Welcome to Acta Agronomica Sinica,

Acta Agron Sin ›› 2011, Vol. 37 ›› Issue (03): 459-468.doi: 10.3724/SP.J.1006.2011.00459

• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles     Next Articles

Effects of SNP on AhSAG and AhBI-1 Genes Expression and Amelioration of Aluminum Stress to Peanut (Arachis hypoganea L.)

ZHAN Jie1,2,WANG Tian-Ju1,He Hu-Yi1,LI Chuang-Zhen1,HE Long-Fei1,*   

  1. 1 College of Agronomy, Guangxi University, Nanning 530004, China; 2 College of National Defense Education, Guangxi University, Nanning 530004, China
  • Received:2010-08-24 Revised:2010-12-03 Online:2011-03-12 Published:2011-01-17
  • Contact: 何龙飞, E-mail: lfhe@gxu.edu.cn

Abstract: Recent researches have found that NO (nitric oxide) plays an important role in mediating some biotic and abiotic stress-induced oxidative stresses in plant kingdom. Meanwhile, Al toxicity is a major constraint for crop production in acidic soils worldwide, especially in southern China. In order to enucleate the control effects of NO (nitric oxide) on aluminum (Al) stress, we researched the effects of exogenous NO donor (sodium nitroprusside, SNP) on rootelongation and relative gene expression when Al-induced PCD in root tips happened with peanut (Arachis hypoganea L.) as material. The results of root elongation, hematoxylin dying and root tips Al3+ content detection showed that suitable exogenous NO could alleviate Al toxicity on root tips of peanut, especially at 1.0 mmol L–1 SNP. Compared with the control, SNP at 1.0 mmol L–1 increased root growth 45% and 52%, decreased Al3+ content of root tips 10% and 23% in 99-1507 and Zhonghua 2, respectively, in the meanwhile, the color of root tips with hematoxylin dying became light. Compared to Al stress only, relative expression of AhSAG gene in 99-1507(Al-resistant) increased firstly, than decreased after adding SNP at 1.0 mmol L–1, it decreased significantly in 0.1 and 0.4 mmol L–1 Al treatments, while that inZhonghua No.2 increased slowly, it increased significantlyin 0.1 and 0.4 mmol L–1 Al3+ treatments. Compared with Al stress only, relative expression of PCD-related AhBI-1 gene in 99-1507 increased firstly, than decreased after adding SNP at 1.0 mmol L–1, but that in Zhonghua 2 had a reverse change. The relative expression of AhBI-1 gene was lower in Al+SNP treatmentsthan in Al treatments only at 0 and 0.02 mmol L–1 in 99-1507, and at 0, 0.02, and 0.1 mmol L–1 in Zhonghua 2. The results showed that NO can alleviate Al toxicity in peanut, and it maybe relate to theregulationof the expression of programmed cell death related genes, while controls the programmed cell death.

