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1.
Development ; 149(9)2022 05 01.
Article de Anglais | MEDLINE | ID: mdl-35394032

RÉSUMÉ

Shoot-borne adventitious/crown roots form a highly derived fibrous root system in grasses. The molecular mechanisms controlling their development remain largely unknown. Here, we provide a genome-wide landscape of transcriptional signatures - tightly regulated auxin response and in-depth spatio-temporal expression patterns of potential epigenetic modifiers - and transcription factors during priming and outgrowth of rice (Oryza sativa) crown root primordia. Functional analyses of rice transcription factors from WUSCHEL-RELATED HOMEOBOX and PLETHORA gene families reveal their non-redundant and species-specific roles in determining the root architecture. WOX10 and PLT1 regulate both shoot-borne crown roots and root-borne lateral roots, but PLT2 specifically controls lateral root development. PLT1 activates local auxin biosynthesis genes to promote crown root development. Interestingly, O. sativa PLT genes rescue lateral root primordia outgrowth defects of Arabidopsis plt mutants, demonstrating their conserved role in root primordia outgrowth irrespective of their developmental origin. Together, our findings unveil a molecular framework of tissue transdifferentiation during root primordia establishment, leading to the culmination of robust fibrous root architecture. This also suggests that conserved factors have evolved their transcription regulation to acquire species-specific function.


Sujet(s)
Arabidopsis , Oryza , Arabidopsis/métabolisme , Régulation de l'expression des gènes végétaux/génétique , Acides indolacétiques/métabolisme , Oryza/métabolisme , Protéines végétales/génétique , Protéines végétales/métabolisme , Racines de plante/métabolisme , Facteurs de transcription/génétique , Facteurs de transcription/métabolisme
2.
Development ; 147(6)2020 03 30.
Article de Anglais | MEDLINE | ID: mdl-32108025

RÉSUMÉ

Aerial organs of plants, being highly prone to local injuries, require tissue restoration to ensure their survival. However, knowledge of the underlying mechanism is sparse. In this study, we mimicked natural injuries in growing leaves and stems to study the reunion between mechanically disconnected tissues. We show that PLETHORA (PLT) and AINTEGUMENTA (ANT) genes, which encode stem cell-promoting factors, are activated and contribute to vascular regeneration in response to these injuries. PLT proteins bind to and activate the CUC2 promoter. PLT proteins and CUC2 regulate the transcription of the local auxin biosynthesis gene YUC4 in a coherent feed-forward loop, and this process is necessary to drive vascular regeneration. In the absence of this PLT-mediated regeneration response, leaf ground tissue cells can neither acquire the early vascular identity marker ATHB8, nor properly polarise auxin transporters to specify new venation paths. The PLT-CUC2 module is required for vascular regeneration, but is dispensable for midvein formation in leaves. We reveal the mechanisms of vascular regeneration in plants and distinguish between the wound-repair ability of the tissue and its formation during normal development.


Sujet(s)
Arabidopsis , Réseaux de régulation génique/physiologie , Feuilles de plante/physiologie , Tiges de plante/physiologie , Faisceau vasculaire des plantes/physiologie , Régénération/génétique , Arabidopsis/génétique , Arabidopsis/croissance et développement , Protéines d'Arabidopsis/génétique , Protéines d'Arabidopsis/métabolisme , Protéines d'Arabidopsis/physiologie , Régulation de l'expression des gènes végétaux , Acides indolacétiques/métabolisme , Protéines et peptides de signalisation intercellulaire/génétique , Protéines et peptides de signalisation intercellulaire/métabolisme , Mixed function oxygenases/génétique , Mixed function oxygenases/métabolisme , Développement des plantes/physiologie , Feuilles de plante/génétique , Feuilles de plante/croissance et développement , Tiges de plante/génétique , Tiges de plante/croissance et développement , Faisceau vasculaire des plantes/génétique , Végétaux génétiquement modifiés , Régions promotrices (génétique) , Transduction du signal/génétique , Facteurs de transcription/physiologie , Cicatrisation de plaie/génétique
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