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干旱脅迫下小麥(Triticumaestivum L.)幼苗中ABA 和IAA的免疫定位及定量分

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  本文關(guān)鍵詞:增強(qiáng)UV-B輻射和干旱對(duì)不同品種春小麥生長(zhǎng)、產(chǎn)量和生物量的影響,由筆耕文化傳播整理發(fā)布。


[11] 宋懷宇, 趙啟韜, 王萬忠. 激光共聚焦顯微鏡對(duì)肝組織TGF-β1的熒光定量分析. 山東醫(yī)藥, 2008, 48(9): 38-39.Song H Y, Zhao Q T, Wang W Z. Quantitative analysis of transform growth factor-β1 expression in liver tissue with confocal laser microscopy. Shandong Medical Journal, 2008, 48(9): 38-39. (in Chinese)

[29] 李巖, 潘海春, 李德全. 土壤干旱條件下玉米葉片內(nèi)源激素含量及光合作用的變化. 植物生理學(xué)報(bào), 2000, 26(4): 301-305.Li Y, Pan H C, Li D Q. Changes in contents of endogenous phytohormones and photosynthesis in leaves of maize (Zea mays L.) in drying soil. Acta Phytophysiologica Sinica, 2000, 26(4): 301-305. (in Chinese)

[15] Campalans A, Messeguer R, Goday A, Pagès M. Plant responses to drought, from ABA signal transduction events to the action of the induced proteins. Plant Physiology and Biochemistry, 1999, 37: 327-340.

[1] 何斌, 武建軍, 呂愛鋒. 農(nóng)業(yè)干旱風(fēng)險(xiǎn)研究進(jìn)展. 地理科學(xué)進(jìn)展, 2010, 29(5): 557-564.He B, Wu J J, Lv A F. New advances in agricultural drought risk study. Progress in Geography, 2010, 29(5): 557-564. (in Chinese)

[12] 張瑩, 陳建偉, 徐建亞, 李海濤. 明黨參中香豆素成分的組織定位,分布和熒光相對(duì)定量研究. 時(shí)珍國(guó)醫(yī)國(guó)藥, 2011, 22(3): 625-627.Zhang Y, Chen J W, Xu J Y, Li H T. Tissue localization, distribution and fluorescence relative quantitative of coumarins in changium smyrnioides wolff. Lishizhen Medicine and Materia Medica Research, 2011, 22(3): 625-627. (in Chinese)

[5] Bartels D, Sunkar R. Drought and salt tolerance in plants. Critical Reviews in Plant Sciences, 2005, 24: 23-58.

[30] Zhao M R, Han Y Y, Feng Y N, Li F, Wang W. Expansins are involved in cell growth mediated by abscisic acid and indole-3-acetic acid under drought stress in wheat. Plant Cell Reports, 2012, 31: 671-685.

[16] Dodd I C, Egea G, Watts C W, Whalley W R. Root water potential integrates discrete soil physical properties to influence ABA signalling during partial rootzone drying. Journal of Experimental Botany, 2010, 61: 3543-3551.

[2] 陳懷亮, 張紅衛(wèi), 劉榮花, 余衛(wèi)東. 中國(guó)農(nóng)業(yè)干旱的監(jiān)測(cè),預(yù)警和災(zāi)損評(píng)估. 科技導(dǎo)報(bào), 2009, 27(11): 82-92.Chen H L, Zhang H W, Liu R H, Yu W D. Agricultural drought monitoring forecasting and loss assessment in China. Science & Technology Review, 2009, 27(11): 82-92. (in Chinese)

[13] Deng A, Tan W, He S, Liu W, Nan T, Li Z, Wang B, Li Q X. Monoclonal antibody-based enzyme linked immunosorbent assay for the analysis of jasmonates in plants. Journal of Integrative Plant Biology, 2008, 50: 1046-1052.

[6] Huang G T, Ma S L, Bai L P, Zhang L, Ma H, Jia P, Liu J, Zhong M, Guo Z F. Signal transduction during cold, salt, and drought stresses in plants. Molecular Biology Reports, 2012, 39: 969-987.