Key words: Nitric Oxide, Peanut (Arachis hypoganea L.), Aluminum stress, Ameliorating effect, Gene expression

[1]Li Y-X(李云霞), Cheng X-X(程晓霞), Dai X-M(代晓梅), Zeng H-M(曾会明), Han L-B(韩烈保). Study on programmed cell death of plants in environmental stress. Biotechnol Bull (生物技术通讯), 2009, (4): 7-11 (in Chinese with English abstract)
[2]Mittler R. Oxidative stress, antioxidants, and stress tolerance. Trends Plant Sci, 2002, 7: 405-410
[3]Ruan H H, Shen W B, Xu L L. Nitric oxide involed in the abscisic acid induced praline accumulation in wheat seedling leaves under salt stress. Acta Bot Sin, 2004, 46: 1307-1315
[4]Leshem Y Y, Willis R B H, Ku V V V. Evidence for the function of the free radical gas—nitric oxide (NO) as an endogenous maturation and senescence regulating factor in higher plant. Plant Physiol Biochem, 1998, 36: 825-833
[5]Beligni M V, Lamattina L. Nitric oxide stimulates seed germination and de-etiolation, and inhibits hypocotylselongation, three light-inducible responses in plants. Planta, 2000, 210: 215-221
[6]Belign M V, Fath A, Bethake P C, Lamattina L, Jones R L. Nitric oxide acts as an antioxidant and delays programmed cell death in barely aleurone layers. Plant Physiol, 2002, 129: 1642-1650
[7]Chandok M R, Ytterberg A J, Van Wijk K J, Klessig D F. The pathegon-inducible nitric oxide synthase (iNOS) in plant is a variant of the P protein of the glycine decarboxylase complex. Cell, 2003, 113: 469-482
[8]Tian Q Y, Sun D H, Zhao M G, Zhang W H. Inhibition of nitric oxide synthase (NOS) underlies aluminum-induced inhibition of root elongation in Hibiscus moscheutos. New Phytol, 2007, 174: 322-331
[9]Garica-Mata C, Lamattina L. Nitric oxide induces stomatal closure and enchances the adaptive plant responses against drought stress. Plant Physiol, 2001, 126: 1196-1204
[10]Wang Y S, Yang Z M. Nitric oxide reduces aluminum toxicity by preventing oxidative stress in the roots of Cassia tora L. Plant & Cell Physiol, 2005, 46: 1915-1922
[11]He H-Y(何虎翼), He L-F(何龙飞), Li X-F(黎晓峰), Gu M-H(顾明华). Effect of sodium nitroprusside on mitochondrial function of rye and wheat root tip under aluminum stress. Acta Phytophys Sin (植物生理与分子生物学学报), 2006, 32(2): 239-244 (in Chinese with English abstract)
[12]Wang Y-S(王猷胜). The role of exogenous nitric oxide in modulating aluminum-induced oxidative stress in Cassia tora L. PhD Dissertation of Nanjing Agricultural University, 2005, pp 25-29 (in Chinese with English abstract)
[13]Delledone M, Xia Y, Dixon R A, Lamb C. Nitric oxide functions a signal in plant disease resistance. Nature, 1998, 394: 585-588
[14]Crawford N M, Guo F Q. New insights into nitric oxide metabolism and regulatory functions. Trends Plant Sci, 2005, 10: 195-200
[15]Shandong Peanut Research Institute (山东省花生研究所). Peanut Cultivation in China (中国花生栽培学). Shanghai: Shanghai Scientific and Technical Publishers, 1982 (in Chinese)
[16]Zhan J(詹洁), Kou R-J(寇瑞杰), Li C-Z(李创珍), He H-Y(何虎翼), He L-F(何龙飞). Effects of aluminum on physiological characteristics of mitochondrial membrane in peanut root tips. Acta Agron Sin (作物学报), 2009, 35(6): 1059-1067 (in Chinese with English abstract)
[17]Zhou R(周蓉), Liao B-T(廖伯寿), Chen X-M(陈小媚), Lei Y(雷永), Li D(李栋), Jin H-B(金华斌). Effect of Al stress on growth and development in peanut genotypes. Chin J Oil Crop Sci (中国油料作物学报), 1998, 20(2): 48-51 (in Chinese with English abstract)
