Deep learning approaches for pre-clinical drug discovery

<p>Deep learning methods have experienced a revolution, driven by their successful application in fields such as computer vision and natural language processing. In this thesis, we describe several novel methodologies leveraging deep learning for applications to pre-clinical drug discovery.<...

Full description

Bibliographic Details
Main Author: Imrie, FM
Other Authors: van der Schaar, M
Format: Thesis
Language:English
Published: 2021
Subjects:
_version_ 1797054515145342976
author Imrie, FM
author2 van der Schaar, M
author_facet van der Schaar, M
Imrie, FM
author_sort Imrie, FM
collection OXFORD
description <p>Deep learning methods have experienced a revolution, driven by their successful application in fields such as computer vision and natural language processing. In this thesis, we describe several novel methodologies leveraging deep learning for applications to pre-clinical drug discovery.</p> <p>First, we propose a generative approach to the design of molecular linkers which incorporates basic 3D information. In large-scale tests, we find that our method substantially outperforms a database-based approach, the previous de facto approach for this problem. Through a series of case studies, we demonstrate the application of our approach to scaffold hopping, fragment linking and PROTAC design. We then extend this framework to incorporate physically meaningful 3D structural information, providing a richer prior for the generative process, and also apply our method to molecular elaboration tasks, such as R-group design. </p> <p>We then turn our attention to predictive modelling, in particular structure-based virtual screening. We find that the advances in convolutional neural networks (CNNs) for general computer vision tasks are applicable to structure based virtual screening. In addition, we propose two techniques to incorporate domain-specific knowledge into this framework. First, we show that limitations in docking necessitate the use of multi-pose scoring and demonstrate the benefits of an average scoring policy. Second, we propose a transfer learning approach to construct protein family specific models, utilising knowledge of the differences between protein families.</p> <p>Finally, we investigate how a generative approach can be used to improve the training and benchmarks sets employed in structure-based virtual screening. We propose a deep learning method that generates decoys to a user’s preferred specification in order to control decoy bias or construct sets with a defined bias. We show that our approach significantly reduces the bias contained in such sets. We validate that our generated molecules are more challenging for docking-based approaches to separate from bioactive compounds than previous decoys. In addition, we show that CNN-based structure-based virtual screening methods can be trained on such compounds.</p>
first_indexed 2024-03-06T18:58:16Z
format Thesis
id oxford-uuid:129fee63-66e6-45f7-b962-dddafaa7ff5d
institution University of Oxford
language English
last_indexed 2024-03-06T18:58:16Z
publishDate 2021
record_format dspace
spelling oxford-uuid:129fee63-66e6-45f7-b962-dddafaa7ff5d2022-03-26T10:08:58ZDeep learning approaches for pre-clinical drug discoveryThesishttp://purl.org/coar/resource_type/c_db06uuid:129fee63-66e6-45f7-b962-dddafaa7ff5dMachine learningComputer aided drug designComputational chemistryEnglishHyrax Deposit2021Imrie, FMvan der Schaar, MBradley, ARDeane, C<p>Deep learning methods have experienced a revolution, driven by their successful application in fields such as computer vision and natural language processing. In this thesis, we describe several novel methodologies leveraging deep learning for applications to pre-clinical drug discovery.</p> <p>First, we propose a generative approach to the design of molecular linkers which incorporates basic 3D information. In large-scale tests, we find that our method substantially outperforms a database-based approach, the previous de facto approach for this problem. Through a series of case studies, we demonstrate the application of our approach to scaffold hopping, fragment linking and PROTAC design. We then extend this framework to incorporate physically meaningful 3D structural information, providing a richer prior for the generative process, and also apply our method to molecular elaboration tasks, such as R-group design. </p> <p>We then turn our attention to predictive modelling, in particular structure-based virtual screening. We find that the advances in convolutional neural networks (CNNs) for general computer vision tasks are applicable to structure based virtual screening. In addition, we propose two techniques to incorporate domain-specific knowledge into this framework. First, we show that limitations in docking necessitate the use of multi-pose scoring and demonstrate the benefits of an average scoring policy. Second, we propose a transfer learning approach to construct protein family specific models, utilising knowledge of the differences between protein families.</p> <p>Finally, we investigate how a generative approach can be used to improve the training and benchmarks sets employed in structure-based virtual screening. We propose a deep learning method that generates decoys to a user’s preferred specification in order to control decoy bias or construct sets with a defined bias. We show that our approach significantly reduces the bias contained in such sets. We validate that our generated molecules are more challenging for docking-based approaches to separate from bioactive compounds than previous decoys. In addition, we show that CNN-based structure-based virtual screening methods can be trained on such compounds.</p>
spellingShingle Machine learning
Computer aided drug design
Computational chemistry
Imrie, FM
Deep learning approaches for pre-clinical drug discovery
title Deep learning approaches for pre-clinical drug discovery
title_full Deep learning approaches for pre-clinical drug discovery
title_fullStr Deep learning approaches for pre-clinical drug discovery
title_full_unstemmed Deep learning approaches for pre-clinical drug discovery
title_short Deep learning approaches for pre-clinical drug discovery
title_sort deep learning approaches for pre clinical drug discovery
topic Machine learning
Computer aided drug design
Computational chemistry
work_keys_str_mv AT imriefm deeplearningapproachesforpreclinicaldrugdiscovery