Comparative leaf proteomics of drought-tolerant and -susceptible peanut in response to water stress

被引:40
|
作者
Katam, Ramesh [1 ]
Sakata, Katsumi [2 ]
Suravajhala, Prashanth [3 ]
Pechan, Tibor [4 ]
Kambiranda, Devaiah M. [5 ]
Naik, Karamthot Sivasankar [6 ]
Guo, Baozhu [7 ]
Basha, Sheikh M. [5 ]
机构
[1] Florida A&M Univ, Dept Biol Sci, Tallahassee, FL 32307 USA
[2] Maebashi Inst Technol, Dept Life Sci & Informat, 460-1 Kamisadori, Maebashi, Gunma 3710816, Japan
[3] Bioclues Org, Hyderabad, Andhra Pradesh, India
[4] Mississippi State Univ, Mississippi Agr & Forestry Expt Stn, Inst Genom Biocomp & Biotechnol, Mississippi State, MS 39759 USA
[5] Florida A&M Univ, Coll Agr & Food Sci, Tallahassee, FL 32307 USA
[6] ANGR Agr Univ, Guntur, AP, India
[7] USDA ARS, Crop Protect & Management Res Unit, Tifton, GA 31793 USA
基金
美国国家科学基金会; 日本学术振兴会;
关键词
Drought tolerance; Leaf proteins; Protein-protein interaction; Two-dimensional electrophoresis; Water stress; PREHARVEST AFLATOXIN CONTAMINATION; ARACHIS-HYPOGAEA L; GENE-EXPRESSION; PROTEINS; RICE; IDENTIFICATION; PEROXIDASE; DEFICIT; LEAVES; PLANTS;
D O I
10.1016/j.jprot.2016.05.031
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Water stress (WS) predisposes peanut plants to fungal infection resulting in pre-harvest aflatoxin contamination. Major changes during water stress including oxidative stress, lead to destruction of photosynthetic apparatus and other macromolecules within cells. Two peanut cultivars with diverse drought tolerance characteristics were subjected to WS, and their leaf proteome was compared using two-dimensional electrophoresis complemented with MALDI-TOF/FOF mass spectrometry. Ninety-six protein spots were differentially abundant to water stress in both cultivars that corresponded to 60 non-redundant proteins. Protein interaction prediction analysis suggests that 42 unique proteins showed interactions in tolerant cultivar while 20 showed interactions in the susceptible cultivar, activating other proteins in directed system response networks. Four proteins: glutamine ammonia ligase, chitin class II, actin isoform B, and beta tubulin, involved in metabolism, defense and cellular biogenesis, are unique in tolerant cultivar and showed positive interactions with other proteins. In addition, four proteins: serine/threonine protein phosphate PP1, choline monooxygenase, peroxidase 43, and SNFl-related protein kinase regulatory subunit beta-2, that play a role as cryoprotectants through signal transduction, were induced in drought tolerant cultivar following WS. Eleven interologs of these proteins were found in Arabidopsis interacting with several proteins and it is believed that similar mechanisms/pathways exist in peanut. Significance: Peanuts (Arachis hypogaea L) are a major source of plant protein grown in subtropical and tropical regions of the world. Pre-harvest aflatoxin contamination is a major problem that affects peanut crop yield and food safety. Poor understanding of molecular and cellular mechanisms associated with aflatoxin resistance is largely responsible for the lack of progress in elucidating a process/methodology for reducing aflatoxin contamination in peanuts. Drought perturbs the invasion of the aflatoxin producing fungus and thus affects the quality and yield of peanut. Therefore, more studies involving the effects of drought stress to determine the molecular changes will enhance our understanding of the key metabolic pathways involved in the combined stresses. The changes associated with the biotic and abiotic interactions within the peanut will be used to determine the metabolic pathways involved in the stress tolerance. This research would be beneficial in identifying the tolerant molecular signatures and promoting food safety and consumer health through breeding superior quality peanut cultivars. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:209 / 226
页数:18
相关论文
共 50 条
  • [21] Transcriptional responses to water stress and recovery in a drought-tolerant fescue wild grass (Festuca ovina; Poaceae)
    Qiu, Fan
    Bachle, Seton
    Estes, Ryan
    Duvall, Melvin R.
