Počet záznamů: 1  

Tree architecture: A strigolactone-deficient mutant reveals a connection between branching order and auxin gradient along the tree stem

  1. 1.
    0578863 - ÚEB 2024 RIV US eng J - Článek v odborném periodiku
    Su, C. - Kokosza, A. - Xie, X. - Pěnčík, Aleš - Zhang, Y. - Raumonen, P. - Shi, X. - Muranen, S. - Topcu, M. K. - Immanen, J. - Hagqvist, R. - Safronov, O. - Alonso-Serra, J. - Eswaran, G. - Venegas, M. P. - Ljung, K. - Ward, S. - Mähönen, A. P. - Himanen, K. - Salojarvi, J. - Fernie, A. R. - Novák, Ondřej - Leyser, O. - Palubicki, W. - Helariutta, Y. - Nieminen, K.
    Tree architecture: A strigolactone-deficient mutant reveals a connection between branching order and auxin gradient along the tree stem.
    Proceedings of the National Academy of Sciences of the United States of America. Roč. 120, č. 48 (2023), e2308587120. ISSN 0027-8424. E-ISSN 1091-6490
    Grant CEP: GA MŠMT(CZ) EF16_019/0000827
    Institucionální podpora: RVO:61389030
    Klíčová slova: Betula pendula * auxin distribution * branching modeling * tree architecture
    Obor OECD: Biochemistry and molecular biology
    Impakt faktor: 11.1, rok: 2022
    Způsob publikování: Open access
    https://doi.org/10.1073/pnas.2308587120

    Due to their long lifespan, trees and bushes develop higher order of branches in a perennial manner. In contrast to a tall tree, with a clearly defined main stem and branching order, a bush is shorter and has a less apparent main stem and branching pattern. To address the developmental basis of these two forms, we studied several naturally occurring architectural variants in silver birch (Betula pendula). Using a candidate gene approach, we identified a bushy kanttarelli variant with a loss-of-function mutation in the BpMAX1 gene required for strigolactone (SL) biosynthesis. While kanttarelli is shorter than the wild type (WT), it has the same number of primary branches, whereas the number of secondary branches is increased, contributing to its bush-like phenotype. To confirm that the identified mutation was responsible for the phenotype, we phenocopied kanttarelli in transgenic BpMAX1::RNAi birch lines. SL profiling confirmed that both kanttarelli and the transgenic lines produced very limited amounts of SL. Interestingly, the auxin (IAA) distribution along the main stem differed between WT and BpMAX1::RNAi. In the WT, the auxin concentration formed a gradient, being higher in the uppermost internodes and decreasing toward the basal part of the stem, whereas in the transgenic line, this gradient was not observed. Through modeling, we showed that the different IAA distribution patterns may result from the difference in the number of higher-order branches and plant height. Future studies will determine whether the IAA gradient itself regulates aspects of plant architecture.
    Trvalý link: https://hdl.handle.net/11104/0347778

     
     
Počet záznamů: 1  

  Tyto stránky využívají soubory cookies, které usnadňují jejich prohlížení. Další informace o tom jak používáme cookies.