Title of article
Response to drought and salt stress in leaves of poplar (Populus alba × Populus glandulosa): Expression profiling by oligonucleotide microarray analysis
Author/Authors
Yoon، نويسنده , , Seokyung and Park، نويسنده , , Eung-Jun and Choi، نويسنده , , Young-Im and Bae، نويسنده , , Eun-Kyung and Kim، نويسنده , , Joon-Hyeok and Park، نويسنده , , So-Young and Kang، نويسنده , , Kyu-Suk and Lee، نويسنده , , Hyoshin، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2014
Pages
11
From page
158
To page
168
Abstract
Drought and salt stresses are major environmental constraints on forest productivity. To identify genes responsible for stress tolerance, we conducted a genome-wide analysis in poplar (Populus alba × Populus glandulosa) leaves exposed to drought and salt (NaCl) stresses. We investigated gene expression at the mRNA level using oligonucleotide microarrays containing 44,718 genes from Populus trichocarpa. A total of 1604 and 1042 genes were up-regulated (≥2-fold; P value < 0.05) by drought and salt stresses, respectively, and 765 genes were up-regulated by both stresses. In addition, 2742 and 1685 genes were down-regulated by drought and salt stresses, respectively, and 1564 genes were down-regulated by both stresses. The large number of genes regulated by both stresses suggests that crosstalk occurs between the drought and salt stress responses. Most up-regulated genes were involved in functions such as subcellular localization, signal transduction, metabolism, and transcription. Among the up-regulated genes, we identified 47 signaling proteins, 65 transcription factors, and 43 abiotic stress-related genes. Several genes were modulated by only one of the two stresses. About 25% of the genes significantly regulated by these stresses are of unknown function, suggesting that poplar may provide an opportunity to discover novel stress-related genes.
Keywords
oligonucleotide microarray , salt stress , Populus , drought stress , Gene expression
Journal title
Plant Physiology and Biochemistry
Serial Year
2014
Journal title
Plant Physiology and Biochemistry
Record number
2124874
Link To Document