研究报告

外源硅减轻高温引起的杂交水稻结实降低

展开
  • 1长江大学 农学院, 湖北 荆州 434025;2教育部长江中游湿地农业工程研究中心,湖北 荆州 434025;

收稿日期: 2013-05-14

  修回日期: 2013-06-27

  网络出版日期: 2014-01-10

基金资助

国家自然科学基金资助项目(30971736);国家公益性行业(农业)计划资助项目(201203029);科技部国际合作资助项目(2012DFG31740);国家大学生创新性实验计划资助项目(111048914)。

Exogenous Silicon Alleviates Spikelet Fertility Reduction of Hybrid Rice Induced by High Temperature under Field Conditions

Expand
  • 1College of Agriculture, Yangtze University, Jingzhou  434025, China; 2Engineering Research Center of Wetland Agriculture in the Middle Reaches of the Yangtze River, Ministry of Education, Yangtze University, Jingzhou 434025, China;

Received date: 2013-05-14

  Revised date: 2013-06-27

  Online published: 2014-01-10

摘要

选用硅酸钠(Na2SiO3·9H2O)为硅源,于大田条件下对耐热性不同的2个杂交水稻组合在拔节期连续3次喷施4个浓度水平(TCK, 0 mmol/L; T1.25, 1.25 mmol/L; T2.50, 2.50 mmol/L; T3.75, 3.75 mmol/L)的外源硅,研究施硅对花期自然高温和自然常温下杂交水稻柱头授粉性能、花药开裂性能和受精率的影响,并筛选适宜浓度的硅酸钠施用方案。结果表明,在田间高温条件下,与TCK相比,施硅处理(T1.25、T2.50和T375)使热敏感组合金优63和耐热组合汕优63的颖花受精率分别提高10.6和4.7百分点(绝对值);花药基部开裂宽度分别增加190%和103%(相对值);每柱头花粉萌发数增加169%和396%; 授粉总数分别增加34%和305%;花粉萌发率上升113和70百分点;  花粉萌发数大于10粒的小花的占比上升93和276百分点;花粉总数小于20粒的小花占比下降188和81百分点(相对值)。经对两个组合在常温和高温下施硅的花药发育及授粉特性的解析,初步认为外源硅对水稻授粉性能有综合提高作用,但比较而言,其作用可能主要与提高花粉发育质量有关,而提高授粉总数和改善花药裂药性能也有一定的辅助作用。此外,外源硅施用对高温敏感组合效果更佳,其适宜的喷施浓度为2.50 mmol/L。

本文引用格式

吴晨阳1,姚仪敏1 ,邵平1,王燚1,汪志威1,田小海1,2,* . 外源硅减轻高温引起的杂交水稻结实降低[J]. 中国水稻科学, 2014 , 28(1) : 71 -77 . DOI: 10.3969/j.issn.1001-7216.2014.01.010

Abstract

Effects of exogenous silicon on spikelet fertility of hybrid rice were investigated  at natural high and normal temperatures during anthesis under field conditions with two hybrids, hightemperature sensitive Jinyou 63  and   hightemperature tolerant Shanyou 63 as material. The exogenous silicon via fertilizer application, in the form of sodium silicon (Na2SiO3·9H2O), was consecutively spayed for  three times at jointing stage at four concentrations,  0 mmol/L (TCK), 1.25 mmol/L(T1.25 ), 2.50 mmol/L (T2.50), and 3.75 mmol/L(T3.75 ). Varietal responses in terms of pollination properties, anther dehiscence and spikelet pollination  rate were examined to establish a feasible screening scheme of the most appropriate sodium silicate application level in rice management practices. Results showed that, sodium silicate applications at the concentration of 1.25 mmol/L, 2.50 mmol/L or 3.75 mmol/L under high temperature in field environments effectively increased the germinated pollen number  per stigma by 16.9% and 39.6% for the heatsensitive Jinyou 63 and heattolerant Shanyou 63, respectively. The number of   pollen grains per stigma increased by 34%  and 305%,  respectively.  The   pollen  germination  rate   rose by 11.3 and 7.0 percentage points, respectively; the percentage of florets with more than 10 germinated pollen grains was increased by 9.3  and 27.6 percentage points,  respectively; while the percentage of florets with fewer than 20  pollen grains  was reduced by 18.8  and 8.1 percentage points,  respectively. Application of the silicon fertilizer also increased anther basal dehiscence width by relative values of 19.0% and 10.3%, respectively, while it improved spikelet pollination rate by absolute values of 10.6 and 4.7 percentage points in the sensitive and tolerant hybrids, respectively. These results showed that the effect of silicon in alleviating fertility reduction may be mainly  attributed to  the pollen quality improvement, but not the pollen quantity or the anther dehiscence. Exogenous silicon   was more effective for hightemperature sensitive  combination  than that for the tolerant and the most effective dosage was at the concentration of 2.50 mmol/L.