[14] 高天鵬, 安黎哲, 馮虎元. 增強(qiáng)UV-B輻射和干旱對(duì)不同品種春小麥生長(zhǎng)、產(chǎn)量和生物量的影響. 中國(guó)農(nóng)業(yè)科學(xué), 2009, 42(6): 1933-1940.Gao T P, An L Z, Feng H Y. Effects of enhanced UV-B irradiance and drought stress on the growth, production, and biomass of spring wheat. Scientia Agricultura Sinica, 2009, 42(6): 1933-1940. (in Chinese)

[17] 賈文鎖, 王學(xué)臣, 張蜀秋, 婁成后. 水分脅迫下 ABA 由蠶豆根向地上部的運(yùn)輸及其在葉片組織中的分布. 植物生理學(xué)報(bào), 1996, 22(4): 363-367.Jia W S, Wang X C, Zhang S Q, Lou C H. The transport of aba from root to shoot and its distribution in response to water stress in Vicia faba L. Plant Physiology Journal, 1996, 22(4): 363-367. (in Chinese)

[3] Chaves M M, Maroco J P, Pereira J S. Understanding plant responses to drought-from genes to the whole plant. Functional Plant Biology, 2003, 30(3): 239-264.

[15] Campalans A, Messeguer R, Goday A, Pagès M. Plant responses to drought, from ABA signal transduction events to the action of the induced proteins. Plant Physiology and Biochemistry, 1999, 37: 327-340.

[7] Peleg Z, Blumwald E. Hormone balance and abiotic stress tolerance in crop plants. Current Opinion in Plant Biology, 2011, 14: 290-295.

[18] Liang J, Zhang J, Wong M H. How do roots control xylem sap ABA concentration in response to soil drying? Plant and Cell Physiology, 1997, 38: 10-16.

[4] Farooq M, Wahid A, Kobayashi N, Fujita D, Basra S M A. Plant drought stress: effects, mechanisms and management. Agronomy for Sustainable Agriculture, 2009, 29(1): 153-188.

[16] Dodd I C, Egea G, Watts C W, Whalley W R. Root water potential integrates discrete soil physical properties to influence ABA signalling during partial rootzone drying. Journal of Experimental Botany, 2010, 61: 3543-3551.

[17] 賈文鎖, 王學(xué)臣, 張蜀秋, 婁成后. 水分脅迫下 ABA 由蠶豆根向地上部的運(yùn)輸及其在葉片組織中的分布. 植物生理學(xué)報(bào), 1996, 22(4): 363-367.Jia W S, Wang X C, Zhang S Q, Lou C H. The transport of aba from root to shoot and its distribution in response to water stress in Vicia faba L. Plant Physiology Journal, 1996, 22(4): 363-367. (in Chinese)

[19] Sauter A, Dietz K J, Hartung W. A possible stress physiological role of abscisic acid conjugates in root-to-shoot signalling. Plant, Cell & Environment, 2002, 25: 223-228.

[5] Bartels D, Sunkar R. Drought and salt tolerance in plants. Critical Reviews in Plant Sciences, 2005, 24: 23-58.

[18] Liang J, Zhang J, Wong M H. How do roots control xylem sap ABA concentration in response to soil drying? Plant and Cell Physiology, 1997, 38: 10-16.

[8] Pustovoitova T N, Zhdanova N E, Zholkevich V N. Changes in the levels of IAA and ABA in cucumber leaves under progressive soil drought. Russian Journal of Plant Physiology, 2004, 51: 513-517.

[6] Huang G T, Ma S L, Bai L P, Zhang L, Ma H, Jia P, Liu J, Zhong M, Guo Z F. Signal transduction during cold, salt, and drought stresses in plants. Molecular Biology Reports, 2012, 39: 969-987.

[20] Hartung W, Slovik S. Physicochemical properties of plant growth regulators and plant tissues determine their distribution and redistribution: stomatal regulation by abscisic acid in leaves. New Phytologist, 1991, 119: 361-382.

[19] Sauter A, Dietz K J, Hartung W. A possible stress physiological role of abscisic acid conjugates in root-to-shoot signalling. Plant, Cell & Environment, 2002, 25: 223-228.

