Acta Agron Sin ›› 2017, Vol. 43 ›› Issue (11): 1677-1688.doi: 10.3724/SP.J.1006.2017.01677
• TILLAGE & CULTIVATION · PHYSIOLOGY & BIOCHEMISTRY • Previous Articles Next Articles
SHA Han-Jing, HU Wen-Cheng, JIA Yan, WANG Xin-Peng, TIAN Xue-Fei, YU Mei-Fang, and ZHAO Hong-Wei*
| [1]Koca H, Bor M, Özdemir F, Türkan ?.The effect of salt stress on lipid peroxidation, antioxidative enzymes and proline content of sesame cultivars.Environ Exp Bot, 2007, 60:344–351 [2]Negrão S, Courtois B, Ahmadi N, Abreu I, Saibo N, Oliveira MM.Recent updates on salinity stress in rice: from physiological to molecular responses.Crit Rev Plant Sci, 2011, 30:329–377 [3]杨劲松. 中国盐渍土研究的发展历程与展望. 土壤学报, 2008, 45:837–845 Yang J S.Development and prospect of the research onsalt-affected soils in china.ActaPedol Sin, 2008, 45:837–845(in Chinese with English abstract) [4]Walia H, Wilson C, Zeng L, Ismail AM, Condamine P, Close TJ. Genome-wide transcriptional analysis of salinity stressed japonica and indica rice genotypes during panicle initiation stage. Plant Mol Biol, 2007, 63:609–623 [5]祁栋灵, 韩龙植, 张三元.水稻耐盐/碱性鉴定评价方法. 植物遗传资源学报, 2005, 6:226–230 Qi D L, Han L Z, Zhang S Y. Methods of characterization and evaluation of salt oralkaline tolerance in rice. J Plant Genet Resour, 2005, 6:226–230(in Chinese with English abstract) [6]Jayakannan M, Bose J, Babourina O, Rengel Z, Shabala S. Salicylic acid in plant salinity stress signalling and tolerance. Plant Growth Regul, 2015, 76:25–40 [7]Janda M, Ruelland E. Magical mystery tour: Salicylic acid signalling. Environ Exp Bot, 2015, 114:117–128 [8]Kang G, Li G, Guo T. Molecular mechanism of salicylic acid-induced abiotic stress tolerance in higher plants. Acta Physiol Plant, 2014, 36:2287–2297 [9]Horváth E, Szalai G, Janda T. Induction of abiotic stress tolerance by salicylic acid signaling. J Plant Growth Regul, 2007, 26:290–300 [10]Ashraf M, Akram NA, Arteca RN, Foolad MR. The physiological, biochemical and molecular roles of brassinosteroids and salicylic acid in plant processes and salt tolerance. Crit Rev Plant Sci, 2010, 29:162–190 [11]Hayat Q, Hayat S, Irfan M, Ahmad A. Effect of exogenous salicylic acid under changing environment: a review. Environ Exp Bot, 2010, 68:14–25 [12]Arfan M, Athar HR, Ashraf M. Does exogenous application of salicylic acid through the rooting medium modulate growth and photosynthetic capacity in two differently adapted spring wheat cultivars under salt stress? J Plant Physiol, 2007, 164:685–694 [13]Pirasteh-Anosheh H, Emam Y, Rousta M J, Ashraf M. Salicylic acid induced salinity tolerance through manipulation of ion distribution rather than ion accumulation. J Plant Growth Regul, 2017, 36: 227–239 [14]沙汉景.外源脯氨酸对盐胁迫下水稻耐盐性的影响. 东北农业大学硕士学位论文, 黑龙江哈尔滨, 2013 Sha H J. Effect of Exogenous Proline on the Salt-tolerance of Rice (Oryza Sativa L.). MS Thesis of Northeast Agricultural University, Harbin, China, 2013 (in Chinese with English abstract) [15]Bhusan D, Das DK, Hossain M, Murata Y, Hoque MA. Improvement of salt tolerance in rice (Oryza sativa L.) by increasing antioxidant defense systems using exogenous application of proline. Aust J Crop Sci, 2016, 10:50–56 [16] El Habbasha S F, Mekki B B. Amelioration of the growth, yield and chemical constituents of canola plants grown under salinity stress condition by exogenous application of proline. Int J Adv Res, 2013, 2:501–508 [17]周翔.