Transcriptome-wide profiling and expression analysis of two accessions of Paulownia australis under salt stress

被引:0
作者
Yanpeng Dong
Guoqiang Fan
Zhenli Zhao
Enkai Xu
Minjie Deng
Limin Wang
Suyan Niu
机构
[1] Henan Agricultural University,Institute of Paulownia
[2] Henan Agricultural University,College of Forestry
来源
Tree Genetics & Genomes | 2017年 / 13卷
关键词
Salt stress; Diploid; Autotetraploid; Transcriptome; RNA-sequencing;
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摘要
Paulownia australis has important economic and ecological values. In this study, the morphological and physiological changes of the leaves in diploid and autotetraploid P. australis under salt stress were analyzed. To detect related genes and gain a comprehensive perspective on the molecular mechanisms underlying salt tolerance in P. australis, transcriptome-wide gene expression profiling was conducted in the leaves of the diploid and autotetraploid P. australis under control and salinity conditions, respectively. Evaluation of the responses against salinity stress revealed the superiority of autotetraploid over diploid in terms of salinity tolerance. Changes in physiological parameters in diploid P. australis (PA2) and tetraploid P. australis (PA4) plants in response to salt stress were measured. Transcriptome data revealed that many of the common unigenes which were involved in accumulation of compatible solutes, oxidative stress detoxification, ion homeostasis, and signal transduction showed significant differences between the two accessions in response to salt stress. A number of salt-responsive unigenes were identified in two accessions of P. australis under salt stress. Furthermore, the differentially expressed unigenes found to be common in both accessions may be useful genetic resources for further genetic improvement of Paulownia using transgenic approaches.
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  • [1] Allakhverdiev SI(2000)Ionic and osmotic effects of NaCl-induced inactivation of photosystems I and II in Plant Physiol 123 1047-1056
  • [2] Sakamoto A(2004) sp. Annu Rev Plant Biol 55 373-399
  • [3] Nishiyama Y(1949)Reactive oxygen species: metabolism, oxidative stress, and signal transduction Plant Physiol 24 1-191
  • [4] Inaba M(2011)Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Plant Mol Biol 75 179-16
  • [5] Murata N(2004)Functional characterisation of OsCPK21, a calcium-dependent protein kinase that confers salt tolerance in rice Plant Science 166 3-428
  • [6] Apel K(1962)Potential biochemical indicators of salinity tolerance in plants Aust J Biol Sci 15 413-7790
  • [7] Hirt H(2007)A re-examination of the relative turgidity technique for estimating water deficits in leaves Mol Cell Biol 27 7781-207
  • [8] Arnon DI(1973)SOS2 promotes salt tolerance in part by interacting with the vacuolar H+-ATPase and upregulating its transport activity Plant Soil 39 205-828
  • [9] Asano T(2007)Rapid determination of free proline for water-stress studies Plant J 49 810-290
  • [10] Hakata M(1995)Analysis of the sucrose synthase gene family in Plant Cell 7 1099-254