[9] Hou Z X, Huang W D. Immunohistochemical localization of IAA and ABP1 in strawberry shoot apexes during floral induction. Planta, 2005, 222: 678-687.

[7] Peleg Z, Blumwald E. Hormone balance and abiotic stress tolerance in crop plants. Current Opinion in Plant Biology, 2011, 14: 290-295.

[21] 關(guān)義新, 戴俊英, 林艷.水分脅迫下植物葉片光合的氣孔和非氣孔限制. 植物生理學(xué)通訊, 1995, 31(4): 293-297.Guan Y X, Dai J Y, Lin Y. The photosynthetic stomatal and nonstomatal limitation of plant leaves under water stress. Plant Physiology Communications, 1995, 31(4): 293-297. (in Chinese)

[10] 陳丹, 趙潔. 適合于植物花器官的冰凍切片技術(shù). 植物科學(xué)學(xué)報(bào), 2005, 23: 285-290.Chen D, Zhao J. Suitable cryo-sectioning technique in floral organs of plants. Journal of Wuhan Botanical Research, 2005, 23: 285-290. (in Chinese)

[8] Pustovoitova T N, Zhdanova N E, Zholkevich V N. Changes in the levels of IAA and ABA in cucumber leaves under progressive soil drought. Russian Journal of Plant Physiology, 2004, 51: 513-517.

[22] Acharya B R, Assmann S M. Hormone interactions in stomatal function. Plant Molecular Biology, 2009, 69: 451-462.

[11] 宋懷宇, 趙啟韜, 王萬忠. 激光共聚焦顯微鏡對(duì)肝組織TGF-β1的熒光定量分析. 山東醫(yī)藥, 2008, 48(9): 38-39.Song H Y, Zhao Q T, Wang W Z. Quantitative analysis of transform growth factor-β1 expression in liver tissue with confocal laser microscopy. Shandong Medical Journal, 2008, 48(9): 38-39. (in Chinese)

[23] 袁朝興, 丁靜. 水分脅迫對(duì)棉花葉片中 IAA 含量, IAA 氧化酶和過氧物. 植物生理學(xué)報(bào), 1990, 16(2): 179-184.Yuan C X, Ding J. The effects of water stress on the content of IAA, IAA oxidase and peroxidase enzyme activity in cotton leaves. Plant Physiology Journal, 1990, 16(2): 179-184. (in Chinese)

[20] Hartung W, Slovik S. Physicochemical properties of plant growth regulators and plant tissues determine their distribution and redistribution: stomatal regulation by abscisic acid in leaves. New Phytologist, 1991, 119: 361-382.

[12] 張瑩, 陳建偉, 徐建亞, 李海濤. 明黨參中香豆素成分的組織定位,分布和熒光相對(duì)定量研究. 時(shí)珍國(guó)醫(yī)國(guó)藥, 2011, 22(3): 625-627.Zhang Y, Chen J W, Xu J Y, Li H T. Tissue localization, distribution and fluorescence relative quantitative of coumarins in changium smyrnioides wolff. Lishizhen Medicine and Materia Medica Research, 2011, 22(3): 625-627. (in Chinese)

[24] 陳立松, 劉星輝. 水分脅迫對(duì)龍眼幼苗葉片膜脂過氧化及內(nèi)源保護(hù)體系的影響. 武漢植物學(xué)研究, 1999, 17(2): 105-109.Chen L S, Liu X H. Effects of water strese on leaf membrane lipid peroxidation and endogenous protective systems in longan young seedlings. Journal of Wuhan Botanical Research, 1999, 17(2): 105-109. (in Chinese)

[21] 關(guān)義新, 戴俊英, 林艷.水分脅迫下植物葉片光合的氣孔和非氣孔限制. 植物生理學(xué)通訊, 1995, 31(4): 293-297.Guan Y X, Dai J Y, Lin Y. The photosynthetic stomatal and nonstomatal limitation of plant leaves under water stress. Plant Physiology Communications, 1995, 31(4): 293-297. (in Chinese)

[9] Hou Z X, Huang W D. Immunohistochemical localization of IAA and ABP1 in strawberry shoot apexes during floral induction. Planta, 2005, 222: 678-687.

