作物学报 ›› 2012, Vol. 38 ›› Issue (02): 352-359.doi: 10.3724/SP.J.1006.2012.00352
徐田军1,董志强1,*,兰宏亮1,裴志超1,2,高娇1,解振兴1
XU Tian-Jun1,DONG Zhi-Qiang1,*,LAN Hong-Liang1,PEI Zhi-Chao1, 2,GAO Jiao1,XIE Zhen-Xing1
摘要: 采用盆栽试验, 以郑单958和丰单3号为材料, 研究了低温胁迫对玉米幼苗光合作用、叶绿素、叶绿素荧光参数和抗氧化酶活性的影响, 以及聚糠萘合剂(PKN)的调控效果。结果表明, 低温胁迫下, 玉米幼苗的光合作用和光系统II光化学最大效率受到抑制; 超氧化物歧化酶(SOD)、过氧化物酶(POD)和过氧化氢酶(CAT)活性降低; 过氧化氢、超氧阴离子的产生速率及丙二醛(MDA)含量显著升高。PKN处理提高了低温胁迫下玉米幼苗净光合速率(Pn)、气孔导度(Gs)、光系统II光化学的最大效率(Fv/Fm)、叶绿素含量(Chl a+Chl b)。低温处理7 d, ZDTR和FDTR的Pn、Gs、Fv/Fm、Chl a+Chl b分别比各自的对照提高了88.95%和61.11%、593.33%和1 741.67%、111.50%和145.16%、36.61%和54.03%; PKN处理延缓了SOD、POD、CAT活性的降低, 低温胁迫7 d, PKN处理使郑单958和丰单3的SOD、POD、CAT活性分别比对照高了292.59%和632.98%、295.07%和360.54%、254.55%和265.45%; 同时降低了过氧化氢、超氧阴离子的产生速率及MDA的含量。表明PKN处理有利于提高玉米幼苗的抗冷性。
[1]Meng Y(孟英), Li M(李明), Wang L-M(王连敏), Wang L-Z(王立志), Feng Y-J(冯延江). Effects of chilling injury on maize and correlative research. Heilongjiang Agric Sci (黑龙江农业科学), 2009, (4): 150-153 (in Chinese with English abstract) [2]Ma Q-S(马树庆), Xi Z-X(袭祝香), Wang Q(王琪). Risk evaluation of cold damage to corn in northeast China. J Nat Disasters (自然灾害学报), 2003, 12(3):137-141 (in Chinese with English abstract) [3]Guan X-J(关贤交), Ou-Yang X-R(欧阳西荣). The research of low temperature on maize. Crop Res (作物研究), 2004, (1): 16 (in Chinese with English abstract) [4]He J(何洁), Liu H-X(刘鸿先), Wang Y-R(王以柔), Guo J-Y(郭俊彦). Low temperature and photosynthesis of plants. Plant Physiol Commun (植物生理学通讯), 1986, 22(2): 1-6 (in Chinese with English abstract) [5]Shi Z-Z(史占忠), Ben X-M(贲显明), Zhang J-T(张敬涛). The emerging pattern and preventive measure of maize cold damage in the sanjiang river plain. Heilongjiang Agric Sci (黑龙江农业科学), 2003, (2): 7-10 (in Chinese with English abstract) [6]Fryer M J, Andrews J R, Oxborough K. Relationship between CO2 assimilation, photosynthetic electron transport, and active O2 metabolism in leaves of maize in the field during periods of low temperature. Plant Physiol, 1998, 116: 571-580 [7]Gao M-Z(高妙真). Mechanism of chilling injury of corn and the effect of chemical control to prevent chilling. J Northeast Agric Univ (东北农业大学学报), 1989, 20(4): 295-299 (in Chinese with English abstract) [8]Kraus T E, Fletcher R A Paclobutrazol protects wheat seedlings from heat and paraquat injury: is detoxification of active oxygen involved. Plant Cell Physiol, 1994, 35: 45-52 [9]Beaucorps G D, Leymomnie J P. Potassium and Crop Resistance to the Frost (钾与作物抗霜冻). Nanjing: Phoenix Science Press, 1989. pp 29-37 [10]Zhang F-S(张福锁). Environment Stress and Plant Nutrition (环境胁迫与植物营养). Beijing: China Agricultural University Press, 1993. pp 148-170 [11]Zou G-Y(邹国元), Yang Z-F(杨志福), Li X-L(李晓林). Effect of potassium on chilling resistance of maize seedling. Plant Nutr Fert Sci (植物营养与肥料学报), 1998, 4(2): 165-169 (in Chinese with English abstract) [12]Liu Y(刘芸), Zhong Z-C(钟章成), Marinus J A, Cao G-X(操国兴), Yin K-L(尹克林), Long Y(龙云). Effects of α-NAA and UV-B radiation on photosynthetic pigments and activities of protective enzymes in Trichosanthes kirilowii Maxim leaves. Acta Eco Sin (生态学报), 2003, 23(1): 12-15 (in Chinese with English abstract) [13]Leshem Y Y, Wurzburger, Wurzburger J, Grossman S. Cytokinin interaction with tree radical metabolism and senescence. Physiol Plants, 1981, 53: 9-12 [14]Leng Y-X(冷一欣), Rei X-S(芮新生), He P-H(何佩华). Study of the yield increasing of maize by using polyaspartic acid. J Maize Sci (玉米科学), 2005, 13(3): 100-102 (in Chinese with English abstract) [15]Arnon D I, Whatley F R. Factors influencing oxygen production by illuminated chloroplast fragments. Archiv Biochem, 1949, 23: 141-156 [16]Lin Z-F(林植芳), Li S-S(李双顺), Lin G-Z(林桂珠), Guo J-Y(郭俊彦). The accumulation of hydrogen peroxide in senescing leaves and chloroplasts in relation to lipid peroxidation. Acta Photophysiol Sin (植物生理学报), 1988, 14(1): 16-22 (in Chinese with English abstract) [17]Wang R-G(王爱国), Luo G-H(罗广华). Quantitative relation between the reaction of hydroxylamine and superoxide anion radicals in plants. Plant Physiology Commun (植物生理学通讯), 1990, 6: 55-57 (in Chinese with English abstract) [18]Chance B, Maehly A C. Assay of catalase and peroxidase. Methods Enzymol, 1955, 12: 764-775 [19]Li Z-G(李忠光), Li H-J(李江鸿), Du C-K(杜朝昆). Simultaneous measurement of five antioxidant enzyme activities using a single extraction system. J Yunnan Normal Univ (Nat Sci Edn) (云南师范大学学报•自然科学版), 2002, 6(10): 44-48 (in Chinese with English abstract) [20]Lin Z-F(林植芳), Li S-S(李双顺), Lin G-Z(林桂珠), Sun G-C(孙谷畴), Guo J-Y(郭俊彦). Superoxide dismutase activity and lipid peroxidation in relation to senescence of rice leaves. J Integr Plant Biol (植物学报), 1984, 26(6): 605-615 (in Chinese with English abstract) [21]Demming-Adams B. Carotenoids and photoprotection in plants: a role of Xanthophyll zeaxanthin. Biochim Biophys Acta, 1987, 1020: 1-24 [22]Li Y-M(李月梅), Ma Y-Y(马莹莹), Yang L-L(杨英良), Meng L(孟良). The effect of low temperature on photosynthesis andrespiration. Heilongjiang Agric Sci (黑龙江省农业科学), 1991, 6(1): 4-8 (in Chinese) [23]Fan H-F(樊怀福), Jiang W-J(蒋卫杰), Guo S-R(郭世荣). Effects of low temperature on growth and