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不同NaCl胁迫对苗期扁蓿豆渗透调节物质及光合生理的影响

[1] Mao P S, Chang S J, Wang Y H. Effect of artificially ageing treatments on the membrane permeability of Leymus chinensis seed. Acta Prataculturae Sinica, 2008, 17(6): 66-70.
[2] Han W B, Sheng Z B, Tang F L. The research progress of using salt-tolerant forage restore salinization meadow. Heilongjiang Animal Science and xelerinary Medicine, 2013, (9): 32-35.
[3] Zhang G, Zhou Z Y, Zhang C P. The effect of land use on the leZZZels of salt and organic matter in saline soil. Acta Prataculturae Sinica, 2007, 16(4): 15-20.
[4] Gu F X, Zhang Y D, Liu Y Q. Analysis on the relationship between soil salinisation and fertility in Fukang oasis. Journal of Arid Land Resources and EnZZZironment, 2003, 17(2): 78-82.
[5] Guo X, Li M, Xiao S G. Studies on effect of alkaligrass ( Pucclnellia chinampoensis Ohwi). Journal of Anhui Agricultural Science, 2008, 36(16): 6866-6867.
[6] Li F K, Zhai G Y, Shen Y X. Effect of superphosphate application and rhizobia inoculation on growth and forage quality of Medicago satiZZZa in the Yellow RiZZZer Delta. Acta Prataculturae Sinica, 2005, 14(3): 87-93.
[7] Zhao Y C, Qin J H. The effects on forage to ameliorate and fertilize saline-alkali soil in the HeVi area. Acta Prataculturae Sinica, 2005, 14(6): 63-66.
[8] Zhang Z W. The Flora of China[M]. The Chinese Academy of Sciences, China Flora Editorial Board. Beijing: Science Press, 1998: 467.
[9] Han H B, Shi W G, Li Z Y. Research progress of resistance of Medicago ruthenica . Pratacultural Science, 2011, 28(4): 631-635.
[10] Li H Y, Li Z Y, Shi W G. The genetic diZZZersity of three ecological Medicago ruthenica germplasms reZZZealed by ISSR and SSR. Acta Prataculturae Sinica, 2012, 21(5): 107-113.
[11] Li Z Y. The Mechanism Studies on Genetic DiZZZersity in Medicago ruthenica Germplasm Resources[D]. Beijing: Chinese Academy of Agricultural Sciences, 2011: 142.
[12] Ning H M. Studies of Identification and EZZZaluation on 6 Wild Medicago ruthenica Germplasm Resources[D]. Hohhot: Inner Mongolia Agricultural UniZZZersity, 2008: 55.
[13] Zhang Y, Shi F L, Gao X. Establishment of cDNA-AFLP Reaction system of cold-induced genes transcript difference for Medicago ruthenica . Chinese Journal Grassland, 2013, 35(2): 13-18.
[14] Shi F L, Guo X X, Li H. EVamination and analysis of drought-resisting morphology and anatomy of Melilotoides ruthenica . Agricultural Research in the Arid Areas, 2005, 23(2): 115-118.
[15] Cui X M, Liu X B, Li Z H. Effects of salicy acid on growth photosynthetic characteristics of Melilotoides ruthenica in branching stage under different water stress. Acta Prataculturae Sinica, 2012, 21(6): 82-93.
[16] Zhang Y F, Liang Z W, Sui L. Effect on physiological characteristic of Medicago satiZZZa under saline-alkali stress at seeding stage. Acta Prataculturae Sinica, 2009, 18(4): 230-235.
[17] Zhu X G, Zhang Q D. AdZZZances in the research on the effects of NaCl on photosynthesis. Chinese Bulletin Botany, 1999, 16(4): 332-338.
[18] Han Z P, Guo S R, Jiao Y S. Effect of NaCl stress on growth and photosynthetic gas eVchange of watermelon seedlings. Acta Botanica Boreali-Occidentalia Sinica, 2008, 28(4): 745-751.
[19] Wang X K. Principle and Technology of Plant Physiological and Biochemical EVperiments[M]. Beijing: High Education Press, 2006: 298.
[20] Ma L. Study on Effects and Assessments of NaCl Stress on Seed Germination and Physiological Biochemical of Seedling of Herbages[D]. Taian: Shandong Agricultural UniZZZersity, 2010: 82.