盐胁迫诱导玉米幼苗GABA积累的生理作用. 中国农业大学硕士学位论文, 北京, 2004 Zhou X. The Physiological Role of salt Stress-induced GABA Accumulation inZea Mays. MS Thesis of China Agricultural University, Beijing, China, 2004 (in Chinese with English abstract) [18]高洪波, 章铁军, 吕桂云, 吴晓蕾, 周志男. NaCl胁迫下外源γ-氨基丁酸对黄瓜幼苗生长和活性氧代谢的影响. 西北植物学报,2007, 27:2046–2051 Gao H B, Zhang T J, Lv G Y,Wu X L, Zhou Z N. Effects of exogenous γ-aminobutyric acid on growth and reactive oxygen species metabolism of cucumber seedlings under NaCl Stress. Acta Bot Boreali-Occident Sin, 2007, 27:2046–2051(in Chinese with English abstract) [19]徐中儒.回归分析与试验设计. 北京:中国农业出版社, 1998.pp124–161 Xu Z R. Regression Analysis and Experimental Design. Beijing: China Agriculture Press, 1998. pp 124–161(in Chinese) [20]Maas EV, Grattan SR. Crop yields as affected by salinity. In: van Schilfgaarde J,Skaggs R W, eds.Agricultural Drainage, Madison, WI: ASA, CSSA, SSA, 1999. pp 55–108 [21]Grattan SR, Zeng L, Shannon MC, Roberts SR. Rice is more sensitive to salinity than previously thought. Calif Agric, 2002, 56(6):189–198 [22]Esan AM, Olaiya CO. Effect of salicylic acid (SA) seeds soaking on the NaCl salt stress induced changes in soluble sugar and protein accumulation in organs of two genotypes of okra plants. Afr JPlant Sci, 2016, 10(6):105–110 [23] Farhangi-Abriz S, Ghassemi-Golezani K. Improving amino acid composition of soybean under salt stress by salicylic acid and jasmonic acid. J Appl Bot Food Qual, 2016, 89:243–248 [24] Qados AMSA. Effects of salicylic acid on growth, yield and chemical contents of pepper (Capsicum Annuum L) plants grown under salt stress conditions. Int J Agric Crop Sci, 2015, 8:107–113 [25] Agami RA. Applications of ascorbic acid or proline increase resistance to salt stress in barley seedlings. BiolPlant, 2014, 58:341–347 [26] Teh CY, Shaharuddin NA, Ho CL, Mahmood M. Exogenous proline significantly affects the plant growth and nitrogen assimilation enzymes activities in rice (Oryza sativa) under salt stress. Acta Physiol Plant, 2016, 38(6):1–10 [27] Wutipraditkul N, Wongwean P, Buaboocha T. Alleviation of salt-induced oxidative stress in rice seedlings by proline and/or glycinebetaine. Biol Plant, 2015, 59:547–553 [28] Ziogas V, Tanou G, Belghazi M, Diamantidis G, Molassiotis A. Characterization of β-amino- and γ-amino butyric acid-induced citrus seeds germination under salinity using nanoLC-MS/MS analysis. Plant Cell Rep, 2017, 36: 787–789 [29] Xiang L, Hu L, Xu W, Zhen A, Zhang L, Hu X. Exogenous γ-aminobutyric acid improves the structure and function of photosystem II in muskmelon seedlings exposed to salinity-alkalinity stress. PLoS One, 2016, 11(10):e0164847 [30] Nazar R, Iqbal N, Syeed S, Khan N A. Salicylic acid alleviates decreases in photosynthesis under salt stress by enhancing nitrogen and sulfur assimilation and antioxidant metabolism differentially in two mungbean cultivars. J Plant Physiol, 2011, 168(8):807–815 [31] Wani A S, Ahmad A, Hayat S, Tahir I. Is foliar spray of proline sufficient for mitigation of salt stress in Brassica juncea. Environ Sci Pollut Res, 2016, 23(13): 13413–13423 [32] 赵九洲, 胡立盼, 徐志然, 申璐, 胡晓辉. 