[18]Liao B-T(廖伯寿), Zhou R(周蓉), Lei Y(雷永), Li D(李栋). Evaluation of tolerance to aluminum toxicity in high yielding groundnut genotype. Chin J Oil Crop Sci (中国油料作物学报), 2000, 22(1): 38-44 (in Chinese with English abstract)
[19]Yang Q(杨庆), Jin H-B(金华斌). The effect of aluminum stress on N, P and Ca absorpt ion of peanut varieties. Chin J Oil Crop Sci (中国油料作物学报), 2000, 22(2): 68-73 (in Chinese with English abstract)
[20]He L-F(何龙飞), Huang Y-M(黄咏梅), Mo C-M(莫长明), Li C-Z(李创珍), Lu S-A(卢升安), Li Z-G(李志刚). Effect of aluminum on membrane lipid peroxidation and protective enzyme activity of peanut root tips. J Guangxi Agric Biol Sci (广西农业生物科学), 2005, 24(3): 220-224 (in Chinese with English abstract)
[21]He L-F(何龙飞), Huang Y-M(黄咏梅), Zhan J(詹洁), Li C-Z(李创珍), Lu S-A(卢升安). Effect of aluminum on membrane peroxidation and organic acid secretion of mitochondria in peanut root tips. Chin J Oil Crop Sci (中国油料作物学报), 2006, 28(3): 293-297 (in Chinese with English abstract)
[22]Zhan J(詹洁), Kou R-J(寇瑞杰), He L-F(何龙飞). Effect of aluminum on morphological structure of peanut root tips. Chin J Oil Crop Sci (中国油料作物学报), 2008, 30(1): 79-83 (in Chinese with English abstract)
[23]Ruan H-H(阮海华), Shen W-B(沈文飚), Ye M-B(叶茂炳), Xu L-L(徐朗莱). Protection of nitric oxide on salt-induced membrane oxidation in wheat leaves. Chin Sci Bull (科学通报), 2001, 46(23): 1993-1997 (in Chinese)
[24]Ruan H-H(阮海华), Shen W-B(沈文飚), Liu K-L(刘开力), Xu L-L(徐朗莱). Effect of exogenous NO donor on glutathione- dependent antioxidative system in wheat seedling leaf under salt stress. Acta Agron Sin (作物学报), 2005, 31(9): 1144-1149 (in Chinese with English abstract)
[25]Chen S, Vaghchhipawala Z, Li W, Asard H, Dickman M B. Tomato phospholipid hydroperoxide glutathione peroxidase inhibits cell death induced by Bax and oxidative stresses in yeast and plants. Plant Physiol, 2004, 135: 1630-1641
[26]Zhao L Q, Zhang F, Guo J K, Yang Y L, Li B, Zhang L X. Nitric oxide function as a signal in salt resistance in the calluses from two ecotypes of reed. Plant Physiol, 2004, 134: 849-857
[27]Fan H-F(樊怀福), Guo S-R(郭世荣), Duan J-J(段九菊), Du C-X(杜长霞), Sun J(孙锦). The effect of exogenous nitric oxide on growth, active oxygen metabolism and photosynthetic characteristies in cucumber seedlings under NaCl stress. Acta Ecol Sin (生态学报), 2007, 27(2): 546-553 (in Chinese with English abstract)
[28]He B(何斌), Liang J(梁机). Highly sensitive spectrophotometric determination of aluminum in plant and soil water with chromazurol S, cetyltrimethylammonium bromide and alcohol. J Guangxi Agric Univ (广西农业大学学报), 1996, 15(2): 151-154 (in Chinese with English abstract)
[29]Jin H-B(金华斌), Yang Q(杨庆). Identification of tolerance to Al in peanut genotype. Chin J Oil Sci (中国油料作物学报), 1998, 21(4): 51-56 (in Chinese with English abstract)
[30]Delledonne M, Zeier J, Marocco A, Lamb C. Signal interactions between nitric oxide and reactive oxygen intermediates in the plant hypersensitive disease resistance response. Proc Natl Acad Sci USA, 2001, 98: 13454-13459
[31]Wink D A, Mitchell J B. Chemical biology of nitric oxide: insights into regulatory, cytotoxic, and cytoprotective mechanisms of nitric oxide. Free Radical Biol Med, 1998, 25: 434-456
[32]Kelm M, Schäfer S, Dahmann R, Dolu B, Perings S, Decking U K, Schrader J, Strauer B E. Nitric oxide induced contractile dysfunction is related to a reduction in myocardial energy generation. Cardiovasc Res, 1997, 36: 185-194
