Comparative proteome analysis of high and low cadmium accumulating soybeans under cadmium stress

被引:125
作者
Hossain, Zahed [1 ,2 ]
Hajika, Makita [1 ]
Komatsu, Setsuko [1 ]
机构
[1] Natl Inst Crop Sci, Tsukuba, Ibaraki 3058518, Japan
[2] W Bengal State Univ, Dept Bot, Kolkata 700126, W Bengal, India
关键词
Cadmium; Soybean; Proteomics; Heavy metal accumulation; HEAT-SHOCK PROTEINS; EXPOSURE; RESPONSES; SEEDLINGS; LEAVES; TRANSLOCATION; CULTIVARS; PROFILES; TOXICITY; BINDING;
D O I
10.1007/s00726-012-1319-6
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
A comparative proteomic study was performed to unravel the protein networks involved in cadmium stress response in soybean. Ten-day-old seedlings of contrasting cadmium accumulating soybean cultivars-Harosoy (high cadmium accumulator), Fukuyutaka (low cadmium accumulator), and their recombinant inbred line CDH-80 (high cadmium accumulator) were exposed to 100 mu M CdCl2 treatment for 3 days. Root growth was found to be affected under cadmium stress in all. Varietal differences at root protein level were evaluated. NADP-dependent alkenal double bond reductase P1 was found to be more abundant in low cadmium accumulating Fukuyutaka. Leaf proteome analysis revealed that differentially expressed proteins were primarily involved in metabolism and energy production. The results indicate that both high and low cadmium accumulating cultivars and CDH-80 share some common defense strategies to cope with the cadmium stress. High abundance of enzymes involved in glycolysis and TCA cycle might help cadmium challenged cells to produce more energy necessary to meet the high energy demand. Moreover, enhanced expressions of photosynthesis related proteins indicate quick utilization of photoassimilates in energy generation. Increased abundance of glutamine synthetase in all might be involved in phytochelatin mediated detoxification of cadmium ions. In addition, increased abundance of antioxidant enzymes, namely superoxide dismutase, ascorbate peroxidase, catalase, ensures cellular protection from reactive oxygen species mediated damages under cadmium stress. Enhanced expression of molecular chaperones in high cadmium accumulating cultivar might be another additional defense mechanism for refolding of misfolded proteins and to stabilize protein structure and function, thus maintain cellular homeostasis.
引用
收藏
页码:2393 / 2416
页数:24
相关论文
共 43 条
[1]
Physiological and protein profiles alternation of germinating rice seedlings exposed to acute cadmium toxicity [J].
Ahsan, Nagib ;
Lee, Sang-Hoon ;
Lee, Dong-Gi ;
Lee, Hyoshin ;
Lee, Shin Woo ;
Bahk, Jeong Dong ;
Lee, Byung-Hyun .
COMPTES RENDUS BIOLOGIES, 2007, 330 (10) :735-746
[2]
Differential responses of microsomal proteins and metabolites in two contrasting cadmium (Cd)-accumulating soybean cultivars under Cd stress [J].
Ahsan, Nagib ;
Nakamura, Takuji ;
Komatsu, Setsuko .
AMINO ACIDS, 2012, 42 (01) :317-327
[3]
Thiol-peptide level and proteomic changes in response to cadmium toxicity in Oryza sativa L. roots [J].
Aina, Roberta ;
Labra, Massimo ;
Fumagalli, Pietro ;
Vannini, Candida ;
Marsoni, Milena ;
Cucchi, Ulisse ;
Bracale, Marcella ;
Sgorbati, Sergio ;
Citterio, Sandra .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2007, 59 (03) :381-392
[4]
Alvarez S, 2009, PROTEOMICS, V9, P2419, DOI [10.1002/pmic.200990042, 10.1002/pmic.200800478]
[5]
Genotypic differences in cadmium uptake and distribution in soybeans [J].
Arao, T ;
Ae, N ;
Sugiyama, M ;
Takahashi, M .
PLANT AND SOIL, 2003, 251 (02) :247-253
[6]
REACTIONS OF RADICALS WITH LECITHIN BILAYERS [J].
BARBER, DJW ;
THOMAS, JK .
RADIATION RESEARCH, 1978, 74 (01) :51-65
[7]
The oligomeric conformation of peroxiredoxins links redox state to function [J].
Barranco-Medina, Sergio ;
Lazaro, Juan-Jose ;
Dietz, Karl-Josef .
FEBS LETTERS, 2009, 583 (12) :1809-1816
[8]
Leaf chlorosis in oilseed rape plants (Brassica napus) grown on cadmium-polluted soil:: causes and consequences for photosynthesis and growth [J].
Baryla, A ;
Carrier, P ;
Franck, F ;
Coulomb, C ;
Sahut, C ;
Havaux, M .
PLANTA, 2001, 212 (5-6) :696-709
[9]
Benavides María P., 2005, Braz. J. Plant Physiol., V17, P21, DOI 10.1590/S1677-04202005000100001
[10]
Analysis of 1.9 Mb of contiguous sequence from chromosome 4 of Arabidopsis thaliana [J].
Bevan, M ;
Bancroft, I ;
Bent, E ;
Love, K ;
Goodman, H ;
Dean, C ;
Bergkamp, R ;
Dirkse, W ;
Van Staveren, M ;
Stiekema, W ;
Drost, L ;
Ridley, P ;
Hudson, SA ;
Patel, K ;
Murphy, G ;
Piffanelli, P ;
Wedler, H ;
Wedler, E ;
Wambutt, R ;
Weitzenegger, T ;
Pohl, TM ;
Terryn, N ;
Gielen, J ;
Villarroel, R ;
De Clerck, R ;
Van Montagu, M ;
Lecharny, A ;
Auborg, S ;
Gy, I ;
Kreis, M ;
Lao, N ;
Kavanagh, T ;
Hempel, S ;
Kotter, P ;
Entian, KD ;
Rieger, M ;
Schaeffer, M ;
Funk, B ;
Mueller-Auer, S ;
Silvey, M ;
James, R ;
Montfort, A ;
Pons, A ;
Puigdomenech, P ;
Douka, A ;
Voukelatou, E ;
Milioni, D ;
Hatzopoulos, P ;
Piravandi, E ;
Obermaier, B .
NATURE, 1998, 391 (6666) :485-488