MADS-Box and bHLH Transcription Factors Coordinate Transmitting Tract Development in Arabidopsis thaliana

被引:26
作者
Di Marzo, Maurizio [1 ]
Roig-Villanova, Irma [1 ,2 ]
Zanchetti, Eva [1 ]
Caselli, Francesca [1 ]
Gregis, Veronica [1 ]
Bardetti, Paola [1 ,3 ]
Chiara, Matteo [1 ]
Guazzotti, Andrea [1 ]
Caporali, Elisabetta [1 ]
Mendes, Marta Adelina [1 ]
Colombo, Lucia [1 ]
Kater, Martin M. [1 ]
机构
[1] Univ Milan, Dipartimento Biosci, Milan, Italy
[2] UPC, Dept Agri Food Engn & Biotechnol, Barcelona Sch Agr Engn, Castelldefels, Spain
[3] NYU, Dept Biol, Ctr Genom & Syst Biol, New York, NY 10003 USA
来源
FRONTIERS IN PLANT SCIENCE | 2020年 / 11卷
关键词
bHLH; cell death; cell wall; extracellular matrix; MADS-box; transmitting tract; CELL-DEATH; ARABINOGALACTAN-PROTEINS; GENE-EXPRESSION; REPRODUCTIVE-ORGANS; AUXIN; COMPLEX; FERTILIZATION; ACTIVATION; MECHANISMS; REVEALS;
D O I
10.3389/fpls.2020.00526
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The MADS-domain transcription factor SEEDSTICK (STK) controls several aspects of plant reproduction. STK is co-expressed with CESTA (CES), a basic Helix-Loop-Helix (bHLH) transcription factor-encoding gene. CES was reported to control redundantly with the brassinosteroid positive signaling factors BRASSINOSTEROID ENHANCED EXPRESSION1 (BEE1) and BEE3 the development of the transmitting tract. Combining the stk ces-4 mutants led to a reduction in ovule fertilization due to a defect in carpel fusion which, caused the formation of holes at the center of the septum where the transmitting tract differentiates. Combining the stk mutant with the bee1 bee3 ces-4 triple mutant showed an increased number of unfertilized ovules and septum defects. The transcriptome profile of this quadruple mutant revealed a small subset of differentially expressed genes which are mainly involved in cell death, extracellular matrix and cell wall development. Our data evidence a regulatory gene network controlling transmitting tract development regulated directly or indirectly by a STK-CES containing complex and reveal new insights in the regulation of transmitting tract development by bHLH and MADS-domain transcription factors.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Updated Phylogeny and Protein Structure Predictions Revise the Hypothesis on the Origin of MADS-box Transcription Factors in Land Plants
    Qiu, Yichun
    Li, Zhen
    Walther, Dirk
    Koehler, Claudia
    MOLECULAR BIOLOGY AND EVOLUTION, 2023, 40 (09)
  • [32] Functional annotation and identification of MADS-box transcription factors related to tuber dormancy in Helianthus tuberosus L.
    Shipeng Yang
    Jieming Gao
    Lihui Wang
    Xuemei Sun
    Panpan Xu
    Liwen Zhang
    Qiwen Zhong
    3 Biotech, 2019, 9
  • [33] MIKCC-TYPE MADS-BOX TRANSCRIPTION FACTORS IN TOMATO REPRODUCTIVE DEVELOPMENT: AN OVERVIEW OF THEIR ROLE IN MERISTEMS, FLOWER, FRUIT, AND FLOWER ABSCISSION ZONE DEVELOPMENT
    Boumlik, Rachid
    Bendahmane, Abdelhafid
    Roldan, Maria Victoria Gomez
    ANNUAL PLANT REVIEWS ONLINE, 2021, 4 (04): : 907 - 942
  • [34] The Grapevine MADS-Box Protein VvAGL11 Induces Early Flowering in Arabidopsis
    Liu, Huiping
    Ding, Tingting
    Zhang, Qingtian
    Li, Ke
    Li, Ao
    Wang, Fengxia
    Mu, Qian
    Liu, Lanshe
    Yang, Guowei
    Zhang, Ye
    Wang, Pengfei
    AGRONOMY-BASEL, 2024, 14 (11):
  • [35] Application of Gibbs sampling methodology for identification of transcription factor binding sites in MADS box family genes in Arabidopsis thaliana
    Meher, Prabina Kumar
    Sahu, Tanmaya Kumar
    Rao, A. R.
    Wahi, S. D.
    INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 2014, 74 (01) : 73 - 80
  • [36] The hybrid non-ethylene and ethylene ripening response in kiwifruit (Actinidia chinensis) is associated with differential regulation of MADS-box transcription factors
    McAtee, Peter A.
    Richardson, Annette C.
    Nieuwenhuizen, Niels J.
    Gunaseelan, Kularajathevan
    Hoong, Ling
    Chen, Xiuyin
    Atkinson, Ross G.
    Burdon, Jeremy N.
    David, Karine M.
    Schaffer, Robert J.
    BMC PLANT BIOLOGY, 2015, 15
  • [37] Dissecting the role of MADS-box genes in monocot floral development and diversity
    Callens, Cindy
    Tucker, Matthew R.
    Zhang, Dabing
    Wilson, Zoe A.
    JOURNAL OF EXPERIMENTAL BOTANY, 2018, 69 (10) : 2435 - 2459
  • [38] The MADS-box transcription factor FgMcm1 regulates cell identity and fungal development in Fusarium graminearum
    Yang, Cui
    Liu, Huiquan
    Li, Guotian
    Liu, Meigang
    Yun, Yingzi
    Wang, Chenfang
    Ma, Zhonghua
    Xu, Jin-Rong
    ENVIRONMENTAL MICROBIOLOGY, 2015, 17 (08) : 2762 - 2776
  • [39] Orthologs of Arabidopsis thaliana stomatal bHLH genes and regulation of stomatal development in grasses
    Liu, Tie
    Ohashi-Ito, Kyoko
    Bergmann, Dominique C.
    DEVELOPMENT, 2009, 136 (13): : 2265 - 2276
  • [40] MADS-Box Family Genes in Lagerstroemia indica and Their Involvement in Flower Development
    Qiao, Zhongquan
    Deng, Fuyuan
    Zeng, Huijie
    Li, Xuelu
    Lu, Liushu
    Lei, Yuxing
    Li, Lu
    Chen, Yi
    Chen, Jianjun
    PLANTS-BASEL, 2024, 13 (05):