甜瓜幼苗耐盐碱性及缓解盐碱胁迫γ-氨基丁酸浓度的筛选. 北方园艺, 2014, (9): 1–7 Zhao J Z, Hu LP, Xu Z R, Shen L, Hu X H. The screening of melon (Cucumis melo L.) seedling cultivar for salt-alkaline tolerance and the concentration of γ –aminobutyric acid alleviating salt-alkaline stress. North Hortic, 2014, (9): 1–7(in Chinese with English abstract) [33] Akhtar J, Ahmad R, Ashraf MY, Tanveer A, Warrich EA, Oraby H. Influence of exogenous application of salicylic acid on saltstressed mungbean (Vigna radiata): growth and nitrogen metabolism. Pak J Bot, 2013, 45:119–125 [34] 马敬坤, 袁永泽, 欧吉权, 欧阳敏, 鲍世颖, 张楚富.外源水杨酸对水稻(Oryza sativa L.)幼苗根的NaCl胁迫缓解效应. 武汉大学学报(理学版),2006, 52(4):471–474 Ma J K, Yuan Y Z, Ou J Q, Ouyang M, Bao S Y, Zhang C F. Relieving effect of exogenous salicylic acid on rice (Oryza sativa L.) seedling roots under NaCl stress. J Wuhan Univ (Nat Sci Edn), 52(4):471–474(in Chinese with English abstract) [35] Li Z, Yu J, Peng Y, Huang B. Metabolic pathways regulated by abscisic acid, salicylic acid and gamma-aminobutyric acid in association with improved drought tolerance in creeping bentgrass (Agrostis stolonifera). Physiol Plant, 2017, 159: 42–58 [36] Wu L, Hu X, Wang S, Tian L, Pang Y, Han Z, Wu L, Chen Y. Quantitative analysis of changes in the phosphoproteome of maize induced by the plant hormone salicylic acid. Sci Rep-UK, 2015, 5:18155 |
| [1] | Hu Chuan, Zhao Kai-Nan, Huang Xiu-Li, Wu Jin-Zhi, Ren Kai-Ming, Wang He-Zheng, Fu Guo-Zhan, Huang Ming, Li You-Jun. Effects of tillage methods and nitrogen rates on yield and quality of dryland wheat under one-off irrigation [J]. Acta Agronomica Sinica, 2026, 52(6): 1830-1846. |
| [2] | Ma Sheng-Qian, Wang Zhi-Ping, Chen Hao-Tian, Dou Shu-Xian, Zhang Yan, Deng Ai-Xing, Zhang Wei-Jian, Yuan Xiang-Yang, Song Zhen-Wei. Effects of tillage methods and nitrogen application rate on maize yield and soil aggregates in northeastern China under straw returning [J]. Acta Agronomica Sinica, 2026, 52(6): 1802-1816. |
| [3] | Hu Zhao, Qian Run, Xie Feng-Pu, Ying Su-Ping. Genome-wide identification and expression analysis of the SPX gene family in rice under phosphorus treatment [J]. Acta Agronomica Sinica, 2026, 52(6): 1902-1912. |
| [4] | Zou Yi-Mei, Xu Min, Wang Hai-Yang, Yao Hui, Wang Jia-Feng, Liu Hao, Ren Dai-Sheng. Analysis of transcription factor regulatory networks in two-line male sterile rice seedling roots in response to salt stress [J]. Acta Agronomica Sinica, 2026, 52(6): 1728-1742. |
| [5] | Zhang Si-Si, Zhao Xiang-Hui, Zhou Yang, Yao Yun-Feng, Zhu Rong-Yu, Dong Yuan-Jie, Hu Guo-Qing, Xu Tong, Liu Zhao-Xin. Effects of plowing and green manure returning in winter fallow period on soil physicochemical properties and yield in continuously cropped peanut [J]. Acta Agronomica Sinica, 2026, 52(5): 1472-1486. |
