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Merging C(sp(3))–H activation with DNA-encoding

DNA-encoded library (DEL) technology has the potential to dramatically expedite hit identification in drug discovery owing to its ability to perform protein affinity selection with millions or billions of molecules in a few experiments. To expand the molecular diversity of DEL, it is critical to dev...

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Autores principales: Fan, Zhoulong, Zhao, Shuai, Liu, Tao, Shen, Peng-Xiang, Cui, Zi-Ning, Zhuang, Zhe, Shao, Qian, Chen, Jason S., Ratnayake, Anokha S., Flanagan, Mark E., Kölmel, Dominik K., Piotrowski, David W., Richardson, Paul, Yu, Jin-Quan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162953/
https://www.ncbi.nlm.nih.gov/pubmed/34094436
http://dx.doi.org/10.1039/d0sc03935g
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author Fan, Zhoulong
Zhao, Shuai
Liu, Tao
Shen, Peng-Xiang
Cui, Zi-Ning
Zhuang, Zhe
Shao, Qian
Chen, Jason S.
Ratnayake, Anokha S.
Flanagan, Mark E.
Kölmel, Dominik K.
Piotrowski, David W.
Richardson, Paul
Yu, Jin-Quan
author_facet Fan, Zhoulong
Zhao, Shuai
Liu, Tao
Shen, Peng-Xiang
Cui, Zi-Ning
Zhuang, Zhe
Shao, Qian
Chen, Jason S.
Ratnayake, Anokha S.
Flanagan, Mark E.
Kölmel, Dominik K.
Piotrowski, David W.
Richardson, Paul
Yu, Jin-Quan
author_sort Fan, Zhoulong
collection PubMed
description DNA-encoded library (DEL) technology has the potential to dramatically expedite hit identification in drug discovery owing to its ability to perform protein affinity selection with millions or billions of molecules in a few experiments. To expand the molecular diversity of DEL, it is critical to develop different types of DNA-encoded transformations that produce billions of molecules with distinct molecular scaffolds. Sequential functionalization of multiple C–H bonds provides a unique avenue for creating diversity and complexity from simple starting materials. However, the use of water as solvent, the presence of DNA, and the extremely low concentration of DNA-encoded coupling partners (0.001 M) have hampered the development of DNA-encoded C(sp(3))–H activation reactions. Herein, we report the realization of palladium-catalyzed C(sp(3))–H arylation of aliphatic carboxylic acids, amides and ketones with DNA-encoded aryl iodides in water. Notably, the present method enables the use of alternative sets of monofunctional building blocks, providing a linchpin to facilitate further setup for DELs. Furthermore, the C–H arylation chemistry enabled the on-DNA synthesis of structurally-diverse scaffolds containing enriched C(sp(3)) character, chiral centers, cyclopropane, cyclobutane, and heterocycles.
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spelling pubmed-81629532021-06-04 Merging C(sp(3))–H activation with DNA-encoding Fan, Zhoulong Zhao, Shuai Liu, Tao Shen, Peng-Xiang Cui, Zi-Ning Zhuang, Zhe Shao, Qian Chen, Jason S. Ratnayake, Anokha S. Flanagan, Mark E. Kölmel, Dominik K. Piotrowski, David W. Richardson, Paul Yu, Jin-Quan Chem Sci Chemistry DNA-encoded library (DEL) technology has the potential to dramatically expedite hit identification in drug discovery owing to its ability to perform protein affinity selection with millions or billions of molecules in a few experiments. To expand the molecular diversity of DEL, it is critical to develop different types of DNA-encoded transformations that produce billions of molecules with distinct molecular scaffolds. Sequential functionalization of multiple C–H bonds provides a unique avenue for creating diversity and complexity from simple starting materials. However, the use of water as solvent, the presence of DNA, and the extremely low concentration of DNA-encoded coupling partners (0.001 M) have hampered the development of DNA-encoded C(sp(3))–H activation reactions. Herein, we report the realization of palladium-catalyzed C(sp(3))–H arylation of aliphatic carboxylic acids, amides and ketones with DNA-encoded aryl iodides in water. Notably, the present method enables the use of alternative sets of monofunctional building blocks, providing a linchpin to facilitate further setup for DELs. Furthermore, the C–H arylation chemistry enabled the on-DNA synthesis of structurally-diverse scaffolds containing enriched C(sp(3)) character, chiral centers, cyclopropane, cyclobutane, and heterocycles. The Royal Society of Chemistry 2020-09-07 /pmc/articles/PMC8162953/ /pubmed/34094436 http://dx.doi.org/10.1039/d0sc03935g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Fan, Zhoulong
Zhao, Shuai
Liu, Tao
Shen, Peng-Xiang
Cui, Zi-Ning
Zhuang, Zhe
Shao, Qian
Chen, Jason S.
Ratnayake, Anokha S.
Flanagan, Mark E.
Kölmel, Dominik K.
Piotrowski, David W.
Richardson, Paul
Yu, Jin-Quan
Merging C(sp(3))–H activation with DNA-encoding
title Merging C(sp(3))–H activation with DNA-encoding
title_full Merging C(sp(3))–H activation with DNA-encoding
title_fullStr Merging C(sp(3))–H activation with DNA-encoding
title_full_unstemmed Merging C(sp(3))–H activation with DNA-encoding
title_short Merging C(sp(3))–H activation with DNA-encoding
title_sort merging c(sp(3))–h activation with dna-encoding
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162953/
https://www.ncbi.nlm.nih.gov/pubmed/34094436
http://dx.doi.org/10.1039/d0sc03935g
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