[10] 陳丹, 趙潔. 適合于植物花器官的冰凍切片技術(shù). 植物科學(xué)學(xué)報(bào), 2005, 23: 285-290.Chen D, Zhao J. Suitable cryo-sectioning technique in floral organs of plants. Journal of Wuhan Botanical Research, 2005, 23: 285-290. (in Chinese)

[13] Deng A, Tan W, He S, Liu W, Nan T, Li Z, Wang B, Li Q X. Monoclonal antibody-based enzyme linked immunosorbent assay for the analysis of jasmonates in plants. Journal of Integrative Plant Biology, 2008, 50: 1046-1052.

[25] Mills V M, Todd G W. Effects of water stress on the indoleacetic acid oxidase activity in wheat leaves. Plant Physiology, 1973, 51: 1145-1146.

[22] Acharya B R, Assmann S M. Hormone interactions in stomatal function. Plant Molecular Biology, 2009, 69: 451-462.

[14] 高天鵬, 安黎哲, 馮虎元. 增強(qiáng)UV-B輻射和干旱對(duì)不同品種春小麥生長(zhǎng)、產(chǎn)量和生物量的影響. 中國(guó)農(nóng)業(yè)科學(xué), 2009, 42(6): 1933-1940.Gao T P, An L Z, Feng H Y. Effects of enhanced UV-B irradiance and drought stress on the growth, production, and biomass of spring wheat. Scientia Agricultura Sinica, 2009, 42(6): 1933-1940. (in Chinese)

[11] 宋懷宇, 趙啟韜, 王萬忠. 激光共聚焦顯微鏡對(duì)肝組織TGF-β1的熒光定量分析. 山東醫(yī)藥, 2008, 48(9): 38-39.Song H Y, Zhao Q T, Wang W Z. Quantitative analysis of transform growth factor-β1 expression in liver tissue with confocal laser microscopy. Shandong Medical Journal, 2008, 48(9): 38-39. (in Chinese)

[23] 袁朝興, 丁靜. 水分脅迫對(duì)棉花葉片中 IAA 含量, IAA 氧化酶和過氧物. 植物生理學(xué)報(bào), 1990, 16(2): 179-184.Yuan C X, Ding J. The effects of water stress on the content of IAA, IAA oxidase and peroxidase enzyme activity in cotton leaves. Plant Physiology Journal, 1990, 16(2): 179-184. (in Chinese)

[24] 陳立松, 劉星輝. 水分脅迫對(duì)龍眼幼苗葉片膜脂過氧化及內(nèi)源保護(hù)體系的影響. 武漢植物學(xué)研究, 1999, 17(2): 105-109.Chen L S, Liu X H. Effects of water strese on leaf membrane lipid peroxidation and endogenous protective systems in longan young seedlings. Journal of Wuhan Botanical Research, 1999, 17(2): 105-109. (in Chinese)

[26] Sakurai N, Akiyama M, Kuraishi S. Roles of abscisic acid and indoleacetic acid in the stunted growth of water-stressed, etiolated squash hypocotyls. Plant and Cell Physiology, 1985, 26: 15-24.

[12] 張瑩, 陳建偉, 徐建亞, 李海濤. 明黨參中香豆素成分的組織定位,分布和熒光相對(duì)定量研究. 時(shí)珍國(guó)醫(yī)國(guó)藥, 2011, 22(3): 625-627.Zhang Y, Chen J W, Xu J Y, Li H T. Tissue localization, distribution and fluorescence relative quantitative of coumarins in changium smyrnioides wolff. Lishizhen Medicine and Materia Medica Research, 2011, 22(3): 625-627. (in Chinese)

[15] Campalans A, Messeguer R, Goday A, Pagès M. Plant responses to drought, from ABA signal transduction events to the action of the induced proteins. Plant Physiology and Biochemistry, 1999, 37: 327-340.

[25] Mills V M, Todd G W. Effects of water stress on the indoleacetic acid oxidase activity in wheat leaves. Plant Physiology, 1973, 51: 1145-1146.