| [6] | Zhang Ning-Ning, Teng Yu-Fei, Ren Na-Na, Wei Xing-Zhuo, Yan Shu-Hao, Fan Ke-Xin, Wang Yong-Hong, Chen Wen-Kang, Zhang Xing-Hua, Zhu Wan-Chao, Xu Shu-Tu, Xue Ji-Quan. Phenotypic evaluation and plasticity analysis of drought resistance in 201 maize inbred lines [J]. Acta Agronomica Sinica, 2026, 52(5): 1309-1325. |
| [7] | Zhang Zhen, Feng Lian-Jie, Shi Yu, Yu Zhen-Wen, Zhang Yong-Li. Yield formation of wheat with different ear types under water-saving supplementary irrigation conditions [J]. Acta Agronomica Sinica, 2026, 52(5): 1522-1535. |
| [8] | Yan An, Jiang Kun-Wei, Wang Rong-Yuan, Tian Lin, Zhang Lu, Wang Yun, Xu Jian-Long. Identification and cloning of SVN7 controlling small vascular bundle number in the rice flag leaf [J]. Acta Agronomica Sinica, 2026, 52(5): 1364-1372. |
| [9] | Liu Xin-Meng, Ren Hao, Zhang Ji-Bo, Zhang Ji-Wang, Zhao Bin, Ren Bai-Zhao, Liu Peng, Wang Hong-Zhang. Physiological mechanisms of methyl jasmonate (MeJA) alleviating the effects of heat stress on ear differentiation in maize [J]. Acta Agronomica Sinica, 2026, 52(5): 1561-1572. |
| [10] | Wang Zhuang-Zhuang, Wu Zi-Jun, Zhang Yong-Xin, Zhang Xin-Yuan, Yuan Li-Xue, Chen Ru-Xue, Liu Shi-Ju, Duan Jian-Zhao, Feng Wei, Wang Tong-Chao, Wang Yong-Hua. Optimized water-nitrogen synergy enhances winter wheat yield and nitrogen use efficiency in clay-loam fluvo-aquic soils of southeastern Henan, China [J]. Acta Agronomica Sinica, 2026, 52(5): 1501-1521. |
| [11] | Zhang Hong-Rong, Wang Fei-Er, Li Pan, Qiu Hai-Long, Zhu Jing, Zhao Lian-Hao, Nan Yun-You, He Wei, Fan Zhi-Long, Hu Fa-Long, Chai Qiang, Yin Wen. Photosynthetic characteristics of 20% reduced irrigation combined with 25% organic substitution for chemical fertilizer in increasing silage maize yield [J]. Acta Agronomica Sinica, 2026, 52(5): 1487-1500. |
| [12] | Wang Yu-Cheng, Zhang Lu, Liu A-Kang, Huang Jian-Liang, Peng Shao-Bing, Yuan Shen. Strategies and prospects for large-scale crop yield improvement based on yield gap [J]. Acta Agronomica Sinica, 2026, 52(5): 1279-1290. |
| [13] | Zhao Jia-Xue, Zhou Long-Hao, Guo Qi-Yuan, Shang Lun-Xiao, Wang Han, Liu Zhi-Tao, Chen Xi, Zhang Xiao-Pei, Song Xian-Liang, Ahmedov Miraziz Baltaevich, Mao Li-Li. Long-term stubble return and subsoiling enhance cotton yields in coastal saline-alkali soils by improving soil conditions and photosynthetic characteristics [J]. Acta Agronomica Sinica, 2026, 52(5): 1548-1560. |
| [14] | Guo Xing-Yu, Hu Dan, Lin Su-Qi, Wang Meng-Kai, Tan Wen-Feng, Huang Chuan-Qin. Biochar combined with chemical fertilizer increases maize yield and soil ecosystem multifunctionality in an intercropped maize-soybean [J]. Acta Agronomica Sinica, 2026, 52(5): 1536-1547. |
| [15] | Chen Wei, Wei Wan-Juan, Zhao Qi-Bing, Chang Dong-Wei, Yu Ling-Bo, Zhai Peng-Fei, Feng Zhi-Ming, Chen Zong-Xiang, Ren Yang-Tao, Yang Peng, Liu Hai-Lang, Li Zhen-Fu, Yang Yong-Le, Jin Yan-Gang, Zuo Shi-Min. Developing new germplasm of high-quality and early-maturing rice by editing Hd6 via CRISPR/Cas9 [J]. Acta Agronomica Sinica, 2026, 52(4): 1046-1056. |
|
||