photosynthesis of tomato seedlings. Jiangsu Agric Sci (江苏农业科学), 2005, 3(7): 89-91 (in Chinese with English abstract) [24]Allen D J, Ort D R. Impacts of chilling temperatures on photosynthesis in warm climate plant. Trends Plant Sci, 2001, 6: 36-41 [25]Wu X-X(吴雪霞), Chen J-L(陈建林), Zha L-S(查丁石). Effects of low temperature stress on photosynthetic characteristics in leaves of egg plant seedlings. Acta Agric Boreali-Sin (华北农学报), 2008, 23(5): 185-189 (in Chinese with English abstract) [26]Meng F-J(孟繁静), Liu D-H(刘道宏), Su Y-Y(苏业瑜). Plant Physiology and Biochemical (植物生理生化). Beijing: China Agriculture Press, 1995. pp 11-16 (in Chinese) [27]Wang L-M(王连敏), Wang L-Z(王立志). Effect of low temperature at seedling stage on proline, electric conductivity and photosynthesis. Chin J Agrometeorol (中国农业气象), 1999, 20(2): 28-31 (in Chinese with English abstract) [28]Jiang L(江力), Kong X-W(孔小卫), Zhang R-X(张荣铣). Effects of 6-benzyladenine and abscisic acid on the photosynthetic function decline in tobacco. J Nanjing Agric Univ (南京农业大学学报), 2006, 29(4): 127-130 (in Chinese with English abstract) [29]Chen J-M(陈建明), Yu X-P(俞晓平), Cheng J-A(程家安). The application of chlorophyll fluorescence kinetics in the study of physiological responses of plants to environmental stresses. Acta Agric Zhejiangensis (浙江农业学报), 2006, 18(1): 51-55 (in Chinese with English abstract) [30]Mauro S, Dainsese P, Lannoye R, Bassi R. Cold resistant and cold susceptible maize lines differ in the phosphorylation of the photo system II subunit. Plant Physiol, 1997, 115: 171-177 [31]Powles S B, Berry J A, Björkman O. Interaction between light and temperature on the inhibition of photosynthesis in chilling-sensitive plants. Plant Cell Environ, 1983, 6: 117-123 [32]Carrasco R M, Rodriguez J S, Perez P. Changes in chlorophyll fluorescence during the course of photoperiod and in response to drought in Casuarina Equisetifolia Forst. Photosynthetica, 2002, 40: 363-368 [33]Liu Q-D(刘清岱), Zhu Y-R(朱晔荣), Tao H-L(陶汉林), Wang Y(王勇). The change of PSII of Spirod elapolyrrhiz a half-2-fronds and the effect of cytokinin. In: Abstracts of Research Papers Presented at the 9th National Meeting of the Chinese Society for Plant Physiology. Shanghai: Biophysical Chemistry, 2004 [34]Zhang R(张蕊), Lü J(吕俊), Mi Q-S(米青山), Wang S-Y(王三根). Effects of salicylic acid on the antioxidant enzymes of rice seedlings during chilling stress. J Southwest Agric Univ (Nat Sci) (西南农业大学学报•自然科学版), 2006, 28(1): 29-36 (in Chinese with English abstract) [35]Zhang J-X(张敬贤), Li J-M(李俊明), Zhang H-M(张海明). The