[33]Delledonne M, Zeier J, Marocco A. Signal interactions between nitric oxide and reaction oxygen intermedidates in the plant hypersensitive disease resistance response. Proc Natl Acad Sci USA, 2001, 98: 13454-13459
[34]Hong J K, Yun B W, Kang J G, Raja M U, Kwon E, Sorhagen K, Chu C, Wang Y, Loake G J. Nitric oxide function and signalling in plant disease resistance. J Exp Bot, 2008: 59: 147-154
[35]Zhang H-N(张海娜), Gu J-T(谷俊涛), Guo C-J(郭程瑾), Li C-D(李存东), Xiao K(肖凯). The basis of molecular biology of senescence in plants. Acta Pratacult Sin (草业学报), 2009, 18(1): 163-170 (in Chinese with English abstract)
[36]Zhao X-D(赵晓丹), Yang H-Y(杨红玉), Wang Y(王媛). Function of nitric oxide in signal transduction of plant resistance to environment stress. J Anhui Agric Sci (安徽农业科学), 2008, 36(22): 9397-9399, 9499 (in Chinese with English abstract)
[37]Ma W, Xu W, Xu H, Chen Y, He Z, Ma M. Nitric oxide modulates cadmium influx during cadmium-induced programmed cell death in tobacco BY-2 cells. Planta, 2010, 232: 325-335
[38]Watanabe N, Lam E. Arabidopsis Bax inhibitor-1 functions as an attenuator of biotic and abiotic types of cell death. Plant J, 2006, 45: 884-894
[39]Zheng K, Pan J W, Ye L. Programmed cell death-involved aluminum toxicity in yeast alleviated by antiapoptotic members with decreased calcium signals. Plant Physiol, 2007, 143: 38-49
[40]Ihara-Ohori Y, Nagano M, Muto S, Uchimiya H, Kawai-Yamada M. Cell death supressor Arabidopsis Bax inhibitor-1 is associated with calmodulin binding and ion homeostasis. Plant Physiol, 2007, 143: 650-660
[41]Nagano M, Ihara-Ohori Y, Imai H, Inada N, Fujimoto M, Tsutsumi N, Uchimiyab H, Kawai-Yamada M. Funtional association of cell death suppressor, Arabidopsis Bax inhibitor-1, with fatty acid 2-hydroxylation through cytochrome b5. Plant J, 2009, 58: 122-134
[42]Hückelhoven R, Kogel K H. Reactive oxygen intermediates in plant-microbe interactions: who is who in powdery mildew resistance? Planta, 2003, 216: 891-902
[1] Zhan Ge-Rui, Yu Wen, Li Feng, Wu Ming-Zhu, Xu Xin, Luo Zhao-Peng, Wu Sheng-Xin, Yang Jun, Zhang Zhi-Qiang, Wang Zhong. Functional study of NtWRKY6 in response to ABA expression and regulation of polyphenol synthesis [J]. Acta Agronomica Sinica, 2026, 52(2): 446-458.
[2] Jing Xiu-Qing, Cai Yong-Duo, Deng Ning, Zhao Xiao-Dong, Zhai Fei-Hong, Zeng Qun. Identification and expression pattern analysis of RopGEF family genes in Chenopodium quinoa [J]. Acta Agronomica Sinica, 2026, 52(1): 28-43.
[3] ZHANG Heng, FENG Ya-Lan, TIAN Wen-Zhong, GUO Bin-Bin, ZHANG Jun, MA Chao. Identification of TaSnRK gene family and expression analysis under localized root zone drought in wheat [J]. Acta Agronomica Sinica, 2025, 51(3): 632-649.
[4] XIAO Ming-Kun, YAN Wei, SONG Ji-Ming, ZHANG Lin-Hui, LIU Qian, DUAN Chun-Fang, LI Yue-Xian, JIANG Tai-Ling, SHEN Shao-Bin, ZHOU Ying-Chun, SHEN Zheng-Song, XIONG Xian-Kun, LUO Xin, BAI Li-Na, LIU Guang-Hua. Comparative transcriptome profiling of leaf in curled-leaf cassava and its mutant [J]. Acta Agronomica Sinica, 2024, 50(8): 2143-2156.
[5] GAO Wei-Dong, HU Chen-Zhen, ZHANG Long, ZHANG Yan-Yan, ZHANG Pei-Pei, YANG De-Long, CHEN Tao. Cloning and functional analysis of ubiquitin-conjugating enzymes TaUBC16 gene in wheat [J]. Acta Agronomica Sinica, 2024, 50(8): 1971-1988.
