A Spatiotemporal DNA endoploidy map of the arabidopsis root Reveals roles for the endocycle in root development and stress adaptation

Archive ouverte

Bhosale, Rahul | Boudolf, Véronique | Cuevas, Fabiola | Lu, Ran | Eekhout, Thomas | Hu, Zhubing | van Isterdael, Gert | Lambert, Georgina M. | Xu, Fan | Nowack, Moritz K. | Smith, Richard | Vercauteren, Ilse | de Rycke, Riet | Storme, Véronique | Beeckman, Tom | Larkin, John C. | Kremer, Anna | Höfte, Herman | Galbraith, David W. | Kumpf, Robert P. | Maere, Steven | de Veylder, Lieven

Edité par CCSD ; American Society of Plant Biologists (ASPB) -

International audience. Somatic polyploidy caused by endoreplication is observed in arthropods, molluscs, and vertebrates but is especially prominent in higher plants, where it has been postulated to be essential for cell growth and fate maintenance. However, a comprehensive understanding of the physiological significance of plant endopolyploidy has remained elusive. Here, we modeled and experimentally verified a high-resolution DNA endoploidy map of the developing Arabidopsis thaliana root, revealing a remarkable spatiotemporal control of DNA endoploidy levels across tissues. Fitting of a simplified model to publicly available data sets profiling root gene expression under various environmental stress conditions suggested that this root endoploidy patterning may be stress-responsive. Furthermore, cellular and transcriptomic analyses revealed that inhibition of endoreplication onset alters the nuclear-to-cellular volume ratio and the expression of cell wall-modifying genes, in correlation with the appearance of cell structural changes. Our data indicate that endopolyploidy might serve to coordinate cell expansion with structural stability and that spatiotemporal endoreplication pattern changes may buffer for stress conditions, which may explain the widespread occurrence of the endocycle in plant species growing in extreme or variable environments.

Consulter en ligne

Suggestions

Du même auteur

Targeted interactomics reveals a complex core cell cycle machinery in Arabidopsis thaliana

Archive ouverte | van Leene, Jelle | CCSD

Cell proliferation is the main driving force for plant growth. Although genome sequence analysis revealed a high number of cell cycle genes in plants, little is known about the molecular complexes steering cell division. In a targ...

Distinctive and complementary roles of E2F transcription factors during plant replication stress responses

Archive ouverte | Nisa, Maherun | CCSD

International audience. Survival of living organisms is fully dependent on their maintenance of genome integrity, being permanently threatened by replication stress in proliferating cells. Although the plant DNA dam...

Arabidopsis casein kinase 2 triggers stem cell exhaustion under Al toxicity and phosphate deficiency through activating the DNA damage response pathway

Archive ouverte | Wei, Pengliang | CCSD

International audience. Aluminum (Al) toxicity and inorganic phosphate (Pi) limitation are widespread chronic abiotic and mutually enhancing stresses that profoundly affect crop yield. Both stresses strongly inhibit...

Chargement des enrichissements...