[27] Eliasson L. Effect of indoleacetic acid on the abscisic acid level in stem tissue. Physiologia Plantarum, 1975, 34: 117-120.

[13] Deng A, Tan W, He S, Liu W, Nan T, Li Z, Wang B, Li Q X. Monoclonal antibody-based enzyme linked immunosorbent assay for the analysis of jasmonates in plants. Journal of Integrative Plant Biology, 2008, 50: 1046-1052.

[16] Dodd I C, Egea G, Watts C W, Whalley W R. Root water potential integrates discrete soil physical properties to influence ABA signalling during partial rootzone drying. Journal of Experimental Botany, 2010, 61: 3543-3551.

[14] 高天鵬, 安黎哲, 馮虎元. 增強(qiáng)UV-B輻射和干旱對(duì)不同品種春小麥生長(zhǎng)、產(chǎn)量和生物量的影響. 中國(guó)農(nóng)業(yè)科學(xué), 2009, 42(6): 1933-1940.Gao T P, An L Z, Feng H Y. Effects of enhanced UV-B irradiance and drought stress on the growth, production, and biomass of spring wheat. Scientia Agricultura Sinica, 2009, 42(6): 1933-1940. (in Chinese)

[17] 賈文鎖, 王學(xué)臣, 張蜀秋, 婁成后. 水分脅迫下 ABA 由蠶豆根向地上部的運(yùn)輸及其在葉片組織中的分布. 植物生理學(xué)報(bào), 1996, 22(4): 363-367.Jia W S, Wang X C, Zhang S Q, Lou C H. The transport of aba from root to shoot and its distribution in response to water stress in Vicia faba L. Plant Physiology Journal, 1996, 22(4): 363-367. (in Chinese)

[26] Sakurai N, Akiyama M, Kuraishi S. Roles of abscisic acid and indoleacetic acid in the stunted growth of water-stressed, etiolated squash hypocotyls. Plant and Cell Physiology, 1985, 26: 15-24.

[28] Schmelz E A, Engelberth J, Alborn H T, O'Donnell P, Sammons M, Toshima H, Tumlinson J H. Simultaneous analysis of phytohormones, phytotoxins, and volatile organic compounds in plants. Proceedings of the National Academy of Sciences of the USA, 2003, 100: 10552-10557.

[15] Campalans A, Messeguer R, Goday A, Pagès M. Plant responses to drought, from ABA signal transduction events to the action of the induced proteins. Plant Physiology and Biochemistry, 1999, 37: 327-340.

[29] 李巖, 潘海春, 李德全. 土壤干旱條件下玉米葉片內(nèi)源激素含量及光合作用的變化. 植物生理學(xué)報(bào), 2000, 26(4): 301-305.Li Y, Pan H C, Li D Q. Changes in contents of endogenous phytohormones and photosynthesis in leaves of maize (Zea mays L.) in drying soil. Acta Phytophysiologica Sinica, 2000, 26(4): 301-305. (in Chinese)

[18] Liang J, Zhang J, Wong M H. How do roots control xylem sap ABA concentration in response to soil drying? Plant and Cell Physiology, 1997, 38: 10-16.

[27] Eliasson L. Effect of indoleacetic acid on the abscisic acid level in stem tissue. Physiologia Plantarum, 1975, 34: 117-120.

[16] Dodd I C, Egea G, Watts C W, Whalley W R. Root water potential integrates discrete soil physical properties to influence ABA signalling during partial rootzone drying. Journal of Experimental Botany, 2010, 61: 3543-3551.

[30] Zhao M R, Han Y Y, Feng Y N, Li F, Wang W. Expansins are involved in cell growth mediated by abscisic acid and indole-3-acetic acid under drought stress in wheat. Plant Cell Reports, 2012, 31: 671-685.

[17] 賈文鎖, 王學(xué)臣, 張蜀秋, 婁成后. 水分脅迫下 ABA 由蠶豆根向地上部的運(yùn)輸及其在葉片組織中的分布. 植物生理學(xué)報(bào), 1996, 22(4): 363-367.Jia W S, Wang X C, Zhang S Q, Lou C H. The transport of aba from root to shoot and its distribution in response to water stress in Vicia faba L. Plant Physiology Journal, 1996, 22(4): 363-367. (in Chinese)

[28] Schmelz E A, Engelberth J, Alborn H T, O'Donnell P, Sammons M, Toshima H, Tumlinson J H. Simultaneous analysis of phytohormones, phytotoxins, and volatile organic compounds in plants. Proceedings of the National Academy of Sciences of the USA, 2003, 100: 10552-10557.

