A qualitative continuous model of cellular auxin and brassinosteroid signaling and their crosstalk

被引:25
|
作者
Sankar, Martial [1 ]
Osmont, Karen S. [1 ]
Rolcik, Jakub [2 ,3 ]
Gujas, Bojan [1 ]
Tarkowska, Danuse [2 ,3 ]
Strnad, Miroslav [2 ,3 ]
Xenarios, Ioannis [4 ]
Hardtke, Christian S. [1 ]
机构
[1] Univ Lausanne, Dept Plant Mol Biol, CH-1015 Lausanne, Switzerland
[2] Palacky Univ, Lab Growth Regulators, CZ-78371 Olomouc, Czech Republic
[3] Acad Sci Czech Republ, Inst Expt Bot, CZ-78371 Olomouc, Czech Republic
[4] Swiss Inst Bioinformat, CH-1015 Lausanne, Switzerland
基金
瑞士国家科学基金会;
关键词
BOX PROTEIN TIR1; ARABIDOPSIS; SPECIFICATION; TRANSPORT; FEEDBACK; PATTERN; GENES; FLOW; ARF;
D O I
10.1093/bioinformatics/btr158
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Motivation: Hormone pathway interactions are crucial in shaping plant development, such as synergism between the auxin and brassinosteroid pathways in cell elongation. Both hormone pathways have been characterized in detail, revealing several feedback loops. The complexity of this network, combined with a shortage of kinetic data, renders its quantitative analysis virtually impossible at present. Results: As a first step towards overcoming these obstacles, we analyzed the network using a Boolean logic approach to build models of auxin and brassinosteroid signaling, and their interaction. To compare these discrete dynamic models across conditions, we transformed them into qualitative continuous systems, which predict network component states more accurately and can accommodate kinetic data as they become available. To this end, we developed an extension for the SQUAD software, allowing semi-quantitative analysis of network states. Contrasting the developmental output depending on cell type-specific modulators enabled us to identify a most parsimonious model, which explains initially paradoxical mutant phenotypes and revealed a novel physiological feature.
引用
收藏
页码:1404 / 1412
页数:9
相关论文
共 32 条
  • [21] Crosstalk between ABA, auxin, MAPK signaling, and the cell cycle in cadmium-stressed rice seedlings
    Zhao, Feng Yun
    Wang, Kai
    Zhang, Shi Yong
    Ren, Jing
    Liu, Tao
    Wang, Xue
    ACTA PHYSIOLOGIAE PLANTARUM, 2014, 36 (07) : 1879 - 1892
  • [22] Brassinosteroid signaling converges with SUPPRESSOR OF PHYTOCHROME B4-#3 to influence the expression of SMALL AUXIN UP RNA genes and hypocotyl growth
    Favero, David S.
    Le, Kimberly Ngan
    Neff, Michael M.
    PLANT JOURNAL, 2017, 89 (06) : 1133 - 1145
  • [23] The Interaction between DELLA and ARF/IAA Mediates Crosstalk between Gibberellin and Auxin Signaling to Control Fruit Initiation in Tomato
    Hu, Jianhong
    Israeli, Alon
    Ori, Naomi
    Sun, Tai-ping
    PLANT CELL, 2018, 30 (08) : 1710 - 1728
  • [24] HBI1 acts downstream of ERECTA and SWR1 in regulating inflorescence architecture through the activation of the brassinosteroid and auxin signaling pathways
    Cai, Hanyang
    Chai, Mengnan
    Chen, Fangqian
    Huang, Youmei
    Zhang, Man
    He, Qing
    Liu, Liping
    Yan, Maokai
    Qin, Yuan
    NEW PHYTOLOGIST, 2021, 229 (01) : 414 - 428
  • [25] HOMEOBOX PROTEIN52 Mediates the Crosstalk between Ethylene and Auxin Signaling during Primary Root Elongation by Modulating Auxin Transport-Related Gene Expression
    Miao, Zi-Qing
    Zhao, Ping-Xia
    Mao, Jie-Li
    Yu, Lin-Hui
    Yuan, Yang
    Tang, Hui
    Liu, Zhen-Bang
    Xiang, Cheng-Bin
    PLANT CELL, 2018, 30 (11) : 2761 - 2778
  • [26] SMALL ORGAN SIZE 1 and SMALL ORGAN SIZE 2/DWARF AND LOW-TILLERING Form a Complex to Integrate Auxin and Brassinosteroid Signaling in Rice
    Hirano, Ko
    Yoshida, Hideki
    Aya, Koichiro
    Kawamura, Mayuko
    Hayashi, Makoto
    Hobo, Tokunori
    Sato-Izawa, Kanna
    Kitano, Hidemi
    Ueguchi-Tanaka, Miyako
    Matsuoka, Makoto
    MOLECULAR PLANT, 2017, 10 (04) : 590 - 604
  • [27] Modeling approaches for qualitative and semi-quantitative analysis of cellular signaling networks
    Samaga, Regina
    Klamt, Steffen
    CELL COMMUNICATION AND SIGNALING, 2013, 11
  • [28] miRNAs associated with auxin signaling, stress response, and cellular activities mediate adventitious root formation in apple rootstocks
    Li, Ke
    Liu, Zhen
    Xing, Libo
    Wei, Yanhong
    Mao, Jiangping
    Meng, Yuan
    Bao, Lu
    Han, Mingyu
    Zhao, Caiping
    Zhang, Dong
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2019, 139 : 66 - 81
  • [29] Functions of IQD proteins as hubs in cellular calcium and auxin signaling: A toolbox for shape formation and tissue-specification in plants?
    Buerstenbinder, Katharina
    Mitra, Dipannita
    Quegwer, Jakob
    PLANT SIGNALING & BEHAVIOR, 2017, 12 (06) : e1331198
  • [30] SEM plus plus : A particle model of cellular growth, signaling and migration
    Milde, Florian
    Tauriello, Gerardo
    Haberkern, Hannah
    Koumoutsakos, Petros
    COMPUTATIONAL PARTICLE MECHANICS, 2014, 1 (02) : 211 - 227