参考文献

\[1\]Wassmann R,Jagadish S V K,Heuer S,et al. Climate change affecting rice production:The physiological and agronomic basis for possible adaptation strategies. Adv Agron, 2009,101:59122.

\[2\]Stephen P L,Donald R O. More than taking the heat:Crops and global change. Curr Opin Plant Biol, 2010,13:241248.

\[3\]Nigel G H. New insights on the effects of heat stress on crops. J Exper Bot, 2009,60(15):42154216.

\[4\]王万能,全学军,肖崇刚. 植物诱导抗性的机理和应用研究进展. 湖北农业科学,2010,49(1):204206.

\[5\]Peck A W,Mcdonald G K. Adequate zinc nutrition alleviates the adverse effects of heat stress in bread wheat. Plant Soil, 2010,337:355374.

\[6\]Sakata T,Oshino T,Miura S,et al. Auxins reverse plant male sterility caused by high temperatures. PNAS, 2010,107(19):85698574.

\[7\]Liu X Z,Huang B R,Banowetz G. Cytokinin effects on Creeping Bentgrass responses to heat stress:Ⅰ. Shoot and root growth. Crop Sci,2002,42:457465.

\[8\]Kauffman G L,Kneivel D P,Watschke T L. Effects of a biostimulant on the heat tolerance associated with photosynthetic capacity,membrane thermostability,and polyphenol production of perennial ryegrass. Crop Sci, 2007,47:261267.

\[9\]Cao Y Y,Zhao H. Protective roles of Brassinolide on rice seedlings under high temperature stress. Rice Sci, 2008,15(1):6368.

\[10\]Uchida A,Jagendorf A T,Hibino T,et al. Effects of hydrogen peroxide and nitric oxide on both salt and heat stress tolerance in rice. Plant Sci, 2002,163:515523.

\[11\]Mohammed A R,Tarpley L. High nighttime temperatures affect rice productivity through altered pollen germination and spikelet fertility. Agri Forest Meteorol, 2009,149:9991008.

\[12\]陶龙兴,裘小荣,符冠富,等. 硅肥对国稻6号的生理影响及增产效果. 中国稻米,2008(3):5759.

\[13\]Datnofft L E,Deren C W,Snyder G H. Silicon fertilization for disease management of rice in Florida. Crop Prot, 1997,16(6):525531.

\[14\]吴晨阳,马国辉,付义川,等. 优马归甲对水稻高温下受精率降低的减轻效应. 中国生态农业学报,2011,19(6):14831485.

\[15\]Agarie S,Hanaoka N,Ueno O,et al. Effects of silicon on tolerance to water deficit and heat stress in rice plants (Oryzα sαtivα L.),monitored by electrolyte leakage. Plant Prod Sci, 1998(2):96103.

\[16\]李文彬,王贺,张福锁. 高温胁迫条件下硅对水稻花药开裂及授粉量的影响. 作物学报,2005,31(1):134136.