effect of low temperature on activities of cell protective enzymes and protoplasmic parameters in leaves of Zea mays. Acta Agric Boreali-Sin (华北农学报), 1993, 8(3): 9-12 (in Chinese with English abstract) [36]Xiong D-J(熊冬金), Lin Z-H(林志红), Chang B-Y(畅柏云), Zhu B-F(朱必凤), Zhu Y-L(朱友林). Studies of four kind of isozymes and the changes of content of mailond laldehyde in maiiein waterlogging or chilling stress. J Nanchang Univ (南昌大学学报), 1996, 20(4): 314-319 (in Chinese with English abstract) [37]Back K H, Skinner D Z. Alteration of antioxidant enzyme gene expression during cold ac climation of near-isogonics wheat lines. Plant Sci, 2003, 165: 1221-1227 [38]Liao X-R(廖祥儒), He P-C(贺普超), Zhu X-C(朱新产). Effect of zeatbsf in H2O2 scavenging system of Vitis vulpina leaf disks under salt stress. Acta Bot Sin (植物学报), 1997, 39(7): 641-646 (in Chinese with English abstract) [39]Yin K-D(殷奎德), Hu W-Y(胡文玉). Cytokinin effect on active oxygen during in vitro senescence of wheat leaves. J Heilongjiang Bayi Agric Univ (黑龙江八一农垦大学学报), 1994, 7(4): 16-22 (in Chinese with English abstract) |
[1] | 李增强, 丁鑫超, 卢海, 胡亚丽, 岳娇, 黄震, 莫良玉, 陈立, 陈涛, 陈鹏. 铅胁迫下红麻生理特性及DNA甲基化分析[J]. 作物学报, 2021, 47(6): 1031-1042. |
[2] | 周练, 刘朝显, 熊雨涵, 周京, 蔡一林. 质膜内在蛋白ZmPIP1;1参与玉米耐旱性和光合作用的功能分析[J]. 作物学报, 2021, 47(3): 472-480. |
[3] | 侯慧芝, 张绪成, 方彦杰, 于显枫, 王红丽, 马一凡, 张国平, 雷康宁. 全膜微垄沟播对寒旱区春小麦苗期土壤水热环境及光合作用的影响[J]. 作物学报, 2020, 46(9): 1398-1407. |
[4] | 田文刚,朱雪峰,宋雯,程文翰,薛飞,朱华国. 异源表达棉花S-腺苷甲硫氨酸脱羧酶(GhSAMDC1)基因提高了拟南芥抗盐能力[J]. 作物学报, 2019, 45(7): 1017-1028. |
[5] | 于奇,冯乃杰,王诗雅,左官强,郑殿峰. S3307对始花期和始粒期淹水绿豆光合作用及产量的影响[J]. 作物学报, 2019, 45(7): 1080-1089. |
[6] | 吴含玉,肖飞,张亚黎,姜闯道,张旺锋. 强闪光抑制棉花叶片光系统II活性和热耗散[J]. 作物学报, 2019, 45(5): 792-797. |
[7] | 何宁,王雪扬,曹良子,曹大为,洛育,姜连子,孟英,冷春旭,唐晓东,李一丹,万书明,卢环,程须珍. 光温处理对小豆苗期生理性状及叶绿素合成前体的影响[J]. 作物学报, 2019, 45(3): 460-468. |
[8] | 吴含玉,张雅君,张旺锋,王克如,李少昆,姜闯道. 田间密植诱导抽穗期玉米叶片衰老时的光合作用机制[J]. 作物学报, 2019, 45(2): 248-255. |
[9] | 杨青华,郑博元,李蕾蕾,贾双杰,韩心培,郭家萌,王泳超,邵瑞鑫. 外源NO供体对水分亏缺下玉米叶片碳同化关键酶及抗氧化系统的影响[J]. 作物学报, 2018, 44(9): 1393-1399. |
[10] | 万丽丽, 王转茸, 辛强, 董发明, 洪登峰, 杨光圣. BnA7HSP70分子伴侣结合蛋白超表达能够提高甘蓝型油菜耐旱性[J]. 作物学报, 2018, 44(04): 483-492. |
[11] | 肖飞,杨延龙,王娅婷,马慧,张旺锋. 棉花花铃期低温对叶片PSI和PSII光抑制的影响[J]. 作物学报, 2017, 43(09): 1401-1409. |
[12] | 刘凌云,刘浩,赵晶,王艳霞,王棚涛. 拟南芥低叶绿素荧光LCF3基因的克隆与功能分析[J]. 作物学报, 2016, 42(05): 690-695. |
[13] | 顾骏飞*,周振翔,李志康,戴琪星,孔祥胜,王志琴,杨建昌. 水稻低叶绿素含量突变对光合作用及产量的影响[J]. 作物学报, 2016, 42(04): 551-560. |
[14] | 卢霖,董志强*,董学瑞,李光彦. 乙矮合剂对不同密度夏玉米花粒期不同部位叶片衰老特性的影响[J]. 作物学报, 2016, 42(04): 561-573. |
[15] | 徐金刚,吕川根,刘莉,吕春芳,马静,夏士健,陈国祥,高志萍. 水稻光氧化突变体812HS的光合和抗氧化特性[J]. 作物学报, 2016, 42(04): 574-582. |
|