Scientia Agricultura Sinica ›› 2017, Vol. 50 ›› Issue (21): 4228-4234.doi: 10.3864/j.issn.0578-1752.2017.21.017

• RESEARCH NOTES • Previous Articles    

The Influence of Brassinosteroid on the Light Catching, CO2 Fixation and the Translocation of Organic Compounds in Maize Leaves

ZANG JinPing1, ZHAO AiJia2, ZHAO YaLin1, YAN QingDi1, FENG JiaJia1, ZHANG HaiLi1, WANG FengRu1, DONG JinGao1   

  1. 1Department of life science, Hebei Agricultural University/Key Laboratory of Hebei Province for Plant Physiology and Molecular Pathology, Baoding 071001, Hebei; 2The No.1 High School of Baoding, Baoding 071000, Hebei
  • Received:2017-03-20 Online:2017-11-01 Published:2017-11-01

Abstract: 【Objective】The objective of this study is to clear the influence and the molecular mechanism of brassinosteroid on the photosynthetic characteristics of action in maize (Zea mays L.) leaves, and then to provide the theoretical basis and technical references for efficient using of brassinosteroid in maize field. 【Method】We sprayed 100 nmol·L-1 brassinosteroid on maize of 8 leaves period, then observed and analyzed the chloroplast structure, starch accumulation, chlorophyll content, phosphoenol plyruvate carboxylase (PEPC), photosynthetic rate, the activity of sucrose phosphate synthase (SPS) and sucrose synthase (SS) in leaves. 【Result】After 15 days from brassinosteroid treatment, compared with the control treatment, the net photosynthetic rate increased by 32.6%. At the same time, the accumulation of starch grains in the chloroplast was increased significantly. Compared with the control, the chlorophyll content of the leaves treated with brassinosteroid increased by 28.57%. The above results showed that brassinosteroid treatment can improve the light-harvesting ability of maize leaves. PEPC is an enzyme that catalyzes the fixation of CO2 in C4 plants. The results showed that brassinosteroid treatment can improve the activity of PEPC in maize leaves, and the activity of PEPC increased by 14.52% compared with the control. This showed that brassinosteroid treatment can improve the ability of fixing CO2 of maize leaves. Transportation of photosynthetic products is an important factor to determine yield. Through the ultrastructural observation of the phloem tissue cells of maize leaves, it was found that the cell inclusions in the phloem conducting tissue increased under brassinosteroid treatment. Sucrose is the main transportation form of photosynthetic products. Sucrose synthase and sucrose phosphate synthase are key enzymes in sucrose synthesis, and their activity can reflect the transport capacity and strength of photosynthetic products input to grain. In this study, the activity of sucrose synthase and sucrose phosphate synthase increased by 28.26% and 30.20%, respectively, under brassinosteroid treatment. The results showed that brassinosteroid treatment could improve the output ability of maize photosynthetic products.【Conclusion】 Brassinosteroid can raise the light energy utilization of maize blades by raising the photosynthetic pigment content, can enhance the capacity of maize leaf CO2 fixation by raising the PEP carboxylase activity, and can promote the transformation and transportation of organic matter in maize leaf through raising the activity of sucrose synthase and sucrose phosphatase.

Key words: brassinosteroid, light-harvesting ability, CO2 fixation, organic matter transport, maize

