
FWCI
38.16
field-weighted impact
References
59
Percentile
100%
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Citations per year
References
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