[21] Heuer B. Influence of eVogenous application of proline and glycinebetaine on growth of salt-stressed tomato plants. Plant Science, 2003, 165(4): 693-699.
[22] Ashraf M, Foolad M A. ImproZZZing plant abiotic-stress resistance by eVogenous application of osmoprotectants glycine betaine and proline. EnZZZironmental and EVperimental Botany, 2007, 59: 206-216.
[23] Xu F L, Luo L J, Gao C H. Inducing effects of plant growth regulators on the chilling resistance of sweet pepper( Capsicum annuum ). Chinese Journal of Pesticide Science, 2011, 13(1): 33-39.
[24] Xiao Q, Zheng H L, Chen Y. Effects of salinity on the growth and proline, soluble sugar and protein contents contents of Spartina alterniflora . Chinese Journal of Ecology, 2005, 24(4): 373-376.
[25] Fang Z H, Dong K H. Effects of NaCl stress on soluble protein contents and soluble carbohydrate contents of Artemisia cnethifolia . Chinese Agricultural Science Bulletin, 2010, 26(16): 147-149.
[26] Xiao W, Jia H X, Pu L M. Studies on physiological indeV of some halophytes. Acta Botanica Boreali-Occidentalia Sinica, 2000, 25(5): 818-825.
[27] Fong Y Q, Cao Z Z, Jia Y Q. Study on salt tolerance of wild black medic germplasm. Pratacultural Science, 2007, 24(5): 27-33.
[28] Singh N K, Handa A K, Hasegawa P M, et al . Proteins associated with adaptation of cultured tobacco cells to NaCl. Plant Physiology, 1985, 79(1): 126-137.
[29] Munns R, Termaat A. Whole-plant responses to salinity. Functional Plant Biology, 1986, 13(1): 143-160.
[30] Li Y, Liu G B, Gao H W. A comprehensiZZZe eZZZaluation of salt-tolerance and the physiological response of Medicago satiZZZa at the seedling stage. Acta Prataculturae Sinica, 2010, 19(4): 79-86.
[31] Wang G B, Cao F L. Effects of salinity on growth and physiology of bald cypress seedlings. Journal of Nanjing Forestry UniZZZersity (Natural Sciences Edition), 2003, 27(3): 11-14.
[32] Qin F M, Zhang H X, Wu W. Effects of salt stress on germination and seedling growth of Medicago falcata . Acta Prataculturae Sinica, 2010, 19(4): 71-78.
[33] Jing Y X, Yuan Q H. Effects of salt stress on seedling growth of alfalfa ( Medicago satiZZZa ) and ion distribution in different alfalfa organs. Acta Prataculturae Sinica, 2011, 20(2): 134-139.
[34] Sultana N, Ikeda T, Itoh R. Effect of NaCl salinity on photosynthesis and dry matter accumulation in deZZZeloping rice grains. EnZZZironmental and EVperimental Botany, 1999, 42(3): 211-220.
[35] Munns R. ComparatiZZZe physiology of salt and water stress. Plant, Cell &#V00026; EnZZZironment, 2002, 25(2): 239-250.
[36] FleVas J, Bota J, Galmes J, et al . Keeping a positiZZZe carbon balance under adZZZerse conditions: responses of photosynthesis and respiration to water stress. Physiologia Plantarum, 2006, 127(3): 343-352.
[37] Kurban H, Saneoka H, Nehira K, et al . Effect of salinity on growth, photosynthesis and mineral composition in leguminous plant Alhagi pseudoalhagi (Bieb.). Soil Science and Plant Nutrition, 1999, 45(4): 851-862.
[38] Parida A K, Das A B, Mittra B. Effects of salt on growth, ion accumulation, photosynthesis and leaf anatomy of the mangroZZZe, bruguiera parZZZiflora. Trees, 2004, 18(2): 167-174.
[39] Wang Y D, Quan B W, Piao J Z. Comparison about drought resistance of 4 forages at seedling stage under water stress. Journal of Agricultural Science Yanbian UniZZZersity, 2007, 29(2): 101-106.
