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Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses

The strigolactone (SL) class of phytohormones shows broad chemical diversity, the functional importance of which remains to be fully elucidated, along with the enzymes responsible for the diversification of the SL structure. Here we explore the functional evolution of the highly conserved CYP711A P4...

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Autores principales: Vinde, Marcos H., Cao, Da, Chesterfield, Rebecca J., Yoneyama, Kaori, Gumulya, Yosephine, Thomson, Raine E. S., Matila, Tebogo, Ebert, Birgitta E., Beveridge, Christine A., Vickers, Claudia E., Gillam, Elizabeth M. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9544836/
https://www.ncbi.nlm.nih.gov/pubmed/35644901
http://dx.doi.org/10.1111/nph.18285
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author Vinde, Marcos H.
Cao, Da
Chesterfield, Rebecca J.
Yoneyama, Kaori
Gumulya, Yosephine
Thomson, Raine E. S.
Matila, Tebogo
Ebert, Birgitta E.
Beveridge, Christine A.
Vickers, Claudia E.
Gillam, Elizabeth M. J.
author_facet Vinde, Marcos H.
Cao, Da
Chesterfield, Rebecca J.
Yoneyama, Kaori
Gumulya, Yosephine
Thomson, Raine E. S.
Matila, Tebogo
Ebert, Birgitta E.
Beveridge, Christine A.
Vickers, Claudia E.
Gillam, Elizabeth M. J.
author_sort Vinde, Marcos H.
collection PubMed
description The strigolactone (SL) class of phytohormones shows broad chemical diversity, the functional importance of which remains to be fully elucidated, along with the enzymes responsible for the diversification of the SL structure. Here we explore the functional evolution of the highly conserved CYP711A P450 family, members of which catalyze several key monooxygenation reactions in the strigolactone pathway. Ancestral sequence reconstruction was utilized to infer ancestral CYP711A sequences based on a comprehensive set of extant CYP711 sequences. Eleven ancestral enzymes, corresponding to key points in the CYP711A phylogenetic tree, were resurrected and their activity was characterized towards the native substrate carlactone and the pure enantiomers of the synthetic strigolactone analogue, GR24. The ancestral and extant CYP711As tested accepted GR24 as a substrate and catalyzed several diversifying oxidation reactions on the structure. Evidence was obtained for functional divergence in the CYP711A family. The monocot group 3 ancestor, arising from gene duplication events within monocot grasses, showed both increased catalytic activity towards GR24 and high stereoselectivity towards the GR24 isomer resembling strigol‐type SLs. These results are consistent with a role for CYP711As in strigolactone diversification in early land plants, which may have extended to the diversification of strigol‐type SLs.
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spelling pubmed-95448362022-10-14 Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses Vinde, Marcos H. Cao, Da Chesterfield, Rebecca J. Yoneyama, Kaori Gumulya, Yosephine Thomson, Raine E. S. Matila, Tebogo Ebert, Birgitta E. Beveridge, Christine A. Vickers, Claudia E. Gillam, Elizabeth M. J. New Phytol Research The strigolactone (SL) class of phytohormones shows broad chemical diversity, the functional importance of which remains to be fully elucidated, along with the enzymes responsible for the diversification of the SL structure. Here we explore the functional evolution of the highly conserved CYP711A P450 family, members of which catalyze several key monooxygenation reactions in the strigolactone pathway. Ancestral sequence reconstruction was utilized to infer ancestral CYP711A sequences based on a comprehensive set of extant CYP711 sequences. Eleven ancestral enzymes, corresponding to key points in the CYP711A phylogenetic tree, were resurrected and their activity was characterized towards the native substrate carlactone and the pure enantiomers of the synthetic strigolactone analogue, GR24. The ancestral and extant CYP711As tested accepted GR24 as a substrate and catalyzed several diversifying oxidation reactions on the structure. Evidence was obtained for functional divergence in the CYP711A family. The monocot group 3 ancestor, arising from gene duplication events within monocot grasses, showed both increased catalytic activity towards GR24 and high stereoselectivity towards the GR24 isomer resembling strigol‐type SLs. These results are consistent with a role for CYP711As in strigolactone diversification in early land plants, which may have extended to the diversification of strigol‐type SLs. John Wiley and Sons Inc. 2022-06-25 2022-09 /pmc/articles/PMC9544836/ /pubmed/35644901 http://dx.doi.org/10.1111/nph.18285 Text en © 2022 The Authors. New Phytologist © 2022 New Phytologist Foundation. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research
Vinde, Marcos H.
Cao, Da
Chesterfield, Rebecca J.
Yoneyama, Kaori
Gumulya, Yosephine
Thomson, Raine E. S.
Matila, Tebogo
Ebert, Birgitta E.
Beveridge, Christine A.
Vickers, Claudia E.
Gillam, Elizabeth M. J.
Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title_full Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title_fullStr Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title_full_unstemmed Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title_short Ancestral sequence reconstruction of the CYP711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
title_sort ancestral sequence reconstruction of the cyp711 family reveals functional divergence in strigolactone biosynthetic enzymes associated with gene duplication events in monocot grasses
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9544836/
https://www.ncbi.nlm.nih.gov/pubmed/35644901
http://dx.doi.org/10.1111/nph.18285
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