|本期目录/Table of Contents|

[1]钟雪梅,代其林,马明莉,等.外源NO浸种对NaCl胁迫下油菜种子萌发和幼苗生长的影响[J].江苏农业科学,2016,44(03):102-106.
 Zhong Xuemei,et al.Effects of seed soaking with exogenous NO on seed germination and seedling growth of rapeseed under NaCl stress[J].Jiangsu Agricultural Sciences,2016,44(03):102-106.
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外源NO浸种对NaCl胁迫下油菜种子萌发
和幼苗生长的影响
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第44卷
期数:
2016年03期
页码:
102-106
栏目:
遗传育种与耕作栽培
出版日期:
2016-03-25

文章信息/Info

Title:
Effects of seed soaking with exogenous NO on seed germination and seedling growth of rapeseed under NaCl stress
作者:
钟雪梅1 代其林1 马明莉1 滕守镇1 闫宁1 吕旭才1 冯帅1 王劲2
1.西南科技大学生命科学与工程学院,四川绵阳 621010;2.中国农业科学院生物技术研究所,北京 100081
Author(s):
Zhong Xuemeiet al
关键词:
油菜外源NONaCl胁迫种子萌发生理特性
Keywords:
-
分类号:
S634.301
DOI:
-
文献标志码:
A
摘要:
以兴油177品种油菜为材料,研究不同浓度外源NO供体硝普钠(0、100、200、300、400、500、600 μmol/L SNP)浸种处理对100 mmol/L NaCl胁迫下油菜种子萌发及幼苗生长的影响。结果显示,外源NO可显著缓解盐胁迫造成的损伤,促进种子萌发及幼苗生物量的积累;显著提高幼苗叶片脯氨酸、可溶性蛋白的含量,以及抗氧化酶(SOD、POD、CAT)的活性;显著降低MDA含量,其中以200 μmol/L SNP浸种处理的效果最为显著。外源NO处理能够显著缓解盐胁迫伤害,200 μmol/L
Abstract:
-

参考文献/References:

