The shade avoidance syndrome in Arabidopsis: a fundamental role for atypical basic helix-loop-helix proteins as transcriptional cofactors

被引:79
|
作者
Galstyan, Anahit [1 ]
Cifuentes-Esquivel, Nicolas [1 ]
Bou-Torrent, Jordi [1 ]
Martinez-Garcia, Jaime F. [1 ,2 ]
机构
[1] CSIC IRTA UAB, CRAG, Barcelona 08034, Spain
[2] Inst Catalana Recerca & Estudis Avancats, Barcelona 08010, Spain
关键词
shade avoidance syndrome; bHLH proteins; DNA-binding; HLH domain; transcriptional cofactors; Arabidopsis; LIGHT SIGNAL-TRANSDUCTION; FLOWERING TIME; PHYTOCHROME-A; FACTOR FAMILY; GENOME-WIDE; HFR1; RESPONSES; GROWTH; PLANTS; DEGRADATION;
D O I
10.1111/j.1365-313X.2011.04485.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
P>The shade avoidance syndrome (SAS) refers to a set of plant responses aimed at anticipating eventual shading by potential competitors. The SAS is initiated after perception of nearby vegetation as a reduction in the red to far-red ratio (R:FR) of the incoming light. Low R:FR light is perceived by the phytochromes, triggering dramatic changes in gene expression that, in seedlings, eventually result in an increased hypocotyl elongation to overgrow competitors. This response is inhibited by genes such as PHYTOCHROME RAPIDLY REGULATED 1 (PAR1), PAR2 and LONG HYPOCOTYL IN FR 1 (HFR1), which are transcriptionally induced by low R:FR. Although PAR1/PAR2 and HFR1 proteins belong to different groups of basic helix-loop-helix (bHLH) transcriptional regulators, they all lack a typical basic domain required for binding to E-box and G-box motifs in the promoter of target genes. By overexpressing derivatives of PAR1 and HFR1 we show that these proteins are actually transcriptional cofactors that do not need to bind DNA to directly regulate transcription. We conclude that protein-protein interactions involving the HLH domain of PAR1 and HFR1 are a fundamental aspect of the mechanism by which these proteins regulate gene expression, most likely through interaction with true transcription factors that do bind to the target genes and eventually unleash the observed SAS responses.
引用
收藏
页码:258 / 267
页数:10
相关论文
共 29 条
  • [21] Genome-wide analysis of basic helix-loop-helix family transcription factors and their role in responses to abiotic stress in carrot
    Chen, Yi-Yun
    Li, Meng-Yao
    Wu, Xue-Jun
    Huang, Ying
    Ma, Jing
    Xiong, Ai-Sheng
    MOLECULAR BREEDING, 2015, 35 (05)
  • [22] Functions of Basic Helix-Loop-Helix (bHLH) Proteins in the Regulation of Plant Responses to Cold, Drought, Salt, and Iron Deficiency: A Comprehensive Review
    Lei, Pei
    Jiang, Yaxuan
    Zhao, Yong
    Jiang, Mingquan
    Ji, Ximei
    Ma, Le
    Jin, Guangze
    Li, Jianxin
    Zhang, Subin
    Kong, Dexin
    Zhao, Xiyang
    Meng, Fanjuan
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2024, 72 (19) : 10692 - 10709
  • [23] Genome-wide DNA-binding specificity of PIL5, an Arabidopsis basic Helix-Loop-Helix (bHLH) transcription factor
    Kang, Hyojin
    Oh, Eunkyoo
    Choi, Giltsu
    Lee, Doheon
    INTERNATIONAL JOURNAL OF DATA MINING AND BIOINFORMATICS, 2010, 4 (05) : 588 - 599
  • [24] Diverse role of basic Helix-Loop-Helix (bHLH) transcription factor superfamily genes in the fleshy fruit-bearing plant species
    Muhammad, Noor
    Uddin, Nisar
    Khan, Muhammad Khalil Ullah
    Ali, Niaz
    Ali, Kishwar
    Jones, David Aaron
    CZECH JOURNAL OF GENETICS AND PLANT BREEDING, 2023, 59 (01) : 1 - 13
  • [25] A Single Amino Acid Substitution in IIIf Subfamily of Basic Helix-Loop-Helix Transcription Factor AtMYC1 Leads to Trichome and Root Hair Patterning Defects by Abolishing Its Interaction with Partner Proteins in Arabidopsis
    Zhao, Hongtao
    Wang, Xiaoxue
    Zhu, Dandan
    Cui, Sujuan
    Li, Xia
    Cao, Ying
    Ma, Ligeng
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (17) : 14109 - 14121
  • [26] Reciprocal regulation of the basic helix-loop-helix/Per-Arnt-Sim partner proteins, Arnt and Arnt2, during neuronal differentiation
    Hao, Nan
    Bhakti, Veronica L. D.
    Peet, Daniel J.
    Whitelaw, Murray L.
    NUCLEIC ACIDS RESEARCH, 2013, 41 (11) : 5626 - 5638
  • [27] Dissecting the Role of a Basic Helix-Loop-Helix Transcription Factor, SlbHLH22, Under Salt and Drought Stresses in Transgenic Solanum lycopersicum L.
    Waseem, Muhammad
    Rong, Xiangyi
    Li, Zhengguo
    FRONTIERS IN PLANT SCIENCE, 2019, 10
  • [28] Functional diversification of the potato R2R3 MYB anthocyanin activators AN1, MYBA1, and MYB113 and their interaction with basic helix-loop-helix cofactors
    Liu, Yuhui
    Lin-Wang, Kui
    Espley, Richard V.
    Wang, Li
    Yang, Hongyu
    Yu, Bin
    Dare, Andrew
    Varkonyi-Gasic, Erika
    Wang, Jing
    Zhang, Junlian
    Wang, Di
    Allan, Andrew C.
    JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (08) : 2159 - 2176
  • [29] Genome-wide identification and characterization of the sweet orange ( Citrus sinensis ) basic helix-loop-helix (bHLH) family reveals a role for CsbHLH085 as a regulator of citrus bacterial canker resistance
    Huang, Xin
    Su, Liyan
    Xian, Baohang
    Yu, Qiyuan
    Zhang, Miao
    Fan, Jie
    Zhang, Chenxi
    Liu, Yiqi
    He, Houzheng
    Zhong, Xin
    Li, Man
    Chen, Shanchun
    He, Yongrui
    Li, Qiang
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 267