研究报告

外源油菜素内酯缓解水稻穗分化期高温伤害的机理研究

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  • 1中国水稻研究所 水稻生物学国家重点实验室, 杭州 310006
    2江西农业大学 农学院, 南昌 330045
    3湖南农业大学 农学院, 长沙 410218
*通讯联系人, E-mail: wangyl0103@126.com; cnrrizyp@163.com

收稿日期: 2019-03-29

  修回日期: 2019-04-15

  网络出版日期: 2019-09-10

基金资助

国家重点研发专项(2017YFD0300409);现代农业产业技术体系建设专项(CARS-01-07B);中国农业科学院创新团队资助项目

Mechanism of Exogenous Brassinolide in Alleviating High Temperature Injury at Panicle Initiation Stage in Rice

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  • 1China National Rice Research Institute, State Key Laboratory of Rice Biology, Hangzhou 310006, China
    2College of Agronomy, Jiangxi Agricultural University, Nanchang 330045, China
    3College of Agronomy, Hu’nan Agricultural University, Changsha 410218, China;
*Corresponding author, E-mail: wangyl0103@126.com; cnrrizyp@163.com

Received date: 2019-03-29

  Revised date: 2019-04-15

  Online published: 2019-09-10

摘要

【目的】 明确水稻穗分化期高温下喷施2,4-表油菜素内酯(2,4-epibrassinolide, EBR)对穗生长及颖花形成的影响,并探究其生理机制。【方法】 以热敏感型水稻IR36为材料,在幼穗分化期设置40℃高温和32℃适温两个处理,并喷施EBR,研究幼穗碳水化合物供应、蔗糖代谢、细胞分裂素代谢及抗氧化能力的变化。【结果】 1)高温和适温喷施EBR,水稻每穗粒数分别比不喷施的对照增加13.7% 和45.7%,其中以喷施0.15 mg/L效果最好,缓解了高温对水稻幼穗生长的抑制,增加颖花分化数和降低颖花退化率。2)喷施EBR对叶片净光合速率无显著影响,但促进幼穗中干物质和非结构性碳水化合物积累。EBR喷施增加高温下幼穗中蔗糖转运基因OsSUT1OsSUT2OsSUT4的表达,并显著提高蔗糖代谢相关酶活性,EBR对高温下碳水化合物利用的促进作用大于适温处理。3)喷施EBR降低高温下细胞分裂素氧化酶基因OsCKX5OsCKX9的表达量,同时促进细胞分裂素合成和信号调节相关基因的表达,并在适温下也表现出类似的效应。4)喷施EBR降低高温下超氧阴离子含量,增强了超氧化物歧化酶、过氧化氢酶和过氧化物酶活性。【结论】 高温下,喷施适宜浓度的EBR促进碳水化合物向幼穗的转运,抑制细胞分裂素分解,同时降低高温引起的过氧化伤害,进而缓解了高温对颖花形成的伤害。适温条件喷施EBR也对颖花形成具有一定的促进作用。

本文引用格式

陈燕华, 王亚梁, 朱德峰, 石庆华, 陈惠哲, 向镜, 张义凯, 张玉屏 . 外源油菜素内酯缓解水稻穗分化期高温伤害的机理研究[J]. 中国水稻科学, 2019 , 33(5) : 457 -466 . DOI: 10.16819/j.1001-7216.2019.9036

Abstract

【Objective】The purpose of the study is to ascertain the effects of 2,4-epibrassinolide(EBR) application on rice panicle development and spikelet formation under high temperature, and to explore the physiological mechanism. 【Method】Heat-sensitive inbred rice cultivar IR36 was subjected to high temperature (HT, 40℃) and normal temperature (NT, 32℃) in climate chambers with EBR application, and the carbohydrate supplement, sucrose metabolism, cytokinin metabolism, and antioxidant capacity of young panicle were investigated. 【Result】1) EBR application increased the number of spikelets per panicle by 13.7% and 45.7% on average under HT and NT, respectively, in comparison to the control. And 0.15 mg/L EBR application level performed the highest efficiency in increasing the number of spikelet number, EBR application prompted panicle development and spikelet differentiation, and inhibited spikelet degeneration. 2) EBR application did not influence leaf net photosynthesis, meanwhile increased the dry matter and nonstructural carbohydrate accumulation in young panicles. Under high temperature, EBR application significantly upregulated the expression levels of sucrose transport genes OsSUT1, OsSUT2, and OsSUT4, and EBR enhanced the related enzymes activities of sucrose metabolism especially in HT than in NT. 3) EBR application reduced the expression levels of cytokinin oxidase genes, OsCKX5 and OsCKX9, under HT. Meanwhile, EBR application promoted the genes expression involved in cytokinin biosynthesis and signal transduction both under HT and NT treatments. 4) EBR application increased the activities of superoxide dismutase, catalase and peroxidase, reduced the content of superoxide under HT. 【Conclusion】Under HT conditions, EBR application at appropriate concentration could alleviate heat damage to spikelet formation by promoting carbohydrates transportation to young panicles, inhibiting cytokinin oxidation, and reducing peroxidation injures. Meanwhile, EBR application could promote spikelet formation under normal temperature.

参考文献

[1] Sanchez B, Rasmussen A, Porter J R.Temperatures and the growth and development of maize and rice: A review. Glob Chan Biol, 2014, 20: 408-417.
[2] Wu C, Cui K, Wang W, Li Q, Fahad S, Hu Q, Huang J, Nie L, Peng S.Heat-induced phytohormone changes are associated with disrupted early reproductive development and reduced yield in rice.Sci Rep, 2016: 6.
[3] Wang Y, Wang L, Zhou J, Hu S, Chen H, Xiang J, Zhang Y, Zeng Y, Shi Q, Zhu D, Zhang Y,.Research progress on heat stress of rice at flowering.Rice Sci, 2019, 26: 1-10.
[4] 柳新伟, 孟亚利, 周治国, 曹卫星. 水稻颖花分化与退化的动态特征. 作物学报, 2005, 31: 451-455.
[4] Liu X W, Meng Y L, Zhou Z G, Gao W X.Dynamic characteristics of floret differentiation and degeneration in rice.Acta Agron Sin, 2005, 31: 451-455. (in Chinese with English abstract)
[5] Zhang C, Feng B, Chen T, Fu W, Li H, Li G, Jin Q, Tao L, Fu G.Heat stress-reduced kernel weight in rice at anthesis is associated with impaired source-sink relationship and sugars allocation.Environ Exp Bot, 2018, 155: 718-733.
[6] Perdomo J A, Capo-Bauca S, Carmo-Silva E, Galmes J.Rubisco and rubisco activase play an important role in the biochemical limitations of photosynthesis in rice, Wheat, and maize under high temperature and water deficit.Front Plant Sci, 2017: 8.
[7] Takehara K, Murata K, Yamaguchi T, Yamaguchi K, Chaya G, Kido S, Iwasaki Y, Ogiwara H, Ebitani T, Miura K.Thermo-responsive allele of sucrose synthase3 (Sus3) provides high-temperature tolerance during the ripening stage in rice(Oryza sativa L.). Breeding Sci, 2018, 63: 336-342.
[8] Miyazaki M, Araki M, Okamura K, Iwaya-Inoue M.Assimilate translocation and expression of sucrose transporter,OsSUT1, contribute to high-performance ripening under heat stress in the heat-tolerant rice cultivar Genkitsukushi. J Plant Physiol, 2013, 170: 1579-1584.
[9] 丁承强. 氮素穗肥调控水稻每穗颖花数的分子机制. 南京: 南京农业大学, 2012.
[9] Ding C Q.Molecular mechanism of nitrogen fertilization in increasing the spikelet number per panicle of rice. Nanjing: Nanjing Agricultural University, 2012.
[10] Wu C, Cui K, Wang W, Li Q, Fahad S, Hu Q, Huang J, Nie L, Mohapatra P K, Peng S.Heat-induced cytokinin transportation and degradation are associated with reduced panicle cytokinin expression and fewer spikelets per panicle in rice.Front Plant Sci, 2017:8.
[11] Vriet C, Russinova E, Reuzeau C.Boosting crop yields with plant steroids.Plant Cell, 2012, 24: 842-857.
[12] Yu J Q, Huang L F, Hu W H, Zhou Y H, Mao W H, Ye S F, Nogues S.A role for brassinosteroids in the regulation of photosynthesis inCucumis sativus. J Exp Bot, 2004, 55: 1135-1143.
[13] Zhang M, Zhai Z, Tian X, Duan L, Li Z.Brassinolide alleviated the adverse effect of water deficits on photosynthesis and the antioxidant of soybean (Glycine max L.). Plant Growth Regul, 2008, 56: 257-264.
[14] Ryu H, Cho Y.Plant hormones in salt stress tolerance.J Plant Biol, 2015, 58: 147-155.
[15] 松岛省三.稻作的理论与技术. 庞城译, 北京: 农业出版社, 1966: 121-133.
[15] Matsushima S.Theory and Technology of Rice Cultivation. Pang C Trans.Beijing:Agriculture Press, 1966: 121-133. (in Chinese)
[16] Hansen J, Møller I.Percolation of starch and soluble carbohydrates from plant tissue for quantitative determination with anthrone.Anal Biochem, 1975, 68(1): 87-94.
[17] 王杰, 王全, 田娜, 王瑜, 王爱香, 张克中, 崔金腾. 不同植物组织RNA提取方法的比较分析. 北京农学院学报, 2015, 30(1): 76-80.
[17] Wang J, Wang Q, Tian N, Wang Y, Wang A X, Zhang K Z, Cui J T.Comparison and analysis of RNA extracting method from different plant tissues.J Beijing Univ Agric, 2015, 30(1): 76-80.
[18] Czechowski T, Bari R P, Stitt M, Scheible W R, Udvardi M K.Real-time RT-PCR profiling of over 1400Arabidopsis transcription factors: Unprecedented sensitivity reveals novel root- and shoot-specific genes. Plant J, 2004, 38: 366-379.
[19] Wu C Y, Trieu A, Radhakrishnan P, Kwok S F, Harris S, Zhang K, Wang J, Wan J, Zhai H, Fujioka S, Feldmann K A, Pennell R I.Brassinosteroids regulate grain filling in rice.Plant Cell, 2008, 20: 2130-2145.
[20] Wang F, Zhang Y, Guo Q, Tan H, Han J, Lin H, Wei H, Xu G, Zhu C.Effects of exogenous 5-aminolevulinic acid and 2,4-epibrassinolide on Cd accumulation in rice from Cd-contaminated soil.Rice Sci, 2018, 25: 320-329.
[21] Clouse S D.Brassinosteroid/abscisic acid Antagonism in balancing growth and stress.Dev Cell, 2016, 38: 118-120.
[22] 李赞堂, 王士银, 姜雯宇, 张帅, 张少斌, 徐江. 穗分化期外施24-表油菜素内酯(EBR)促进水稻源、库及籽粒灌浆的生理机制. 作物学报, 2018, 44(4): 581-590.
[22] Li Z, Wang S, Jiang W, Zhang S, Zhang S, Xu J.Physiological mechanisms of promoting source, sink, and grain filling by 24-epibrassinolide (EBR) applied at panicle initiation stage of rice.Acta Agron Sin, 2018, 44(4): 581-590. (in Chinese with English abstract)
[23] Zhang C, Fu G, Yang X, Yang Y, Zhao X, Chen T, Jin Q, Tao L X.Heat stress effects are stronger on spikelets than on flag leaves in rice due to differences in dissipation capacity.J Agron Crop Sci, 2016, 202: 394-408.
[24] 杨洪建, 杨连新, 黄建晔, 刘红江, 董桂春, 颜士敏, 朱建国, 王余龙. FACE对武香粳14颖花分化与退化的影响. 作物学报, 2006, 32: 1076-1082.
[24] Yang H, Yang L, Huang J, Liu H, Dong G, Yan S, Zhu J, Wang Y.Effect of free-air CO2 enrichment on spikelet differentiation and degeneration ofjaponica rice Wuxiangjing 14. Acta Agron Sin, 2006, 32: 1076-1082. (in Chinese with English abstract)
[25] Wang Z, Zhang W, Yang J.Physiological mechanism underlying spikelet degeneration in rice.J Integr Agric, 2018, 17: 1475-1481.
[26] Ashikari M, Sakakibara H, Lin S, Yamamoto T, Takashi T, Nishimura A, Angeles E R, Qian Q, Kitano H, Matsuoka M.Cytokinin oxidase regulates rice grain production.Science, 2005, 309: 741-745.
[27] Yuldashev R, Avalbaev A, Bezrukova M, Khripach V, Shakirova F.Cytokinin oxidase is involved in the regulation of cytokinin content by 24-epibrassinolide in wheat seedlings.Plant Physiol Biochem, 2012, 55: 1-6.
[28] Hu Y, Bao F, Li J.Promotive effect of brassinosteroids on cell division involves a distinct CycD3-induction pathway inArabidopsis. Plant J Cell & Mol Biol, 2010, 24: 693-701.
[29] Ahmad P, Jaleel C A, Salem M A, Nabi G, Sharma S.Roles of enzymatic and nonenzymatic antioxidants in plants during abiotic stress.Crit Rev Biotechnol, 2010, 30: 161-175.
[30] 曹云英, 赵华. 高温胁迫下油菜素内酯对水稻幼苗的保护作用. 中国水稻科学, 2007, 21(5): 525-529.
[30] Cao Y Y, Zhao H.Protective roles of brassinolide in rice seedling under heat stress.Chin J Rice Sci, 2007, 21(5): 525-529. (in Chinese with English abstract)
[31] Xia X, Fang P, Guo X, Qian X, Zhou J, Shi K, Zhou Y, Yu J.Brassinosteroid-mediated apophatic H2O2-glutare doxin 12/14 cascade regulates antioxidant capacity in response to chilling in tomato.Plant Cell Environ, 2017, 41: 1052-1064.
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