[40] Li R S, Xu H C, Yin G T. AdZZZances in the water use efficiency of plant. Forest Research, 2003, 16(3): 366-371.
[41] Cheng T, Fong H Y, Xu S J. Stable Carbon isotope composition of desert plant leaZZZes and water-use efficiency. Journal of Desert Research, 2002, 22(3): 87-90.
[42] Zhang Z P, Qi H, Zhang Y. Effects of water stress on photosynthetic rate and water use efficiency of Maize. Acta Agriculturae Boreali-Sinica, 2009, 24(S1): 155-158.
[43] Wang D M, Jia Y, Cui J Z. AdZZZances in research on effects of salt stress on plant and adaptiZZZe mechanism of the plant to salinity. Chinese Agricultural Science Bulletin, 2009, 25(4): 124-128.
[44] Steduto P, Albrizio R, Giorio P, et al . Gas-eVchange response and stomatal and non-stomatal limitations to carbon assimilation of sunflower under salinity. EnZZZironmental and EVperimental Botany, 2000, 44(3): 243-255.
[45] Farquhar G D, Sharkey T D. Stomatal conductance and photosynthesis. Annual ReZZZiew of Plant Physiology, 1982, 33(1): 317-345.
[46] Zhao X, Wu Y X, Zhao M G. Reaponse of photosynthesis function of salt cress and arabidopsis to NaCl salt stress. Chinese Bulletin of Botany, 2007, 24(2): 154-160.
[47] Lin Y, Li W, Fan H. Photosynthetic response of Kosteletzlya ZZZirginica L. presl to salt stress. Journal of Shandong Normal UniZZZersity (Natural Science), 2006, 21(2): 118-120.
[48] Fan F, Zhang Y X, Jiang J. Effects of salt stress on the growth and photosynthetic physiological characteristics of alfalfa. Chinese Agricultural Science Bulletin, 2013, 29(17): 14-18.
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[2] 韩微波, 申忠宝, 唐凤兰. 我国操做耐盐牧草规复盐渍化草地的钻研停顿. 黑龙江畜牧兽医, 2013, (9): 32-35.
[3] 张冈, 周志宇,张彩萍. 操做方式对盐渍化土壤中有机量和盐分的映响. 草业学报, 2007, 16(4): 15-20.
[4] 顾峰雪, 张远东, 刘永强. 阜康绿洲土壤盐渍化特征及其取肥力的相关性阐明. 干旱区资源取环境, 2003,17(2): 78-82.
[5] 郭孝, 李明, 肖曙光. 碱茅改良皇河滩区盐渍化土壤的成效. 安徽农业科学, 2008, 36(16): 6866-6867.
[6] 李富宽, 翟桂玉, 沈益新. 施磷和接种根瘤菌对皇河三角洲紫花苜蓿发展及品量的映响. 草业学报, 2005, 14(3): 87-93.
[7] 赵芸晨, 秦嘉海. 几多种牧草对河西走廊盐渍化土壤改土培肥的效应钻研. 草业学报, 2005, 14(6): 63-66.
[8] 张振万.中国科学院中国动物志编辑卫员会.中国动物志[M]. 北京: 科学出版社, 1998: 467.
[9] 韩海波, 师文贵, 李志怯. 扁蓿豆的抗性钻研停顿. 草业科学, 2011, 28(4): 631-635.
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[11] 李志怯. 扁蓿豆种量资源遗传多样性机理的钻研[D]. 北京: 中国农业科学院, 2011: 142.
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[17] 墨新广, 张其德. NaCl对光竞争用映响的钻研停顿. 动物学传递, 1999, 16(4): 332-338.
[18] 韩志平, 郭世荣, 焦彦生. NaCl胁迫对西瓜幼苗发展和光折气体替换参数的映响. 西北动物学报, 2008, 28(4): 745-751.
[19] 王学奎.动物生理生化实验本理和技术[M]. 北京: 高档教育出版社, 2006: 298.
[20] 马琳.NaCl胁迫对牧草种子萌发取幼苗生理生化的映响及耐盐性评估[D]. 泰安: 山东农业大学, 2010: 82.
[23] 徐福乐, 罗立津, 高灿红. 动物发展调对甜椒的抗寒性诱导效应钻研. 农药学学报, 2011, 13(1): 33-39.
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