Striga hermonthica MAX2 restores branching but not the Very Low Fluence Response in the Arabidopsis thaliana max2 mutant

被引:38
|
作者
Liu, Qing [1 ]
Zhang, Yanxia [1 ]
Matusova, Radoslava [1 ,2 ]
Charnikhova, Tatsiana [1 ]
Amini, Maryam [1 ]
Jamil, Muhammad [1 ,3 ]
Fernandez-Aparicio, Monica [4 ,5 ]
Huang, Kan [6 ]
Timko, Michael P. [6 ]
Westwood, James H. [4 ]
Ruyter-Spira, Carolien [1 ,7 ]
van der Krol, Sander [1 ]
Bouwmeester, Harro J. [1 ,8 ]
机构
[1] Wageningen UR, Lab Plant Physiol, POB 658, NL-6700 AR Wageningen, Netherlands
[2] Slovak Acad Sci, Inst Plant Genet & Biotechnol, Nitra, Slovakia
[3] COMSATS Inst Informat Technol, Dept Biosci, Islamabad, Pakistan
[4] Virginia Tech, Dept Plant Pathol Physiol & Weed Sci, Blacksburg, VA 24061 USA
[5] IAS CSIC, Inst Sustainable Agr, Dept Plant Breeding, Cordoba 14080, Spain
[6] Univ Virginia, Dept Biol, Charlottesville, VA 22904 USA
[7] Plant Res Int, Business Unit Biosci, NL-6708 PB Wageningen, Netherlands
[8] Ctr Biosyst Genom, Wageningen, Netherlands
基金
美国国家科学基金会;
关键词
biosynthesis; MAX2; signaling; Striga hermonthica; strigolactone; BOX PROTEIN MAX2; SEED-GERMINATION; STRIGOLACTONES; ARABIDOPSIS; INHIBITION; KARRIKINS; HORMONE; STRIGA; ROLES; AUXIN;
D O I
10.1111/nph.12692
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Seed germination of Striga spp. (witchweeds), one of the world's most destructive parasitic weeds, cannot be induced by light but is specifically induced by strigolactones. It is not known whether Striga uses the same components for strigolactone signaling as host plants, whether it has endogenous strigolactone biosynthesis and whether there is post-germination strigolactone signaling in Striga. Strigolactones could not be detected in in vitro grown Striga, while for host-grown Striga, the strigolactone profile is dominated by a subset of the strigolactones present in the host. Branching of in vitro grown Striga is affected by strigolactone biosynthesis inhibitors. ShMAX2, the Striga ortholog of Arabidopsis MORE AXILLARY BRANCHING 2 (AtMAX2) - which mediates strigolactone signaling - complements several of the Arabidopsis max2-1 phenotypes, including the root and shoot phenotype, the High Irradiance Response and the response to strigolactones. Seed germination of max2-1 complemented with ShMAX2 showed no complementation of the Very Low Fluence Response phenotype of max2-1. Results provide indirect evidence for ShMAX2 functions in Striga. A putative role of ShMAX2 in strigolactone-dependent seed germination of Striga is discussed.
引用
收藏
页码:531 / 541
页数:11
相关论文
共 50 条
  • [1] MAX1 and MAX2 control shoot lateral branching in Arabidopsis
    Stirnberg, P
    van de Sande, K
    Leyser, HMO
    DEVELOPMENT, 2002, 129 (05): : 1131 - 1141
  • [2] Expression of MAX2 under SCARECROW promoter enhances the strigolactone/MAX2 dependent response of Arabidopsis roots to low-phosphate conditions
    Madmon, Ortal
    Mazuz, Moran
    Kumari, Puja
    Dam, Anandamoy
    Ion, Aurel
    Mayzlish-Gati, Einav
    Belausov, Eduard
    Wininger, Smadar
    Abu-Abied, Mohamad
    McErlean, Christopher S. P.
    Bromhead, Liam J.
    Perl-Treves, Rafael
    Prandi, Cristina
    Kapulnik, Yoram
    Koltai, Hinanit
    PLANTA, 2016, 243 (06) : 1419 - 1427
  • [3] Unraveling the MAX2 Protein Network in Arabidopsis thaliana: Identification of the Protein Phosphatase PAPP5 as a Novel MAX2 Interactor
    Struk, Sylwia
    De Cuyper, Carolien
    Jacobs, Anse
    Braem, Lukas
    Walton, Alan
    De Keyser, Annick
    Depuydt, Stephen
    Lam Dai Vu
    De Smet, Ive
    Boyer, Francois-Didier
    Eeckhout, Dominique
    Persiau, Geert
    Gevaert, Kris
    De Jaeger, Geert
    Goormachtig, Sofie
    MOLECULAR & CELLULAR PROTEOMICS, 2021, 20
  • [4] Expression of MAX2 under SCARECROW promoter enhances the strigolactone/MAX2 dependent response of Arabidopsis roots to low-phosphate conditions
    Ortal Madmon
    Moran Mazuz
    Puja Kumari
    Anandamoy Dam
    Aurel Ion
    Einav Mayzlish-Gati
    Eduard Belausov
    Smadar Wininger
    Mohamad Abu-Abied
    Christopher S. P. McErlean
    Liam J. Bromhead
    Rafael Perl-Treves
    Cristina Prandi
    Yoram Kapulnik
    Hinanit Koltai
    Planta, 2016, 243 : 1419 - 1427
  • [5] Cytokinin and MAX2 signaling pathways act antagonistically in drought adaptation of Arabidopsis thaliana*
    Nguyen, Kien Huu
    Li, Zihan
    Wang, Chengliang
    Ha, Chien Van
    Tran, Cuong Duy
    Abdelrahman, Mostafa
    Pham, Xuan Hoi
    Trung, Khuat Huu
    Khanh, Tran Dang
    Chu, Ha Duc
    Mostofa, Mohammad Golam
    Watanabe, Yasuko
    Wang, Yaping
    Miao, Yuchen
    Mochida, Keiichi
    Pal, Sikander
    Li, Weiqiang
    Tran, Lam-Son Phan
    PLANT STRESS, 2024, 12
  • [6] The F-box protein MAX2 contributes to resistance to bacterial phytopathogens in Arabidopsis thaliana
    Maria Piisilä
    Mehmet A Keceli
    Günter Brader
    Liina Jakobson
    Indrek Jõesaar
    Nina Sipari
    Hannes Kollist
    E Tapio Palva
    Tarja Kariola
    BMC Plant Biology, 15
  • [7] Crosstalk between the cytokinin and MAX2 signaling pathways in growth and callus formation of Arabidopsis thaliana
    Li, Weiqiang
    Kien Huu Nguyen
    Chien Van Ha
    Watanabe, Yasuko
    Lam-Son Phan Tran
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2019, 511 (02) : 300 - 306
  • [8] The F-box protein MAX2 contributes to resistance to bacterial phytopathogens in Arabidopsis thaliana
    Piisila, Maria
    Keceli, Mehmet A.
    Brader, Guenter
    Jakobson, Liina
    Joesaar, Indrek
    Sipari, Nina
    Kollist, Hannes
    Palva, E. Tapio
    Kariola, Tarja
    BMC PLANT BIOLOGY, 2015, 15
  • [10] Functional Analysis of MAX2 in Phototropins-Mediated Cotyledon Flattening in Arabidopsis
    Zhao, Qing-Ping
    Wang, Xiao-Nan
    Li, Nan-Nan
    Zhu, Zi-Yi
    Mu, Shi-Chao
    Zhao, Xiang
    Zhang, Xiao
    FRONTIERS IN PLANT SCIENCE, 2018, 9