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Recruitment of an ancient branching program to suppress carpel development in maize flowers

Carpels in maize undergo programmed cell death in half of the flowers initiated in ears and in all flowers in tassels. The HD-ZIP I transcription factor gene GRASSY TILLERS1 (GT1) is one of only a few genes known to regulate this process. To identify additional regulators of carpel suppression, we p...

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Autores principales: Klein, Harry, Gallagher, Joseph, Demesa-Arevalo, Edgar, Abraham-Juárez, María Jazmín, Heeney, Michelle, Feil, Regina, Lunn, John E., Xiao, Yuguo, Chuck, George, Whipple, Clinton, Jackson, David, Bartlett, Madelaine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8764674/
https://www.ncbi.nlm.nih.gov/pubmed/34996873
http://dx.doi.org/10.1073/pnas.2115871119
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author Klein, Harry
Gallagher, Joseph
Demesa-Arevalo, Edgar
Abraham-Juárez, María Jazmín
Heeney, Michelle
Feil, Regina
Lunn, John E.
Xiao, Yuguo
Chuck, George
Whipple, Clinton
Jackson, David
Bartlett, Madelaine
author_facet Klein, Harry
Gallagher, Joseph
Demesa-Arevalo, Edgar
Abraham-Juárez, María Jazmín
Heeney, Michelle
Feil, Regina
Lunn, John E.
Xiao, Yuguo
Chuck, George
Whipple, Clinton
Jackson, David
Bartlett, Madelaine
author_sort Klein, Harry
collection PubMed
description Carpels in maize undergo programmed cell death in half of the flowers initiated in ears and in all flowers in tassels. The HD-ZIP I transcription factor gene GRASSY TILLERS1 (GT1) is one of only a few genes known to regulate this process. To identify additional regulators of carpel suppression, we performed a gt1 enhancer screen and found a genetic interaction between gt1 and ramosa3 (ra3). RA3 is a classic inflorescence meristem determinacy gene that encodes a trehalose-6-phosphate (T6P) phosphatase (TPP). Dissection of floral development revealed that ra3 single mutants have partially derepressed carpels, whereas gt1;ra3 double mutants have completely derepressed carpels. Surprisingly, gt1 suppresses ra3 inflorescence branching, revealing a role for gt1 in meristem determinacy. Supporting these genetic interactions, GT1 and RA3 proteins colocalize to carpel nuclei in developing flowers. Global expression profiling revealed common genes misregulated in single and double mutant flowers, as well as in derepressed gt1 axillary meristems. Indeed, we found that ra3 enhances gt1 vegetative branching, similar to the roles for the trehalose pathway and GT1 homologs in the eudicots. This functional conservation over ∼160 million years of evolution reveals ancient roles for GT1-like genes and the trehalose pathway in regulating axillary meristem suppression, later recruited to mediate carpel suppression. Our findings expose hidden pleiotropy of classic maize genes and show how an ancient developmental program was redeployed to sculpt floral form.
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spelling pubmed-87646742022-01-26 Recruitment of an ancient branching program to suppress carpel development in maize flowers Klein, Harry Gallagher, Joseph Demesa-Arevalo, Edgar Abraham-Juárez, María Jazmín Heeney, Michelle Feil, Regina Lunn, John E. Xiao, Yuguo Chuck, George Whipple, Clinton Jackson, David Bartlett, Madelaine Proc Natl Acad Sci U S A Biological Sciences Carpels in maize undergo programmed cell death in half of the flowers initiated in ears and in all flowers in tassels. The HD-ZIP I transcription factor gene GRASSY TILLERS1 (GT1) is one of only a few genes known to regulate this process. To identify additional regulators of carpel suppression, we performed a gt1 enhancer screen and found a genetic interaction between gt1 and ramosa3 (ra3). RA3 is a classic inflorescence meristem determinacy gene that encodes a trehalose-6-phosphate (T6P) phosphatase (TPP). Dissection of floral development revealed that ra3 single mutants have partially derepressed carpels, whereas gt1;ra3 double mutants have completely derepressed carpels. Surprisingly, gt1 suppresses ra3 inflorescence branching, revealing a role for gt1 in meristem determinacy. Supporting these genetic interactions, GT1 and RA3 proteins colocalize to carpel nuclei in developing flowers. Global expression profiling revealed common genes misregulated in single and double mutant flowers, as well as in derepressed gt1 axillary meristems. Indeed, we found that ra3 enhances gt1 vegetative branching, similar to the roles for the trehalose pathway and GT1 homologs in the eudicots. This functional conservation over ∼160 million years of evolution reveals ancient roles for GT1-like genes and the trehalose pathway in regulating axillary meristem suppression, later recruited to mediate carpel suppression. Our findings expose hidden pleiotropy of classic maize genes and show how an ancient developmental program was redeployed to sculpt floral form. National Academy of Sciences 2022-01-07 2022-01-11 /pmc/articles/PMC8764674/ /pubmed/34996873 http://dx.doi.org/10.1073/pnas.2115871119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Klein, Harry
Gallagher, Joseph
Demesa-Arevalo, Edgar
Abraham-Juárez, María Jazmín
Heeney, Michelle
Feil, Regina
Lunn, John E.
Xiao, Yuguo
Chuck, George
Whipple, Clinton
Jackson, David
Bartlett, Madelaine
Recruitment of an ancient branching program to suppress carpel development in maize flowers
title Recruitment of an ancient branching program to suppress carpel development in maize flowers
title_full Recruitment of an ancient branching program to suppress carpel development in maize flowers
title_fullStr Recruitment of an ancient branching program to suppress carpel development in maize flowers
title_full_unstemmed Recruitment of an ancient branching program to suppress carpel development in maize flowers
title_short Recruitment of an ancient branching program to suppress carpel development in maize flowers
title_sort recruitment of an ancient branching program to suppress carpel development in maize flowers
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8764674/
https://www.ncbi.nlm.nih.gov/pubmed/34996873
http://dx.doi.org/10.1073/pnas.2115871119
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