作者
Hyun Woo Kim, Mingxun Wang, Christopher A Leber, Louis-Félix Nothias, Raphael Reher, Kyo Bin Kang, Justin JJ Van Der Hooft, Pieter C Dorrestein, William H Gerwick, Garrison W Cottrell
发表日期
2021/10/18
期刊
Journal of Natural Products
卷号
84
期号
11
页码范围
2795-2807
出版商
American Chemical Society and American Society of Pharmacognosy
简介
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 …
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