[6] WANG Ya-Qi, XU Hai-Feng, LI Shu-Guang, FU Meng-Meng, YU Xi-Wen, ZHAO Zhi-Xin, YANG Jia-Yin, ZHAO Tuan-Jie. Genetic analysis and two pairs of genes mapping in soybean mutant NT301 with disease-like rugose leaf [J]. Acta Agronomica Sinica, 2024, 50(4): 808-819.
[7] JU Ji-Hao, MA Chao, WANG Tian-Ning, WU Yi, DONG Zhong, FANG Mei-E, CHEN Yu-Shu, ZHANG Jun, FU Guo-Zhan. Genome wide identification and expression analysis of TaPOD family in wheat [J]. Acta Agronomica Sinica, 2024, 50(3): 779-792.
[8] YIN Xiang-Zhen, ZHAO Jian-Xin, HAO Cui-Cui, PAN Li-Juan, CHEN Na, XU Jing, JIANG Xiao, ZHAO Xu-Hong, WANG En-Qi, CAO Huan, YU Shan-Lin, CHI Xiao-Yuan. Cloning and expression analysis of transcription factor AhWRI1s in peanut [J]. Acta Agronomica Sinica, 2024, 50(12): 3155-3164.
[9] WANG Zi-Ran, LU Yi-Wei, YANG Jing-Yi, WANG Cheng-Long, SONG Ya-Ping, MA Jin-Hu. Effects of exogenous SA on physiological characteristics and stress-resistant gene expression of soybean under Cd stress [J]. Acta Agronomica Sinica, 2024, 50(11): 2883-2895.
[10] LIU Kai, CHEN Ji-Jin, LIU Shuai, CHEN Xu, ZHAO Xin-Ru, SUN Shang, XUE Chao, GONG Zhi-Yun. Dynamic change profile of histone H3K18cr on rice whole genome under cold stress [J]. Acta Agronomica Sinica, 2023, 49(9): 2398-2411.
[11] WEI Zheng-Xin, LIU Chang-Yan, CHEN Hong-Wei, LI Li, SUN Long-Qing, HAN Xue-Song, JIAO Chun-Hai, SHA Ai-Hua. Analysis of ASPAT gene family based on drought-stressed transcriptome sequencing in Vicia faba L. [J]. Acta Agronomica Sinica, 2023, 49(7): 1871-1881.
[12] DING Hong-Yan, FENG Xiao-Xi, WANG Bai-Yu, ZHANG Ji-Sen. Evolution and relative expression pattern of LRRII-RLK gene family in sugarcane Saccharum spontaneum [J]. Acta Agronomica Sinica, 2023, 49(7): 1769-1784.
[13] ZHANG Ying-Chuan, WU Xiao-Ming-Yu, TAO Bao-Long, CHEN Li, LU Hai-Qin, ZHAO Lun, WEN Jing, YI Bin, TU Jing-Xing, FU Ting-Dong, SHEN Jin-Xiong. Functional analysis of Bna-miR43-FBXL regulatory module involved in aluminum stress in Brassica napus [J]. Acta Agronomica Sinica, 2023, 49(5): 1211-1221.
[14] WANG Zhen, ZHANG Xiao-Li, LIU Miao, YAO Meng-Nan, MENG Xiao-Jing, QU Cun-Min, LU Kun, LI Jia-Na, LIANG Ying. Transcriptional differential expression analysis between BnMAPK1-overexpression and Zhongyou 821 rapeseed (Brassica napus L.) [J]. Acta Agronomica Sinica, 2023, 49(3): 856-868.
[15] YU Chao, LI Guo-Long, SUN Ya-Qing, LI Ning-Ning, ZHANG Shao-Ying. Characteristics of respiratory metabolism in growth and development of sugar beet taproot [J]. Acta Agronomica Sinica, 2023, 49(12): 3377-3386.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!