    Nippert, Jesse B.
    Ungerer, Mark C.
    GENOME, 2021, 64 (01) : 15 - 27
  • [22] Physiological, biochemical and morphoagronomic characterization of drought-tolerant and drought-sensitive bean genotypes under water stress
    Arruda, Isabella Mendonca
    Moda-Cirino, Vania
    Koltun, Alessandra
    Andrade Pais dos Santos, Odair Jose
    Moreira, Renata Stolf
    Paladini Moreira, Aline Fabiana
    Azeredo Goncalves, Leandro Simoes
    PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS, 2018, 24 (06) : 1059 - 1067
  • [23] Changes in leaf morphology, antioxidant activity and photosynthesis capacity in two different drought-tolerant cultivars of chrysanthemum during and after water stress
    Sun, Jing
    Gu, Jing
    Zeng, Jun
    Han, Shuang
    Song, Aiping
    Chen, Fadi
    Fang, Weimin
    Jiang, Jiafu
    Chen, Sumei
    SCIENTIA HORTICULTURAE, 2013, 161 : 249 - 258
  • [24] Comparative analysis of root transcriptome profiles of two pairs of drought-tolerant and susceptible rice near-isogenic lines under different drought stress
    Ali Moumeni
    Kouji Satoh
    Hiroaki Kondoh
    Takayuki Asano
    Aeni Hosaka
    Ramiah Venuprasad
    Rachid Serraj
    Arvind Kumar
    Hei Leung
    Shoshi Kikuchi
    BMC Plant Biology, 11
  • [25] Role of γ-oryzanol in drought-tolerant and susceptible cultivars of rice (Oryza sativa L.)
    Kumar, M. S. Sujith
    Dahuja, Anil
    Rai, R. D.
    Walia, Suresh
    Tyagi, Aruna
    INDIAN JOURNAL OF BIOCHEMISTRY & BIOPHYSICS, 2014, 51 (01) : 75 - 80
  • [26] Physiological Responses under Drought Stress of Improved Drought-Tolerant Rice Lines and their Parents
    Larkunthod, Preeyanuch
    Nounjan, Noppawan
    Siangliw, Jonaliza L.
    Toojinda, Theerayut
    Sanitchon, Jirawat
    Jongdee, Boonrat
    Theerakulpisut, Piyada
    NOTULAE BOTANICAE HORTI AGROBOTANICI CLUJ-NAPOCA, 2018, 46 (02) : 679 - 687
  • [27] Differential response to physiological drought stress in tolerant and susceptible cultivars of canola
    Rahmani F.
    Padervand A.-H.
    Indian Journal of Plant Physiology, 2016, 21 (3): : 333 - 340
  • [28] Comparative proteome analysis of drought-sensitive and drought-tolerant rapeseed roots and their hybrid F1 line under drought stress
    Mohammadi, Payam Pour
    Moieni, Ahmad
    Komatsu, Setsuko
    AMINO ACIDS, 2012, 43 (05) : 2137 - 2152
  • [29] Comparative proteome analysis of drought-sensitive and drought-tolerant maize leaves under osmotic stress
    Pei, Yuhe
    Bai, Jianfen
    Guo, Xinmei
    Zhao, Meiai
    Ma, Qingmei
    Song, Xiyun
    CANADIAN JOURNAL OF PLANT SCIENCE, 2019, 99 (04) : 467 - 479
  • [30] Responses in gas exchange and water status between drought-tolerant and -susceptible soybean genotypes with ABA application
    Hossain, Md. Mokter
    Lam, Hon-Ming
    Zhang, Jianhua
    CROP JOURNAL, 2015, 3 (06): : 500 - 506