[1]Wendehenne D,Pugin A,Klessig D F,et al. Nitric oxide:comparative synthesis and signaling in animal and plant cells[J]. Trends in Plant Science,2001,6(4):177-183.
[2]Yamasaki H,Shaniohi S Y,Takahashi S. An alternative pathway for nitric oxide production in plants:new feature of an old enzyme[J]. Trends in Plant Science,1999,4(4):128-129.
[3]Chandok M R,Ytterberg A J,Van W K J,Klessig D F. The pathogen-inducible nitric oxide synthase(iNOS)in plants is a variant of the P protein of the glycine decarboxylase complex[J]. Cell,2003,113(4):1380-1384.
[4]Wojtasek O. Nitric oxide in plants to NO or not to NO[J]. Phytochemistry,2000,54(1):1-4.
[5]Beligni M V,Lamattina L. Nitric oxide counteracts cytotoxic processes mediated by reactive oxygen species in plant tissues[J]. Planta,1999,208:337-344.
[6]Zhang Y Y,Liu Y L. Source and function of nitric oxide in plants[J]. Acta Botanica Boreali-Occidentalia Sinica,2004,24(5):921-929.
[7]Pagnussat G C,Simontacchi M,Puntarulo S,et al. Nitric oxide is required for root organogenesis[J]. Plant Physiology,2002,129(3):954-956.
[8]Lamattina L,García-Mata C,Graziano M,et al. Nitric oxide:the versatility of an extensive signal molecule[J]. Annual Review of Plant Biology,2003,54:109-136.
[9]Stohr C,Stremlau S. Formation and possible roles of nitric oxide in plant Roots[J]. Journal of Experimental Botany,2006,57(3):463-470.
[10]汤绍虎,周启贵,孙敏,等. 外源NO对渗透胁迫下黄瓜种子萌发、幼苗生长和生理特性的影响[J]. 中国农业科学,2007,40(2):419-425.
[11]王文,陈振德,罗庆熙,等. 外源一氧化氮对苯丙烯酸胁迫下黄瓜幼苗生长及活性氧代谢的影响[J]. 中国农业科学,2010,43(17):3677-3683.
[12]蔡卓山,师尚礼,谢森林,等. 外源NO对水分胁迫下苜蓿种子萌发的影响[J]. 核农学报,2013,27(11):1777-1782.
[13]裴乐乐,韩锋溪,胡景江. 外源NO对渗透胁迫下油松种子萌发及幼苗生理特性的作用[J]. 西北林学院学报,2013,28(1):58-62.
[14]刘颖,邓明华,龚明,等. 外源NO对Cu2+胁迫下小桐子幼苗抗氧化能力的影响[J]. 西北植物学报,2013,33(7):1409-1414.
[15]贾海凤,张海艳. 外源NO对NaCl胁迫下板蓝根种子萌发和幼苗生理特性的影响[J]. 中草药,2014,45(1):118-124.
[16]王俊红,魏小红,龙瑞军,等. 外源一氧化氮对渗透胁迫下小麦幼苗叶片膜脂过氧化的影响[J]. 甘肃农业大学学报,2008,43(1):77-81.
[17]吴雪霞,朱月林,朱为民,等. 外源一氧化氮对NaCl胁迫下番茄幼苗生长和光合作用的影响[J]. 西北植物学报,2006,26(6):1206-1211.
[18]陈静,刘连涛,孙红春,等. 外源NO对缺氮胁迫下棉花幼苗形态及生长的调控效应[J]. 中国农业科学,2014,47(23):4565-4575.
[19]李合生,孙群,赵世杰. 植物生理生化实验原理和技术[M]. 北京:高等教育出版社,2000.
[20]张蜀秋,李云. 植物生理学实验技术教程[M]. 北京:科学出版社,2011:187-188.
[21]邹琦. 植物生理学实验指导[M]. 北京:中国农业出版社,2000:72-75.
[22]Levitt J. Response of pants to environmental stress[M]. 2nd Ed. New York:Academic Press,1980:365-435.
[23]Mohammed B J. Ionic effects of NaCl on germination. Early seedling growth,and ion con-tent of Atriplex halimus(Chenopodiaceae)[J]. Canadian Journal of Botany,2002,80(3):297-304.
[24]刘祖祺,张石城. 植物抗性生理学[M]. 北京:中国农业出版社,1994:251-254.
[25]赵可夫. NaCl抑制棉花幼苗生长的机理——盐离子效应[J]. 植物生理学报,1989,15(2):173-178.
[26]王宝山,邹琦. NaCl胁迫对高粱根、叶鞘和叶片液泡膜ATP酶和焦磷酸酶活性的影响[J]. 植物生理学报,2000,26(3):181.
