期刊文献+

盐胁迫条件下提高内源乙烯对拟南芥幼苗生长和根尖活性氧水平的影响 被引量:7

Effects of Increased Endogenous Ethylene on Plant Salt Tolerance in Arabidopsis Seedlings under Saline Condition
在线阅读 下载PDF
导出
摘要 以模式植物拟南芥(Arabidopsis thaliana)为材料,研究了内源乙烯对幼苗耐盐性的影响。研究结果表明,在施加了浓度为100 mmol.L-1的NaC l胁迫的基质环境中,野生型拟南芥幼苗的根长和根重都显著减小。在施加外源乙烯利后不仅能够缓解盐胁迫对幼苗根伸长生长的抑制作用,而且能够缓解盐胁迫对幼苗根增重生长的抑制作用。施加外源ACC则只能缓解盐胁迫对幼苗根增重生长的抑制作用,而不能缓解盐胁迫对根的伸长生长的抑制。此外,100 mmol.L-1NaC l的胁迫条件下,拟南芥幼苗根尖中ROS水平明显升高,而施加了乙烯利和ACC处理下,幼苗根尖ROS的水平在NaC l胁迫下并没有明显的升高,说明内源乙烯可以调控植物体内的ROS维持在正常的水平,使植物体免受氧化损伤,从而提高了幼苗耐盐性。 The effects of endogenous ethylene on plant salt tolerance in Arabidopsis seedlings in exposure to salinity were investigated in the present work.The results showed that 100 mmol·L-1 NaCl significantly decreased seedling root elongation and root fresh weight.Application of exogenous ethephon obviously alleviated salt-induced inhibition of root length and biomass accumulation.Comparatively,exogenous ACC had a positive effect merely on alleviating root weight inhibition caused by salt stress.The root ROS level in salt-stressed seedlings was also increased drastically,and both ethephon and ACC could keep the root ROS level at a low level as control under NaCl stress conditions.It was proposed that improvement of Arabidopsis salt tolerance induced by ethylene is tightly related to root redox state.
出处 《植物研究》 CAS CSCD 北大核心 2010年第6期703-707,共5页 Bulletin of Botanical Research
基金 国家自然科学基金(31000176)
关键词 乙烯 拟南芥 耐盐性 氧化胁迫 ethylene; Arabidopsis; salt tolerance; oxidative stres;
  • 相关文献

参考文献21

  • 1Lorenzo O, Piqueras R, Sanchez-Serrano J J, et al. ETHYLENE RESPONSE FACTOR 1 integrates signals from ethylene and jamonate pathway in plant defense[ J]. Plant Cell, 2003,15 : 165 - 178.
  • 2Kim C Y, Liu Y,Thorne E T, et al. Activation of a stress-responsive mitogen-activated protein kinase cascade induces the biosynthesis of ethylene in plants[ J]. Plant Cell,2003, 15:2707 - 2708.
  • 3Jackson M B. Ethylene-promoted elongation:an adaptation to submergence stress [ J ]. Annals of Botany, 2008, 101 : 229 - 248.
  • 4Pierik R, Sasidharan R, Voesenek L A C J. Growth control by ethylene : adjusting phenotypes to the environment [ J ]. Journal of Plant Growth Regulation, 2007,26 : 188 - 200.
  • 5Young T E, Meeley R B, Gallie D R. ACC synthase expression regulates leaf performance and drought tolerance in maize [ J ]. The Plant Journal, 2004,40 ( 5 ) : 813 - 825.
  • 6Voesenek L A C J, Colmer T D,Pierik R, et al. How plants cope with complete submergence [ J ]. New Phytologist, 2006,170:213 - 226.
  • 7Mommer L,Lenssen J P M, Huber H, et al. Ecophysiological determinants of plant performance under flooding: a comparative study of seven plant families [ J ]. Journal of Ecology, 2006,94 (6) : 1117 - 1129.
  • 8Zhu J K. Genetic analysis of plant salt tolerance using Arabidopsis [ J ]. Plant Physiology,2000,124:941 - 948.
  • 9Munns R. Genes and salt tolerance : bringing them together [ J ]. New Phytologist ,2005,167:645 - 663.
  • 10Wang Y, Wang T, Li K, et al. Genetic analysis of involvement of ETR1 in plant response to salt and osmotic stress [J]. Plant Growth Regulation,2008,54:261 - 269.

二级参考文献26

  • 1Poirier Y, Bucher M. Phosphate transport and homeostasis in Arabidopsis [ M ]. American Society of Plant Biologists, 2002.
  • 2Holford I C R. Soil phosphorus: its measurements and its uptake by plants[ J ]. Aust J Soil Res, 1997,35:227 - 239.
  • 3Sehaehtman D P, Reid R J, Ayling S L. Phosphorus uptake by plants : from soil to cells [ J ]. Plant Physiol, 1998, 116 : 447 - 453.
  • 4Duff S M G, Moorhead G B G, Lefebvre D D, et al. Phosphate starvation inducible " bypasses" of adenylate and phosphate dependent glycolytic enzymes in Brassica nigra suspension cells [ J ]. Plant Physiol, 1989,90 : 1275 - 1278.
  • 5Lynch J P. Root architecture and plant productivity [ J ]. Plant Physiol, 1995,109:7 - 13.
  • 6Al-Ghazi Y, Muller B, Pinloche S, et al. Temporal response of Arabidopsis root architecture to phosphate starvation:evidence for the involvement of auxin signalling [ J ]. Plant Cell Environ ,2003,26 : 1053 - 1066.
  • 7Bonser A M, Lynch J, Snapp S. Effect of phosphorus deficiency on growth angle of basal roots in Phaseolus vulgaris [ J ]. New Phytol, 1996,132:281 - 288.
  • 8Carswell C, Grant B R ,Theodorou M E, et al. The fungicide phosphonate disrupts the phosphate-starvation response in Brassica nigra seedlings [ J ]. Plant Physiol, 1996,110 : 105 -110.
  • 9Drew M C. Comparison of the effect of a localized supply of phosphate, nitrate, ammonium and potassium on the growth of the seminal root system, and the shoot, in barley [ J ]. New Phytol, 1975,75:479 - 490.
  • 10Johnson J F, Allan D L, Vance C P. Phosphorus stress-induced proteoid roots show altered metabolism in Lupinus albus [ J ]. Plant Physiol, 1994,104: 657 - 665.

共引文献9

同被引文献93

引证文献7

二级引证文献19

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部