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Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance
The evolution and growth of multiple-herbicide resistance (MHR) in grass weeds continues to threaten global cereal production. While various processes can contribute to resistance, earlier work has identified the phi class glutathione-S-transferase (AmGSTF1) as a functional biomarker of MHR in black...
Autores principales: | , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8564858/ https://www.ncbi.nlm.nih.gov/pubmed/34643629 http://dx.doi.org/10.1039/d1ob01802g |
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author | Schwarz, Maria Eno, Rebecca F. M. Freitag-Pohl, Stefanie Coxon, Christopher R. Straker, Hannah E. Wortley, David J. Hughes, David J. Mitchell, Glynn Moore, Jenny Cummins, Ian Onkokesung, Nawaporn Brazier-Hicks, Melissa Edwards, Robert Pohl, Ehmke Steel, Patrick G. |
author_facet | Schwarz, Maria Eno, Rebecca F. M. Freitag-Pohl, Stefanie Coxon, Christopher R. Straker, Hannah E. Wortley, David J. Hughes, David J. Mitchell, Glynn Moore, Jenny Cummins, Ian Onkokesung, Nawaporn Brazier-Hicks, Melissa Edwards, Robert Pohl, Ehmke Steel, Patrick G. |
author_sort | Schwarz, Maria |
collection | PubMed |
description | The evolution and growth of multiple-herbicide resistance (MHR) in grass weeds continues to threaten global cereal production. While various processes can contribute to resistance, earlier work has identified the phi class glutathione-S-transferase (AmGSTF1) as a functional biomarker of MHR in black-grass (Alopecurus myosuroides). This study provides further insights into the role of AmGSTF1 in MHR using a combination of chemical and structural biology. Crystal structures of wild-type AmGSTF1, together with two specifically designed variants that allowed the co-crystal structure determination with glutathione and a glutathione adduct of the AmGSTF1 inhibitor 4-chloro-7-nitro-benzofurazan (NBD-Cl) were obtained. These studies demonstrated that the inhibitory activity of NBD-Cl was associated with the occlusion of the active site and the impediment of substrate binding. A search for other selective inhibitors of AmGSTF1, using ligand-fishing experiments, identified a number of flavonoids as potential ligands. Subsequent experiments using black-grass extracts discovered a specific flavonoid as a natural ligand of the recombinant enzyme. A series of related synthetic flavonoids was prepared and their binding to AmGSTF1 was investigated showing a high affinity for derivatives bearing a O-5-decyl-α-carboxylate. Molecular modelling based on high-resolution crystal structures allowed a binding pose to be defined which explained flavonoid binding specificity. Crucially, high binding affinity was linked to a reversal of the herbicide resistance phenotype in MHR black-grass. Collectively, these results present a nature-inspired new lead for the development of herbicide synergists to counteract MHR in weeds. |
format | Online Article Text |
id | pubmed-8564858 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-85648582021-11-09 Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance Schwarz, Maria Eno, Rebecca F. M. Freitag-Pohl, Stefanie Coxon, Christopher R. Straker, Hannah E. Wortley, David J. Hughes, David J. Mitchell, Glynn Moore, Jenny Cummins, Ian Onkokesung, Nawaporn Brazier-Hicks, Melissa Edwards, Robert Pohl, Ehmke Steel, Patrick G. Org Biomol Chem Chemistry The evolution and growth of multiple-herbicide resistance (MHR) in grass weeds continues to threaten global cereal production. While various processes can contribute to resistance, earlier work has identified the phi class glutathione-S-transferase (AmGSTF1) as a functional biomarker of MHR in black-grass (Alopecurus myosuroides). This study provides further insights into the role of AmGSTF1 in MHR using a combination of chemical and structural biology. Crystal structures of wild-type AmGSTF1, together with two specifically designed variants that allowed the co-crystal structure determination with glutathione and a glutathione adduct of the AmGSTF1 inhibitor 4-chloro-7-nitro-benzofurazan (NBD-Cl) were obtained. These studies demonstrated that the inhibitory activity of NBD-Cl was associated with the occlusion of the active site and the impediment of substrate binding. A search for other selective inhibitors of AmGSTF1, using ligand-fishing experiments, identified a number of flavonoids as potential ligands. Subsequent experiments using black-grass extracts discovered a specific flavonoid as a natural ligand of the recombinant enzyme. A series of related synthetic flavonoids was prepared and their binding to AmGSTF1 was investigated showing a high affinity for derivatives bearing a O-5-decyl-α-carboxylate. Molecular modelling based on high-resolution crystal structures allowed a binding pose to be defined which explained flavonoid binding specificity. Crucially, high binding affinity was linked to a reversal of the herbicide resistance phenotype in MHR black-grass. Collectively, these results present a nature-inspired new lead for the development of herbicide synergists to counteract MHR in weeds. The Royal Society of Chemistry 2021-10-13 /pmc/articles/PMC8564858/ /pubmed/34643629 http://dx.doi.org/10.1039/d1ob01802g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/ |
spellingShingle | Chemistry Schwarz, Maria Eno, Rebecca F. M. Freitag-Pohl, Stefanie Coxon, Christopher R. Straker, Hannah E. Wortley, David J. Hughes, David J. Mitchell, Glynn Moore, Jenny Cummins, Ian Onkokesung, Nawaporn Brazier-Hicks, Melissa Edwards, Robert Pohl, Ehmke Steel, Patrick G. Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title | Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title_full | Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title_fullStr | Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title_full_unstemmed | Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title_short | Flavonoid-based inhibitors of the Phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
title_sort | flavonoid-based inhibitors of the phi-class glutathione transferase from black-grass to combat multiple herbicide resistance |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8564858/ https://www.ncbi.nlm.nih.gov/pubmed/34643629 http://dx.doi.org/10.1039/d1ob01802g |
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