[27]朱义,谭贵娥,何池全,等. 盐胁迫对高羊茅(Festuca arundinacea)幼苗生长和离子分布的影响[J]. 生态学报,2007,27(12):5447-5454.
[28]苗海霞,孙明高,夏阳,等. 盐胁迫对苦楝根系活力的影响[J]. 山东农业大学学报:自然科学版,2005,36(1):9-12,18.
[29]Flowers T J,Yeo A R. Solute transport in plants[M]. Glasgow,Scotland:Blackie,1992:176.
[30]Adams P,Thomas J C,Vernon D M,et al. Distinct cellular and organismic responses to salt stress[J]. Plant & Cell Physiology,1992,33:1215-1223.
[31]McCue K F,Hanson A D. Drought and salt tolerance:towards under-standing and application[J]. Biotechnology,1990,8:358-362.
[32]秦岭,张华文,杨延兵,等. 不同高梁品种种子萌发耐盐能力评价[J]. 种子,2009,28(11):7-10.
[33]苗昊翠,李利民,宋彬,等. NaCl胁迫对两种锦鸡儿种子萌发的影响[J]. 新疆农业科学,2011,48(3):498-503.
[34]顾闽峰,郑佳秋,郭军,等. 盐胁迫对8个辣椒品种种子萌发的影响[J]. 江苏农业科学,2010(6):259-261.
[35]王广印,周秀梅,张建伟,等. NaCl胁迫对不同品种黄瓜种子发芽的影响[J]. 干旱地区农业研究,2005,23(1):121-124,133.
[36]王喜涛,周秀艳,辛明,等. 盐胁迫对甜瓜种子发芽的影响[J]. 北方园艺,2014(9):7-11.
[37]那桂秋,寇贺,曹敏建. 不同大豆品种种子萌发期耐盐碱性鉴定[J]. 大豆科学,2009,28(2):352-356.
[38]肖鑫辉,李向华,王克晶. 渤海湾津唐沿海野生大豆(Glycine soja)种群高盐碱胁迫反应[J]. 植物遗传资源学报,2010,11(3):290-297,304.
[39]杜景红,李北齐,薛庆喜. NaCl浸种对水稻种子发芽的影响[J]. 中国农学通报,2013,29(3):33-35.
[40]Kazemi N,Khavari-Nejad R A,Fahimi H A,et al. Effects of exogenous salicylic acid and nitric oxide on lipid peroxidation and antioxidant enzyme activities in leaves of Brassica napus L. under nickel stress[J]. Scientia Horticulturae,2010,126(3):402-407.
[41]苏桐,龙瑞军,魏小红,等. 外源NO对NaCl胁迫下燕麦幼苗氧化损伤的保护作用[J]. 草业学报,2008,17(5):48-53.
[42]徐艳,余学军,高岩,等. NO对渗透胁迫下梭梭种子萌发及幼苗生长的影响[J]. 北京林业大学学报,2011,33(6):65-69.
[43]刘开力,凌腾芳,刘志兵,等. 外源NO供体SNP浸种对盐胁迫下水稻幼苗生长的影响[J]. 植物生理学通讯,2004,40(4):419-422.
[44]Leshem Y Y,Haramaty E. The characterization and contrasting effects of the nitric oxide free radical invegetative stress and senescence of Pisum sativum Linn. foliage[J]. Journal of Plant Physiology,1996,148:258-263.
[45]张少颖,任小林,程顺昌,等. 外源一氧化氮供体浸种对玉米种子萌发和幼苗生长的影响[J]. 植物生理学通讯,2004,40(3):309-310.
[46]García M C,García M C,Lamattina L. Nitric oxide induces stomatal closure and enhances the adaptive plant responses against drought stress[J]. Plant Physiology,2001,126(3):1196-1204.
[47]阮海华,沈文飚,叶茂炳,等. 一氧化氮对盐胁迫下小麦叶片氧化损伤的保护效应[J]. 科学通报,2001,46(23):1993-1997.
[48]吴雪霞,朱月林,朱为民,等. 外源一氧化氮对NaCl胁迫下番茄幼苗生理影响[J]. 中国农业科学,2006,39(3):575-581.
[49]Clark D,Durner J,Navarre D A,et al. Nitric oxide inhibition of tobacco catalase and ascorbate peroxidase[J]. Molecular Plant-Microbe Interactions,2000,13(12):1380-1384.

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备注/Memo

备注/Memo:
收稿日期:2015-10-11
基金项目:国家重点基础研究发展计划(编号:2013CB733903);国家“863”计划(编号:2012AA063503);国家转基因专项(编号:2014ZX0801201B);公益性行业(农业)科研专项(编号:201103007);西南科技大学博士研究基金(编号:11zx7104);四川省生物质资源利用与改性工程技术研究中心开展开放基金(编号:13zxsk04)。
作者简介:钟雪梅(1990—),女,云南昆明人,硕士研究生,主要从事植物遗传转化与抗逆分析研究。E-mail:1021749833@qq.com。
通信作者:王劲,教授,主要从事植物逆境生理研究。E-mail:wjdsz@vip.sina.com。
更新日期/Last Update: 2016-03-25