\[17\]王世华,罗群胜,刘传平,等. 叶面施硅对水稻籽实重金属积累的抑制效应. 生态环境,2007,16(3):875878.

\[18\]韩永强,魏春光,侯茂林. 硅对植物抗虫性的影响及其机制. 生态学报,2012,32(3):974983.

\[19\]杨艳芳,梁永超,娄运生,等. 硅对小麦过氧化物酶、超氧化物歧化酶和木质素的影响及与抗白粉病的关系. 中国农业科学,2003,36(7):813817.

\[20\]Gong H J,Zhu X Y,Chen K M,et al. Silicon alleviates oxidative damage of wheat plants in pots under drought. Plant Sci, 2005,169:313321.

\[21\]马国辉,邓启云,万宜珍,等. 超级杂交稻抗倒生理与形态机能研究:Ⅰ.培矮64S/E31与汕优63植株钾、硅和纤维素含量差异. 湖南农业大学学报,2000,26(5):329331.

\[22\]范琼花,孙万春,李兆君,等. 硅对短期低温胁迫小麦叶片光合作用及其主要相关酶的影响. 植物营养与肥料学报,2009,15(3):544550.

\[23\]Ulloa M F,Anderson D L. Sugarcane cultivar response to calcium silicate slag on everglades histosols. ASSCT Annual Meetings. New Orleans,LA. 1991.

\[24\]Liang Y C,Zhu J,Li Z J,et al. Role of silicon in enhancing resistance to freezing stress in two contrasting winter wheat cultivars. Environ Exp Bot, 2008,64:286294.

\[25\]Liang Y C,Zhang W H,Chen Q,et al. Effect of exogenous silicon (Si) on H+ATPase activity, phospholipids and fluidity of plasma membrane in leaves of saltstressed barley (Hordeum vulgare L.). Environ Exp Bot, 2006,57:212219.

\[26\]Liang Y C,Chen Q,Liu Q,et al. Exogenous silicon (Si) increases antioxidant enzyme activity and reduces lipid peroxidation in roots of salt stressed barley (Hordeum vulgare L.). J Plant Physiol, 2003,160:1571164.

\[27\]Zeng F R,Zhao F S,Qiu B Y,et al. Alleviation of chromium toxicity by silicon addition in rice plants. Sci Agric Sin, 2011,10(8):11881196.

\[28\]Satake T,Yoshida S. High temperatureinduced sterility in indica rice at flowering. Jpn J Crop Sci,1978,47:610.

\[29\]Matsui T,Omasa K,Horie T. The difference in sterility due to high temperature during the flowering period among japonicarice varieties. Plant Prod Sci, 2001,4:9093.

\[30\]西山岩男. 水稻冷害生理学(日文版). 日本北海道:北海道大学图书刊行会,1985:132175.

\[31\]Zhao L,Kobayasic K,Hasegawad T,et al. Traits responsible for variation in pollination and seed set among six rice cultivars grown in a miniature paddy field with free air at a hot,humid spot in China. Agric,Ecos Environ, 2010,139:110115.

\[32\]Matsui T,Kobayasi K,Kagata H,et al. Correlation between viability of pollination and length of basal dehiscence of the theca in rice under a hot and humid condition. Plant Prod Sci, 2005,8:109114.

\[33\]Tian X,Matsui T,Li S,et al. Heatinduced floret sterility of hybrid rice (Oryza sativa L.) cultivars under humid and low wind conditions in the field of Jianghan Basin. China. Plant Prod Sci, 2010,13:243251.
文章导航

/

浙ICP备05004719号-5
公安备案号:33010302003356
地址:浙江省杭州市富阳区水稻所路28号 邮编:311400 电话:0571-63370278 E-mail:cjrs@263.net
本系统由北京玛格泰克科技发展有限公司设计开发
总访问量: 今日访问: 在线人数: