The Hypoxic Proteome and Metabolome of Barley (Hordeum vulgare L.) with and without Phytoglobin Priming

被引:13
|
作者
Andrzejczak, Olga A. [1 ]
Havelund, Jesper F. [2 ,3 ]
Wang, Wei-Qing [2 ,3 ,6 ]
Kovalchuk, Sergey [2 ,3 ,7 ]
Hagensen, Christina E. [2 ,3 ]
Hasler-Sheetal, Harald [2 ,3 ,4 ]
Jensen, Ole N. [2 ,3 ]
Rogowska-Wrzesinska, Adelina [2 ,3 ]
Moller, Ian Max [5 ]
Hebelstrup, Kim H. [1 ]
机构
[1] Aarhus Univ, Dept Agroecol, Sect Crop Genet & Biotechnol, Forsogsvej 1, DK-4200 Slagelse, Denmark
[2] Univ Southern Denmark, Dept Biochem & Mol Biol, Campusvej 55, DK-5230 Odense M, Denmark
[3] Univ Southern Denmark, VILLUM Ctr Bioanalyt Sci, Campusvej 55, DK-5230 Odense M, Denmark
[4] Univ Southern Denmark, Dept Biol, Nordcee, Campusvej 55, DK-5230 Odense M, Denmark
[5] Aarhus Univ, Dept Mol Biol & Genet, Forsogsvej 1, DK-4200 Slagelse, Denmark
[6] Chinese Acad Sci, Inst Bot, Key Lab Plant Mol Physiol, Beijing 100093, Peoples R China
[7] RAS, Lab Bioinformat Methods Combinatorial Chem & Biol, Shemyakin Ovchinnikov Inst Bioorgan Chem, Moscow 117997, Russia
关键词
ethylene; anaerobiosis; hemoglobin; histones; N-end rule; stress priming; NITRIC-OXIDE; OXIDATIVE STRESS; LOW-OXYGEN; MASS-SPECTROMETRY; ARABIDOPSIS; PLANTS; ROOTS; NO; BIOSYNTHESIS; RESPONSES;
D O I
10.3390/ijms21041546
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Overexpression of phytoglobins (formerly plant hemoglobins) increases the survival rate of plant tissues under hypoxia stress by the following two known mechanisms: (1) scavenging of nitric oxide (NO) in the phytoglobin/NO cycle and (2) mimicking ethylene priming to hypoxia when NO scavenging activates transcription factors that are regulated by levels of NO and O-2 in the N-end rule pathway. To map the cellular and metabolic effects of hypoxia in barley (Hordeum vulgare L., cv. Golden Promise), with or without priming to hypoxia, we studied the proteome and metabolome of wild type (WT) and hemoglobin overexpressing (HO) plants in normoxia and after 24 h hypoxia (WT24, HO24). The WT plants were more susceptible to hypoxia than HO plants. The chlorophyll a + b content was lowered by 50% and biomass by 30% in WT24 compared to WT, while HO plants were unaffected. We observed an increase in ROS production during hypoxia treatment in WT seedlings that was not observed in HO seedlings. We identified and quantified 9694 proteins out of which 1107 changed significantly in abundance. Many proteins, such as ion transporters, Ca2+-signal transduction, and proteins related to protein degradation were downregulated in HO plants during hypoxia, but not in WT plants. Changes in the levels of histones indicates that chromatin restructuring plays a role in the priming of hypoxia. We also identified and quantified 1470 metabolites, of which the abundance of >500 changed significantly. In summary the data confirm known mechanisms of hypoxia priming by ethylene priming and N-end rule activation; however, the data also indicate the existence of other mechanisms for hypoxia priming in plants.
引用
收藏
页数:29
相关论文
共 50 条
  • [21] Transcriptional Dynamics of Grain Development in Barley (Hordeum vulgare L.)
    Bian, Jianxin
    Deng, Pingchuan
    Zhan, Haoshuang
    Wu, Xiaotong
    Nishantha, Mutthanthirige D. L. C.
    Yan, Zhaogui
    Du, Xianghong
    Nie, Xiaojun
    Song, Weining
    [J]. INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2019, 20 (04)
  • [22] ACHIEVEMENTS AND PROBLEMS IN THE WEED CONTROL IN BARLEY (Hordeum vulgare L.)
    Georgiev, Mitko
    Delchev, Grozi
    [J]. SCIENTIFIC PAPERS-SERIES A-AGRONOMY, 2016, 59 : 294 - 297
  • [23] Genetics of yield and its components in barley (Hordeum vulgare L.)
    Prakash, V
    Sastry, EVD
    [J]. ANNALS OF ARID ZONE, 1997, 36 (01) : 43 - 46
  • [24] Inheritance of spot blotch resistance in barley (Hordeum vulgare L.)
    Singh, Sarvjeet
    Singh, Harvinder
    Sharma, Achla
    Meeta, Madhu
    Singh, Baljit
    Joshi, Neha
    Grover, Pooja
    Al-Yassin, Adnan
    Kumar, Shiv
    [J]. CANADIAN JOURNAL OF PLANT SCIENCE, 2014, 94 (07) : 1203 - 1209
  • [25] Apoplast Acidification in Growing Barley (Hordeum vulgare L.) Leaves
    Visnovitz, Tamas
    Touati, Mostefa
    Miller, Anthony J.
    Fricke, Wieland
    [J]. JOURNAL OF PLANT GROWTH REGULATION, 2013, 32 (01) : 131 - 139
  • [26] SIRE1 retrotransposons in barley (Hordeum vulgare L.)
    Cakmak, B.
    Marakli, S.
    Gozukirmizi, N.
    [J]. RUSSIAN JOURNAL OF GENETICS, 2015, 51 (07) : 661 - 672
  • [27] Transformation of barley (Hordeum vulgare L.) with cytokinin dehydrogenase gene
    Vyroubalova, Sarka
    Ohnoutkova, Ludmila
    Galuszka, Petr
    [J]. IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-ANIMAL, 2008, 44 : S68 - S68
  • [28] Genetic analysis of the components of winterhardiness in barley (Hordeum vulgare L.)
    Karsai, I
    Meszaros, K
    Bedo, Z
    Hayes, PM
    Pan, A
    Chen, F
    [J]. ACTA BIOLOGICA HUNGARICA, 1997, 48 (01): : 67 - 76
  • [29] Genetic architecture of quantitative traits in barley (Hordeum vulgare L.)
    Raikwar, Rudrasen Singh
    Upadhyay, A. K.
    Gautam, U. S.
    Singh, V. K.
    [J]. INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 2014, 74 (01) : 93 - 97
  • [30] Genetic diversity for malting quality in barley (Hordeum vulgare L.)
    Sarkar, B.
    Verma, R. P. S.
    Mishra, B.
    [J]. INDIAN JOURNAL OF GENETICS AND PLANT BREEDING, 2008, 68 (02) : 163 - 170