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Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated

Overexpression of the anti-apoptotic protein MCL-1 is associated with a plethora of human cancers, and it reduces the sensitivity of cancer cells to approved chemotherapies. Accordingly, the discovery of MCL-1 inhibitors is an active area of interest. Many inhibitors of the anti-apoptotic MCL-1 prot...

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Autores principales: Chen, Lijia, Lowe, Brandon, Fletcher, Steven
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10664828/
https://www.ncbi.nlm.nih.gov/pubmed/38024975
http://dx.doi.org/10.1039/d3ra05711a
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author Chen, Lijia
Lowe, Brandon
Fletcher, Steven
author_facet Chen, Lijia
Lowe, Brandon
Fletcher, Steven
author_sort Chen, Lijia
collection PubMed
description Overexpression of the anti-apoptotic protein MCL-1 is associated with a plethora of human cancers, and it reduces the sensitivity of cancer cells to approved chemotherapies. Accordingly, the discovery of MCL-1 inhibitors is an active area of interest. Many inhibitors of the anti-apoptotic MCL-1 protein bear a crucial carboxylic acid that may engage Arg263 in the BH3-binding groove. We previously described the salicylic acid-based dual MCL-1/BCL-x(L) inhibitor 17cd, which is currently undergoing lead optimization. As part of that process, we wished to investigate bioisosteric replacement of 17cd's key carboxylic acid. Herein we describe the synthesis of a variety of analogues of a simpler analogue of 17cd presenting carboxylic acid surrogates. The acylsulfonamide and tetrazole motifs, which exhibit comparable pK(a)s to the carboxylic acid function, displayed similar, or better, binding affinities to MCL-1 and BCL-x(L) as the corresponding carboxylic acid-containing lead. Our best compound was acylsulfonamide 7d with a K(i) of 800 nM against MCL-1 and 1.82 mM against BCL-x(L), and demonstrated an improved effect on the viability of the HL60 acute myeloid leukemia cell line relative to the parent carboxylic acid-containing dual inhibitor from which it was derived.
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spelling pubmed-106648282023-11-22 Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated Chen, Lijia Lowe, Brandon Fletcher, Steven RSC Adv Chemistry Overexpression of the anti-apoptotic protein MCL-1 is associated with a plethora of human cancers, and it reduces the sensitivity of cancer cells to approved chemotherapies. Accordingly, the discovery of MCL-1 inhibitors is an active area of interest. Many inhibitors of the anti-apoptotic MCL-1 protein bear a crucial carboxylic acid that may engage Arg263 in the BH3-binding groove. We previously described the salicylic acid-based dual MCL-1/BCL-x(L) inhibitor 17cd, which is currently undergoing lead optimization. As part of that process, we wished to investigate bioisosteric replacement of 17cd's key carboxylic acid. Herein we describe the synthesis of a variety of analogues of a simpler analogue of 17cd presenting carboxylic acid surrogates. The acylsulfonamide and tetrazole motifs, which exhibit comparable pK(a)s to the carboxylic acid function, displayed similar, or better, binding affinities to MCL-1 and BCL-x(L) as the corresponding carboxylic acid-containing lead. Our best compound was acylsulfonamide 7d with a K(i) of 800 nM against MCL-1 and 1.82 mM against BCL-x(L), and demonstrated an improved effect on the viability of the HL60 acute myeloid leukemia cell line relative to the parent carboxylic acid-containing dual inhibitor from which it was derived. The Royal Society of Chemistry 2023-11-22 /pmc/articles/PMC10664828/ /pubmed/38024975 http://dx.doi.org/10.1039/d3ra05711a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Chen, Lijia
Lowe, Brandon
Fletcher, Steven
Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title_full Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title_fullStr Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title_full_unstemmed Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title_short Tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual MCL-1/BCL-x(L) inhibitor are tolerated
title_sort tetrazole and acylsulfonamide bioisosteric replacements of the carboxylic acid in a dual mcl-1/bcl-x(l) inhibitor are tolerated
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10664828/
https://www.ncbi.nlm.nih.gov/pubmed/38024975
http://dx.doi.org/10.1039/d3ra05711a
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