Crops ›› 2018, Vol. 34 ›› Issue (5): 121-126.doi: 10.16035/j.issn.1001-7283.2018.05.019
Previous Articles Next Articles
Wang Jianan,Li Xiaoyan,Wei Shimei,Zhao Huijie,Zhao Mingqi,Wang Yuexia
[1] |
Wei Q H, Zhang F, Sun F S , et al. A wheat MYB transcriptional repressor TaMyb1D regulates phenylpropanoid metabolism and enhances tolerance to drought and oxidative stresses in transgenic tobacco plants. Plant Science, 2017,265:112-123.
doi: 10.1016/j.plantsci.2017.09.020 |
[2] |
Sharma M, Gupta S K, Majumder B , et al. Salicylic acid mediated growth,physiological and proteomic responses in two wheat varieties under drought stress. Journal of Proteomics, 2017,163:28-51.
doi: 10.1016/j.jprot.2017.05.011 |
[3] | 李合生 . 现代植物生理学. 2版. 北京: 高等教育出版社, 2006: 151. |
[4] | Chen Y E, Zhang C M, Su Y Q , et al. Responses of photosystem Ⅱ and antioxidative systems to high light and high temperature costress in wheat. Environmental & Experimental Botany, 2017,135(3):45-55. |
[5] |
汪月霞, 索标, 赵鹏飞 , 等. 外源ABA对干旱胁迫下不同品种灌浆期小麦psbA基因表达的影响. 作物学报, 2011,37(8):1372-1377.
doi: 10.3724/SP.J.1006.2011.01372 |
[6] |
Chen, Y E , Liu W J,Su Y Q,et al. Different response of photosystem Ⅱ to short and long-term drought stress in Arabidopsis thaliana. Physiologia Plantarum, 2016,158(2):225-235.
doi: 10.1111/ppl.12438 |
[7] |
侯鹏飞, 马俊青, 赵鹏飞 , 等. 外源甜菜碱对干旱胁迫下小麦幼苗叶绿体抗氧化酶及psbA基因表达的调节. 作物学报, 2013,39(7):1319-1324.
doi: 10.3724/SP.J.1006.2013.01319 |
[8] |
Wang Y X, Suo B, Zhao T F , et al. Effect of nitric oxide treatment on antioxidant responses and psbA gene expression in two wheat cultivars during grain filling stage under drought stress and rewatering. Acta Physiologiae Plantarum, 2011,33(5):1923-1932.
doi: 10.1007/s11738-011-0740-x |
[9] |
Wang Y X, Liu S C, Zhang H L , et al. Glycine betaine application in grain filling wheat plants alleviates heat and high light-induced photoinhibition by enhancing the psbA transcription and stomatal conductance. Acta Physiologiae Plantarum, 2014,36(8):2195-2202.
doi: 10.1007/s11738-014-1596-7 |
[10] | Naeem M S, Warusawitharana H, Liu H B , et al. 5-aminolevulinic acid alleviates the salinity-induced changes in Brassica napus as revealed by the ultrastructural study of chloroplast. Plant Physiology & Biochemistry, 2012,57(8):84-92. |
[11] |
Liu M R, Li J H, Niu J H , et al. Interaction of drought and 5-aminolevulinic acid on growth and drought resistance of Leymus chinensis seedlings. Acta Ecologica Sinica, 2016,36(3):180-188.
doi: 10.1016/j.chnaes.2016.04.004 |
[12] |
Niu K J, Ma X, Liang G L , et al. 5-Aminolevulinic acid modulates antioxidant defense systems and mitigates drought-induced damage in Kentucky bluegrass seedlings. Protoplasma, 2017,254(6):2083.
doi: 10.1007/s00709-017-1101-4 |
[13] | Phung T H, Jung S . Perturbed porphyrin biosynthesis contributes to differential herbicidal symptoms in photodynamically stressed rice (Oryza sativa) treated with 5-aminolevulinic acid and oxyfluorfen. Pesticide Biochemistry & Physiology, 2014,116:103-110. |
[14] | Sancho-knapik D, Gismero J, Asensio A , et al. Microwave l-band (1730MHz) accurately estimates the relative water content in poplar leaves. A comparison with a near infrared water index (R1300/R1450). Agricultural & Forest Meteorology, 2011,151(7):827-832. |
[15] |
Baglieri A, Cadili V, Monterumici C M , et al. Fertilization of bean plants with tomato plants hydrolysates. Effect on biomass production,chlorophyll content and N assimilation. Scientia Horticulturae, 2014,176(2):194-199.
doi: 10.1016/j.scienta.2014.07.002 |
[16] | Shang Y H, Yang C J, Liu Z H , et al. New evidence for primordial action site of Fluazifop-P-butyl on Acanthospermum hispidum,seedlings:From the effects on chlorophyll fluorescence characteristics and histological observation. Pesticide Biochemistry & Physiology, 2017,142:170-175. |
[17] |
Zhao H J, Zhao X J, Ma P F , et al. Effects of salicylic acid on protein kinase activity and chloroplast D1 protein degradation in wheat leaves subjected to heat and high light stress. Acta Ecologica Sinica, 2011,31(5):259-263.
doi: 10.1016/j.chnaes.2011.06.006 |
[18] | 刘畅, 李雪妹, 谭佳缘 , 等 .( 聚乙二醇PEG)模拟水分胁迫对水稻幼苗矿质离子含量的影响. 作物杂志, 2017(5):162-167. |
[19] | Song J X, Anjum S A, Zong X F , et al. Combined foliar application of nutrients and 5-aminolevulinic acid (ALA) improved drought tolerance in Leymus chinensis by modulating its morpho-physiological characteristics. Crop & Pasture Science, 2017,68(5):474-482. |
[20] |
Akram N A, Iqbal M, Muhammad A , et al. Aminolevulinic acid and nitric oxide regulate oxidative defense and secondary metabolisms in canola (Brassica napus L.) under drought stress. Protoplasma, 2018,255:163-174.
