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Navigating chemical reaction space – application to DNA-encoded chemistry

Databases contain millions of reactions for compound synthesis, rendering selection of reactions for forward synthetic design of small molecule screening libraries, such as DNA-encoded libraries (DELs), a big data challenge. To support reaction space navigation, we developed the computational workfl...

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Autores principales: Chines, Silvia, Ehrt, Christiane, Potowski, Marco, Biesenkamp, Felix, Grützbach, Lars, Brunner, Susanne, van den Broek, Frederik, Bali, Shilpa, Ickstadt, Katja, Brunschweiger, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9517168/
https://www.ncbi.nlm.nih.gov/pubmed/36320474
http://dx.doi.org/10.1039/d2sc02474h
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author Chines, Silvia
Ehrt, Christiane
Potowski, Marco
Biesenkamp, Felix
Grützbach, Lars
Brunner, Susanne
van den Broek, Frederik
Bali, Shilpa
Ickstadt, Katja
Brunschweiger, Andreas
author_facet Chines, Silvia
Ehrt, Christiane
Potowski, Marco
Biesenkamp, Felix
Grützbach, Lars
Brunner, Susanne
van den Broek, Frederik
Bali, Shilpa
Ickstadt, Katja
Brunschweiger, Andreas
author_sort Chines, Silvia
collection PubMed
description Databases contain millions of reactions for compound synthesis, rendering selection of reactions for forward synthetic design of small molecule screening libraries, such as DNA-encoded libraries (DELs), a big data challenge. To support reaction space navigation, we developed the computational workflow Reaction Navigator. Reaction files from a large chemistry database were processed using the open-source KNIME Analytics Platform. Initial processing steps included a customizable filtering cascade that removed reactions with a high probability to be incompatible with DEL, as they would e.g. damage the genetic barcode, to arrive at a comprehensive list of transformations for DEL design with applicability potential. These reactions were displayed and clustered by user-defined molecular reaction descriptors which are independent of reaction core substitution patterns. Thanks to clustering, these can be searched manually to identify reactions for DEL synthesis according to desired reaction criteria, such as ring formation or sp(3) content. The workflow was initially applied for mapping chemical reaction space for aromatic aldehydes as an exemplary functional group often used in DEL synthesis. Exemplary reactions have been successfully translated to DNA-tagged substrates and can be applied to library synthesis. The versatility of the Reaction Navigator was then shown by mapping reaction space for different reaction conditions, for amines as a second set of starting materials, and for data from a second database.
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spelling pubmed-95171682022-10-31 Navigating chemical reaction space – application to DNA-encoded chemistry Chines, Silvia Ehrt, Christiane Potowski, Marco Biesenkamp, Felix Grützbach, Lars Brunner, Susanne van den Broek, Frederik Bali, Shilpa Ickstadt, Katja Brunschweiger, Andreas Chem Sci Chemistry Databases contain millions of reactions for compound synthesis, rendering selection of reactions for forward synthetic design of small molecule screening libraries, such as DNA-encoded libraries (DELs), a big data challenge. To support reaction space navigation, we developed the computational workflow Reaction Navigator. Reaction files from a large chemistry database were processed using the open-source KNIME Analytics Platform. Initial processing steps included a customizable filtering cascade that removed reactions with a high probability to be incompatible with DEL, as they would e.g. damage the genetic barcode, to arrive at a comprehensive list of transformations for DEL design with applicability potential. These reactions were displayed and clustered by user-defined molecular reaction descriptors which are independent of reaction core substitution patterns. Thanks to clustering, these can be searched manually to identify reactions for DEL synthesis according to desired reaction criteria, such as ring formation or sp(3) content. The workflow was initially applied for mapping chemical reaction space for aromatic aldehydes as an exemplary functional group often used in DEL synthesis. Exemplary reactions have been successfully translated to DNA-tagged substrates and can be applied to library synthesis. The versatility of the Reaction Navigator was then shown by mapping reaction space for different reaction conditions, for amines as a second set of starting materials, and for data from a second database. The Royal Society of Chemistry 2022-09-01 /pmc/articles/PMC9517168/ /pubmed/36320474 http://dx.doi.org/10.1039/d2sc02474h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chines, Silvia
Ehrt, Christiane
Potowski, Marco
Biesenkamp, Felix
Grützbach, Lars
Brunner, Susanne
van den Broek, Frederik
Bali, Shilpa
Ickstadt, Katja
Brunschweiger, Andreas
Navigating chemical reaction space – application to DNA-encoded chemistry
title Navigating chemical reaction space – application to DNA-encoded chemistry
title_full Navigating chemical reaction space – application to DNA-encoded chemistry
title_fullStr Navigating chemical reaction space – application to DNA-encoded chemistry
title_full_unstemmed Navigating chemical reaction space – application to DNA-encoded chemistry
title_short Navigating chemical reaction space – application to DNA-encoded chemistry
title_sort navigating chemical reaction space – application to dna-encoded chemistry
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9517168/
https://www.ncbi.nlm.nih.gov/pubmed/36320474
http://dx.doi.org/10.1039/d2sc02474h
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