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  AI for predicting chemical-effect associations at the chemical universe level – deepFPlearn

Schor, J., Scheibe, P., Bernt, M., Busch, W., Lai, C., & Hackermüller, J. (2022). AI for predicting chemical-effect associations at the chemical universe level – deepFPlearn. bioRxiv. doi:10.1101/2021.06.24.449697.

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アイテムのパーマリンク: https://hdl.handle.net/21.11116/0000-000B-4DF1-F 版のパーマリンク: https://hdl.handle.net/21.11116/0000-000C-EA22-6
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 作成者:
Schor, Jana, 著者
Scheibe, Patrick1, 2, 3, 著者           
Bernt, Matthias, 著者
Busch, Wibke, 著者
Lai, Chih, 著者
Hackermüller, Jörg, 著者
所属:
1Department Neurophysics, MPI for Human Cognitive and Brain Sciences, Max Planck Society, ou_634550              
2External Organizations, ou_persistent22              
3Department Neurophysics (Weiskopf), MPI for Human Cognitive and Brain Sciences, Max Planck Society, ou_2205649              

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 要旨: Many chemicals are out there in our environment, and all living species are exposed. However, numerous chemicals pose risks, such as developing severe diseases, if they occur at the wrong time in the wrong place. For the majority of the chemicals, these risks are not known. Chemical risk assessment and subsequent regulation of use require efficient and systematic strategies. Lab-based methods – even if high throughput – are too slow to keep up with the pace of chemical innovation. Existing computational approaches are designed for specific chemical classes or sub-problems but not usable on a large scale. Further, the application range of these approaches is limited by the low amount of available labeled training data.We present the ready-to-use and stand-alone program deepFPlearn that predicts the association between chemical structures and effects on the gene/pathway level using a combined deep learning approach. deepFPlearn uses a deep autoencoder for feature reduction before training a deep feedforward neural network to predict the target association. We received good prediction qualities and showed that our feature compression preserves relevant chemical structural information. Using a vast chemical inventory (unlabeled data) as input for the autoencoder did not reduce our prediction quality but allowed capturing a much more comprehensive range of chemical structures. We predict meaningful - experimentally verified-associations of chemicals and effects on unseen data. deepFPlearn classifies hundreds of thousands of chemicals in seconds.We provide deepFPlearn as an open-source and flexible tool that can be easily retrained and customized to different application settings at https://github.com/yigbt/deepFPlearn.Supplementary information Supplementary data are available at bioRxiv online.Contact jana.schor{at}ufz.deCompeting Interest StatementThe authors have declared no competing interest.

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 日付: 2022-04-21
 出版の状態: オンラインで出版済み
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 識別子(DOI, ISBNなど): DOI: 10.1101/2021.06.24.449697
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出版物名: bioRxiv
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