Cargando…

Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens

[Image: see text] With resistance to current agricultural fungicides rising, a great need has emerged for new antifungals with unexploited targets. In response, we report a novel series of diazaborines with potent activity against representative fungal plant pathogens. To identify their mode of acti...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Sang Hu, Steere, Luke, Zhang, Yong-Kang, McGregor, Cari, Hahne, Chris, Zhou, Yasheen, Liu, Chunliang, Cai, Yan, Zhou, Haibo, Chen, Xuefei, Puumala, Emily, Duncan, Dustin, Wright, Gerard D., Liu, C. Tony, Whitesell, Luke, Cowen, Leah E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9208374/
https://www.ncbi.nlm.nih.gov/pubmed/35584803
http://dx.doi.org/10.1021/acschembio.2c00257
_version_ 1784729726700486656
author Kim, Sang Hu
Steere, Luke
Zhang, Yong-Kang
McGregor, Cari
Hahne, Chris
Zhou, Yasheen
Liu, Chunliang
Cai, Yan
Zhou, Haibo
Chen, Xuefei
Puumala, Emily
Duncan, Dustin
Wright, Gerard D.
Liu, C. Tony
Whitesell, Luke
Cowen, Leah E.
author_facet Kim, Sang Hu
Steere, Luke
Zhang, Yong-Kang
McGregor, Cari
Hahne, Chris
Zhou, Yasheen
Liu, Chunliang
Cai, Yan
Zhou, Haibo
Chen, Xuefei
Puumala, Emily
Duncan, Dustin
Wright, Gerard D.
Liu, C. Tony
Whitesell, Luke
Cowen, Leah E.
author_sort Kim, Sang Hu
collection PubMed
description [Image: see text] With resistance to current agricultural fungicides rising, a great need has emerged for new antifungals with unexploited targets. In response, we report a novel series of diazaborines with potent activity against representative fungal plant pathogens. To identify their mode of action, we selected for resistant isolates using the model fungus Saccharomyces cerevisiae. Whole-genome sequencing of independent diazaborine-resistant lineages identified a recurring mutation in ERG25, which encodes a C-4 methyl sterol oxidase required for ergosterol biosynthesis in fungi. Haploinsufficiency and allele-swap experiments provided additional genetic evidence for Erg25 as the most biologically relevant target of our diazaborines. Confirming Erg25 as putative target, sterol profiling of compound-treated yeast revealed marked accumulation of the Erg25 substrate, 4,4-dimethylzymosterol and depletion of both its immediate product, zymosterol, as well as ergosterol. Encouraged by these mechanistic insights, the potential utility of targeting Erg25 with a diazaborine was demonstrated in soybean-rust and grape-rot models of fungal plant disease.
format Online
Article
Text
id pubmed-9208374
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-92083742023-05-18 Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens Kim, Sang Hu Steere, Luke Zhang, Yong-Kang McGregor, Cari Hahne, Chris Zhou, Yasheen Liu, Chunliang Cai, Yan Zhou, Haibo Chen, Xuefei Puumala, Emily Duncan, Dustin Wright, Gerard D. Liu, C. Tony Whitesell, Luke Cowen, Leah E. ACS Chem Biol [Image: see text] With resistance to current agricultural fungicides rising, a great need has emerged for new antifungals with unexploited targets. In response, we report a novel series of diazaborines with potent activity against representative fungal plant pathogens. To identify their mode of action, we selected for resistant isolates using the model fungus Saccharomyces cerevisiae. Whole-genome sequencing of independent diazaborine-resistant lineages identified a recurring mutation in ERG25, which encodes a C-4 methyl sterol oxidase required for ergosterol biosynthesis in fungi. Haploinsufficiency and allele-swap experiments provided additional genetic evidence for Erg25 as the most biologically relevant target of our diazaborines. Confirming Erg25 as putative target, sterol profiling of compound-treated yeast revealed marked accumulation of the Erg25 substrate, 4,4-dimethylzymosterol and depletion of both its immediate product, zymosterol, as well as ergosterol. Encouraged by these mechanistic insights, the potential utility of targeting Erg25 with a diazaborine was demonstrated in soybean-rust and grape-rot models of fungal plant disease. American Chemical Society 2022-05-18 2022-06-17 /pmc/articles/PMC9208374/ /pubmed/35584803 http://dx.doi.org/10.1021/acschembio.2c00257 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Kim, Sang Hu
Steere, Luke
Zhang, Yong-Kang
McGregor, Cari
Hahne, Chris
Zhou, Yasheen
Liu, Chunliang
Cai, Yan
Zhou, Haibo
Chen, Xuefei
Puumala, Emily
Duncan, Dustin
Wright, Gerard D.
Liu, C. Tony
Whitesell, Luke
Cowen, Leah E.
Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title_full Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title_fullStr Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title_full_unstemmed Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title_short Inhibiting C-4 Methyl Sterol Oxidase with Novel Diazaborines to Target Fungal Plant Pathogens
title_sort inhibiting c-4 methyl sterol oxidase with novel diazaborines to target fungal plant pathogens
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9208374/
https://www.ncbi.nlm.nih.gov/pubmed/35584803
http://dx.doi.org/10.1021/acschembio.2c00257
work_keys_str_mv AT kimsanghu inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT steereluke inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT zhangyongkang inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT mcgregorcari inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT hahnechris inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT zhouyasheen inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT liuchunliang inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT caiyan inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT zhouhaibo inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT chenxuefei inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT puumalaemily inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT duncandustin inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT wrightgerardd inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT liuctony inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT whitesellluke inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens
AT cowenleahe inhibitingc4methylsteroloxidasewithnoveldiazaborinestotargetfungalplantpathogens