[19] Sauter A, Dietz K J, Hartung W. A possible stress physiological role of abscisic acid conjugates in root-to-shoot signalling. Plant, Cell & Environment, 2002, 25: 223-228.

[29] 李巖, 潘海春, 李德全. 土壤干旱條件下玉米葉片內(nèi)源激素含量及光合作用的變化. 植物生理學(xué)報(bào), 2000, 26(4): 301-305.Li Y, Pan H C, Li D Q. Changes in contents of endogenous phytohormones and photosynthesis in leaves of maize (Zea mays L.) in drying soil. Acta Phytophysiologica Sinica, 2000, 26(4): 301-305. (in Chinese)

[18] Liang J, Zhang J, Wong M H. How do roots control xylem sap ABA concentration in response to soil drying? Plant and Cell Physiology, 1997, 38: 10-16.

[20] Hartung W, Slovik S. Physicochemical properties of plant growth regulators and plant tissues determine their distribution and redistribution: stomatal regulation by abscisic acid in leaves. New Phytologist, 1991, 119: 361-382.

[21] 關(guān)義新, 戴俊英, 林艷.水分脅迫下植物葉片光合的氣孔和非氣孔限制. 植物生理學(xué)通訊, 1995, 31(4): 293-297.Guan Y X, Dai J Y, Lin Y. The photosynthetic stomatal and nonstomatal limitation of plant leaves under water stress. Plant Physiology Communications, 1995, 31(4): 293-297. (in Chinese)

[30] Zhao M R, Han Y Y, Feng Y N, Li F, Wang W. Expansins are involved in cell growth mediated by abscisic acid and indole-3-acetic acid under drought stress in wheat. Plant Cell Reports, 2012, 31: 671-685.

[19] Sauter A, Dietz K J, Hartung W. A possible stress physiological role of abscisic acid conjugates in root-to-shoot signalling. Plant, Cell & Environment, 2002, 25: 223-228.

[22] Acharya B R, Assmann S M. Hormone interactions in stomatal function. Plant Molecular Biology, 2009, 69: 451-462.

[23] 袁朝興, 丁靜. 水分脅迫對(duì)棉花葉片中 IAA 含量, IAA 氧化酶和過氧物. 植物生理學(xué)報(bào), 1990, 16(2): 179-184.Yuan C X, Ding J. The effects of water stress on the content of IAA, IAA oxidase and peroxidase enzyme activity in cotton leaves. Plant Physiology Journal, 1990, 16(2): 179-184. (in Chinese)

[20] Hartung W, Slovik S. Physicochemical properties of plant growth regulators and plant tissues determine their distribution and redistribution: stomatal regulation by abscisic acid in leaves. New Phytologist, 1991, 119: 361-382.

[24] 陳立松, 劉星輝. 水分脅迫對(duì)龍眼幼苗葉片膜脂過氧化及內(nèi)源保護(hù)體系的影響. 武漢植物學(xué)研究, 1999, 17(2): 105-109.Chen L S, Liu X H. Effects of water strese on leaf membrane lipid peroxidation and endogenous protective systems in longan young seedlings. Journal of Wuhan Botanical Research, 1999, 17(2): 105-109. (in Chinese)

[21] 關(guān)義新, 戴俊英, 林艷.水分脅迫下植物葉片光合的氣孔和非氣孔限制. 植物生理學(xué)通訊, 1995, 31(4): 293-297.Guan Y X, Dai J Y, Lin Y. The photosynthetic stomatal and nonstomatal limitation of plant leaves under water stress. Plant Physiology Communications, 1995, 31(4): 293-297. (in Chinese)

[25] Mills V M, Todd G W. Effects of water stress on the indoleacetic acid oxidase activity in wheat leaves. Plant Physiology, 1973, 51: 1145-1146.