doi: 10.1007/s00709-017-1140-x |
[21] | 张姣, 吴奇, 周宇飞 , 等. 苗期和灌浆期干旱-复水对高粱光合特性和物质生产的影响. 作物杂志, 2018(3):148-154. |
[22] | 谢静静, 王笑, 蔡剑 , 等. 苗期外源脱落酸和茉莉酸缓减小麦花后干旱胁迫的效应及其生理机制. 麦类作物学报, 2018,38(2):221-229. |
[23] | Pospíšil P, Yamamoto Y . Damage to photosystem Ⅱ by lipid peroxidation products. BBA-General Subjects, 2017,1861(2):457-466. |
[24] |
Xue R L, Wang S Q, Xu H L , et al. Progesterone increases photochemical efficiency of photosystem Ⅱ in wheat under heat stress by facilitating D1 protein phosphorylation. Photosynthetica, 2017,55(4):664-670.
doi: 10.1007/s11099-016-0681-0 |
[1] | Zhao Xin,Chen Shaofeng,Wang Hui,Liu Sancai,Yang Xiushi,Zhang Baolin. Research on the Yield and Quality of Different Tartaty Buckwheat Varieties in Northern Shanxi Area [J]. Crops, 2018, 34(5): 27-32. |
[2] | Wang Hanxia,Shan Fuhua,Tian Liping,Ma Qiaoyun,Zhao Changping,Zhang Fengting. Analysis of Stability and Adaptability of Winter Wheat Varieties in the Regional Trials of the Northern Wheat Region of China [J]. Crops, 2018, 34(5): 40-44. |
[3] | Tang Liyuan,Li Xinghe,Zhang Sujun,Wang Haitao,Liu Cunjing,Zhang Xiangyun,Zhang Jianhong. QTL Mapping for Photosynthesis Related Traits in Upland Cotton [J]. Crops, 2018, 34(5): 85-90. |
[4] | An Xia,Zhang Haijun,Jiang Fangshan,Lianjie Lü,Chen Jun. Effects of Different Sowing Dates and Sowing Densities on the Population Structure and Yield of Two Spike Type Winter Wheats [J]. Crops, 2018, 34(5): 132-136. |
[5] | Mei Lu,Min Sun,Aixia Ren,Miaomiao Lei,Lingzhu Xue,Zhiqiang Gao. Effects of Spraying Foliar Fertilizers on Dryland Wheat Growth and the Correlation with Yield Formation [J]. Crops, 2018, 34(4): 121-125. |
[6] | Huiqin Wen,Tianling Cheng,Ziyou Pei,Xue Li,Lisheng Zhang,Mei Zhu. Analysis of Comprehensive Characteristics of Wheat Varieties Registered in Shanxi Province in Recent Years [J]. Crops, 2018, 34(4): 32-36. |
[7] | Fei Yang,Wenli Ma,Yongwei Chen,Zhansheng Zhang,Hao Wang. The Effects of Uniform Sowing and Drip Irrigation on the Spike Differentiation and Yield of Spring Wheat [J]. Crops, 2018, 34(4): 84-88. |
[8] | Guangcai Zhao,Xuhong Chang,Demei Wang,Zhiqiang Tao,Yanjie Wang,Yushuang Yang,Yingjie Zhu. General Situation and Development of Wheat Production [J]. Crops, 2018, 34(4): 1-7. |
[9] | Baoquan Quan,Dongmei Bai,Yuexia Tian,Yunyun Xue. Effects of Different Leaf-Peg Ratio on Photosynthesis and Yield of Peanut [J]. Crops, 2018, 34(4): 102-105. |
[10] | Zheng Wang,Zhaobo Chen,Shengquan Zhang,Liping Ren,Xinhuan Gao,Zhijie Ye,Fengting Zhang. Feasibility Analysis of BS Series Hybrid Wheat Seed Production in Weinan of Shaanxi Province [J]. Crops, 2018, 34(3): 174-179. |
[11] | Junchan Wang,Zhifu Gao,Dongsheng Li,Dongmei Zhu,Hongya Wu. The Application of Agricultural Information Technology in Wheat Breeding [J]. Crops, 2018, 34(3): 37-43. |
[12] | Bin Zhang,Jinxiu Li,Zhen Wang,Hao Feng,Jinbang Li. Correlation and Cluster Analysis of Agronomic Traits in Wheat Lines [J]. Crops, 2018, 34(3): 57-60. |
[13] | Xiaohua Shi,Haiying Yang,Wenqin Kang,Yonglin Qin,Mingshou Fan,Liguo Jia. Effects of Nitrogen Fertilization on Crop Yields and Soil Nitrogen Balance in Potato-Wheat System [J]. Crops, 2018, 34(2): 108-116. |
[14] | Shaohui Huang,Yunma Yang,Ketong Liu,Yanming Sun,Junfang Yang,Liangliang Jia. Yield Potential, Yield Gap and Nitrogen Use Efficiency Gap of Winter Wheat in Hebei Province [J]. Crops, 2018, 34(2): 118-122. |
[15] | Min Song,Haipeng Zhang,Xingtao Lu,Cuixia Wu,Yong Zhang. Control Effect of Six Soil-Applied Herbicides on Lamium amplexicaule L. in Winter Wheat Field [J]. Crops, 2018, 34(2): 161-165. |
|