[1]    TONG H, CHU C. Brassinosteroid signaling and application in rice. Journal of Genetics and Genomics, 2012, 39(1): 3-9.
[2]    SHARMA I, CHING E, Saini S, BHARDWAJ R, PATI P K. Exogenous application of brassinosteroid offers tolerance to salinity by altering stress responses in rice variety Pusa Basmati-1. Plant Physiology and Biochemistry, 2013, 69(8): 17-26.
[3]    ZHU T, TAN W R, DENG X G, ZHENG T, ZHANG D W, LIN H H. Effects of brassinosteroids on quality attributes and ethylene synthesis in postharvest tomato fruit. Postharvest Biology and Technology, 2015, 100: 196-204.
[4]    ZHAO Y J, CHEN J C. Studies on physiological action and application of 24-epibrassinolide in agriculture. Brassinosteroids, 2003, 23: 159-170.
[5]    WU C Y, TRIEU A, RADHARISHNAN P, KWORK S F, HARRIS S, ZHANG K. Brassinosteroids regulate grain filling in rice. Plant Cell, 2008, 20(8): 2130-2145.
[6]    DENG X G, ZHU T, ZHANG D W, LIN H H. The alternative respiratory pathway is involved in brassinosteroid-induced environmental stress tolerance in Nicotiana benthamiana. Journal of Experimental Botany, 2015, 66(20): 6219-6232.
[7]    WEI L J, DENG X G, ZHU T, ZHENG T, LI P X, WU J Q. Ethylene is involved in brassinosteroids induced alternative respiratory pathway in cucumber (Cucumis sativus L.) seedlings response to abiotic stress. Frontiers in Plant Science, 2015, 10(6): 982-984.
[8]    DENG X G, ZHU T, PENG X J, XI D H, GUO H, YIN Y. Role of brassinosteroid signaling in modulating tobacco mosaic virus resistance in Nicotiana benthamiana. Scientific Reports, 2016, 3(6): 20579-20594.
[9]    PAN Y, LU Z, LU J, LI X, COMG R, REN T. Effects of low sink demand on leaf photosynthesis under potassium deficiency. Plant Physiology and Biochemistry, 2017, 113: 110-121.
[10]   DENG H, ZHANG L S, ZHANG G Q, ZHENG B Q, Liu Z J. Evolutionary history of PEPC genes in green plants: Implications for the evolution of CAM in orchids. Molecular Phylogenetics and Evolution, 2016, 94(B): 559-564.
[11]   夏叔芳, 于新建, 张振清. 叶片光合产物输出的抑制与淀粉和蔗糖的积累. 植物生理学报, 1981, 7(2): 136-141.
XIA S F, YU X J, ZHANG Z Q. Inhibition of export of photosynthetes and accumulation of starch and sucrose in leaves. Journal of Plant Physiology, 1981, 7(2): 136-141. (in Chinese)
[12]   JANG J C, SHEEN J. Sugar sensing in higher plants. Plant Cell, 1997, 6(11): 1665-1679.
[13]   张海艳, 董树亭, 高荣岐, 李玉全. 玉米籽粒淀粉积累及相关酶活性分析. 中国农业科学, 2008, 41(7): 2174-2181.
ZHANG H Y, DONG S T, GAO R Q, LI Y Q. Starch accumulation and enzymes activities associated with starch synthesis in maize kernels. Scientia Agricultura Sinica, 2008, 41(7): 2174-2181. (in Chinese)
[14]   赵福成, 景立权, 闫发宝, 陆大雷, 王桂跃, 陆卫平. 灌浆期高温胁迫对甜玉米籽粒糖分积累和蔗糖代谢相关酶活性的影响. 作物学报, 2013, 39(9): 1644-1651.
ZHAO F C, JING L Q, YAN F B, LU D L, WANG G Y, LU W P. Effects of heat stress during grain filling on sugar accumulation and enzyme activity associated with sucrose metabolism in sweet corn. Acta Agronomica Sinica, 2013, 39(9): 1644-1651. (in Chinese)
[15]   刘鹏, 胡昌浩, 董树亭, 王空军, 张吉旺, 张保仁. 甜质型与普通型玉米籽粒发育过程中糖代谢相关酶活性的比较. 中国农业科学, 2005, 38(1): 52-58.
LIU P, HU C H, DONG S T, WANG K J, ZHANG J W, ZHANG B R. Comparison of enzymes activity associated with sucrose metabolism in the developing grains between sweet corn and normal corn. Scientia Agricultura Sinica, 2005, 38(1): 52-58. (in Chinese)
[16]   路文静, 李奕松. 植物生理学实验教程. 北京: 中国林业出版社, 2012: 34-42.
LU W J, LI Y S. Plant physiology experiment tutorial 2012: 34-42. (in Chinese). Beijing: China Forestry Publishing House,
[17]   李立人, 王维光, 韩祺. 苜蓿二磷酸核酮糖(RuBP)羧化酶体内活化作用的调节. 植物生理与分子生物学学报, 1986(1): 35-41.
LI L R, WANG W G, HAN Q. The regulation of ribulose-1,5- biosphospate carboxylase activation in alfalfa leaves. Journal of Plant Physiology Molecular Biology, 1986(1): 35-41. (in Chinese)
[18]   施教耐, 吴敏贤, 查静娟. 植物磷酸烯醇式丙酮酸羧化酶的研究: I. PEP 羧化酶同功酶的分离和变构特性的比较. 植物生理与分子生物学学报, 1979(5): 225-236.
SHI J N, WU M X, ZHA J J. Studies on plant phosphoenolpyruvate carboxylase: I. Separation and properties of PEP carboxylase isoenzymes. Journal of Plant Physiology Molecular Biology, 1979(5): 225-236. (in Chinese)
[19]   MACKAREN I, PONTON C B, TRUSTY P A. A transmission electron microscope study of hydrothermally synthesized yttrium disilicate powders. Acta Materialia, 1999, 47(3): 779-791.
[20]   赵智中, 张上隆, 徐昌杰, 陈昆松, 刘拴桃. 蔗糖代谢相关酶在温州蜜柑果实糖积累中的作用. 园艺学报, 2001, 28(2): 112-118.
ZHAO Z Z, ZHANG S L, XU C J, CHEN K S, LIU S T. Roles of sucrose-metabolizing enzymes in accumulation of sugars in Satsuma mandarin fruit. Acta Horticulturae Sinica, 2001, 28(2): 112-118. (in Chinese)
[21]   MUKHERJEE S, LIU A, DEOL K K, KULICHIKHIN K, STASOLLA  C, BABEL B A, AYELE B T. Transcriptional coordination and abscisic acid mediated regulation of sucrose transport and sucrose-to- starch metabolism related genes during grain filling in wheat (Triticum aestivum L.). Plant Science, 2015, 240(5): 143-160.
[22]   ZHANG M C, ZHAI Z X, TIAN X L, DUAN L S, LI Z H. Brassinolide alleviated the adverse effect of water deficits on photosynthesis and the antioxidant of soybean (Glycine max L.). Plant Growth Regulation, 2008, 56(3): 257-264.
[23]   XIA X J, HUANG L F, ZHOU Y H, MAO W H, SHI K, WU J X, ASAMI T, CHEN Z, YU J Q. Brassinosteroids promote photosynthesis and growth by enhancing activation of Rubisco and expression of photosynthetic genes in Cucumis sativus. Planta, 2009, 230(6): 1185-1196.
[24]   李涛涛, 高永峰, 马瑄, 陈永富, 王阳, 马金彪. 外源油菜素内酯对三种杨树在干旱、盐和铜胁迫下光合生理的影响. 基因组学与应用生物学, 2016, 35(1): 218-226.
LI T T, GAO Y F, MA X, CHEN Y F, WANG Y, MA J B. Effects of exogenous brassinosteroid on photosynthesis of three species of populus under drought, salt and copper stress. Genomics and Applied Biology, 2016, 35(1): 218-226. (in Chinese)
[25]   DALOSO D M, ANTUNES W C, PINHEIRO D P, WAQUIM J P, ARAHJO W L, LOUREIRO M E, FERNIE A R, WILLIAMS T C. Tobacco guard cells fix CO2 by both Rubisco and PEPcase while sucrose acts as a substrate during light-induced stomatal opening. Plant Cell & Environment, 2015, 38(11): 2353-2371.
[26]   CHANG K S, JEON H, SEO S, LEE Y, JIN E. Improvement of the phosphoenolpyruvate carboxylase activity of Phaeodactylum tricornutum PEPCase through protein engineering. Enzyme and Microbial Technology, 2014, 60(1): 64-71.
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