[22] Acharya B R, Assmann S M. Hormone interactions in stomatal function. Plant Molecular Biology, 2009, 69: 451-462.

[26] Sakurai N, Akiyama M, Kuraishi S. Roles of abscisic acid and indoleacetic acid in the stunted growth of water-stressed, etiolated squash hypocotyls. Plant and Cell Physiology, 1985, 26: 15-24.

[23] 袁朝興, 丁靜. 水分脅迫對(duì)棉花葉片中 IAA 含量, IAA 氧化酶和過氧物. 植物生理學(xué)報(bào), 1990, 16(2): 179-184.Yuan C X, Ding J. The effects of water stress on the content of IAA, IAA oxidase and peroxidase enzyme activity in cotton leaves. Plant Physiology Journal, 1990, 16(2): 179-184. (in Chinese)

[27] Eliasson L. Effect of indoleacetic acid on the abscisic acid level in stem tissue. Physiologia Plantarum, 1975, 34: 117-120.

[24] 陳立松, 劉星輝. 水分脅迫對(duì)龍眼幼苗葉片膜脂過氧化及內(nèi)源保護(hù)體系的影響. 武漢植物學(xué)研究, 1999, 17(2): 105-109.Chen L S, Liu X H. Effects of water strese on leaf membrane lipid peroxidation and endogenous protective systems in longan young seedlings. Journal of Wuhan Botanical Research, 1999, 17(2): 105-109. (in Chinese)

[28] Schmelz E A, Engelberth J, Alborn H T, O'Donnell P, Sammons M, Toshima H, Tumlinson J H. Simultaneous analysis of phytohormones, phytotoxins, and volatile organic compounds in plants. Proceedings of the National Academy of Sciences of the USA, 2003, 100: 10552-10557.

[25] Mills V M, Todd G W. Effects of water stress on the indoleacetic acid oxidase activity in wheat leaves. Plant Physiology, 1973, 51: 1145-1146.

[29] 李巖, 潘海春, 李德全. 土壤干旱條件下玉米葉片內(nèi)源激素含量及光合作用的變化. 植物生理學(xué)報(bào), 2000, 26(4): 301-305.Li Y, Pan H C, Li D Q. Changes in contents of endogenous phytohormones and photosynthesis in leaves of maize (Zea mays L.) in drying soil. Acta Phytophysiologica Sinica, 2000, 26(4): 301-305. (in Chinese)

[26] Sakurai N, Akiyama M, Kuraishi S. Roles of abscisic acid and indoleacetic acid in the stunted growth of water-stressed, etiolated squash hypocotyls. Plant and Cell Physiology, 1985, 26: 15-24.

[30] Zhao M R, Han Y Y, Feng Y N, Li F, Wang W. Expansins are involved in cell growth mediated by abscisic acid and indole-3-acetic acid under drought stress in wheat. Plant Cell Reports, 2012, 31: 671-685.

[27] Eliasson L. Effect of indoleacetic acid on the abscisic acid level in stem tissue. Physiologia Plantarum, 1975, 34: 117-120.

[28] Schmelz E A, Engelberth J, Alborn H T, O'Donnell P, Sammons M, Toshima H, Tumlinson J H. Simultaneous analysis of phytohormones, phytotoxins, and volatile organic compounds in plants. Proceedings of the National Academy of Sciences of the USA, 2003, 100: 10552-10557.

[29] 李巖, 潘海春, 李德全. 土壤干旱條件下玉米葉片內(nèi)源激素含量及光合作用的變化. 植物生理學(xué)報(bào), 2000, 26(4): 301-305.Li Y, Pan H C, Li D Q. Changes in contents of endogenous phytohormones and photosynthesis in leaves of maize (Zea mays L.) in drying soil. Acta Phytophysiologica Sinica, 2000, 26(4): 301-305. (in Chinese)

[30] Zhao M R, Han Y Y, Feng Y N, Li F, Wang W. Expansins are involved in cell growth mediated by abscisic acid and indole-3-acetic acid under drought stress in wheat. Plant Cell Reports, 2012, 31: 671-685.


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