Prediction of new abiotic stress genes in Arabidopsis thaliana and Oryza sativa according to enumeration-based statistical analysis

被引:0
作者
Mátyás Cserháti
Zoltán Turóczy
Zoltán Zombori
Miklós Cserző
Dénes Dudits
Sándor Pongor
János Györgyey
机构
[1] Hungarian Academy of Sciences,Biological Research Center, Institute of Plant Biology
[2] Semmelweis University,Institute of Physiology
[3] ICGEB,undefined
来源
Molecular Genetics and Genomics | 2011年 / 285卷
关键词
Abiotic stress; Dyad; Promoter; Transcription factor binding site;
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摘要
Plants undergo an extensive change in gene regulation during abiotic stress. It is of great agricultural importance to know which genes are affected during stress response. The genome sequence of a number of plant species has been determined, among them Arabidopsis and Oryza sativa, whose genome has been annotated most completely as of yet, and are well-known organisms widely used as experimental systems. This paper applies a statistical algorithm for predicting new stress-induced motifs and genes by analyzing promoter sets co-regulated by abiotic stress in the previously mentioned two species. After identifying characteristic putative regulatory motif sequence pairs (dyads) in the promoters of 125 stress-regulated Arabidopsis genes and 87 O. sativa genes, these dyads were used to screen the entire Arabidopsis and O. sativa promoteromes to find related stress-induced genes whose promoters contained a large number of these dyads found by our algorithm. We were able to predict a number of putative dyads, characteristic of a large number of stress-regulated genes, some of them newly discovered by our algorithm and serve as putative transcription factor binding sites. Our new motif prediction algorithm comes complete with a stand-alone program. This algorithm may be used in motif discovery in the future in other species. The more than 1,200 Arabidopsis and 1,700 Orzya sativa genes found by our algorithm are good candidates for further experimental studies in abiotic stress.
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  • [1] Abe H(1997)Role of arabidopsis MYC and MYB homologs in drought- and abscisic acid-regulated gene expression Plant Cell 10 1859-1868
  • [2] Yamaguchi-Shinozaki K(2003)Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling Plant Cell 15 63-78
  • [3] Urao T(2005)Genetic and molecular analyses of natural variation indicate CBF2 as a candidate gene for underlying a freezing tolerance quantitative trait locus in Arabidopsis Plant Physiol 139 1304-1312
  • [4] Iwasaki T(2003)A network of rice genes associated with stress response and seed development Proc Natl Acad Sci USA 100 4945-4950
  • [5] Hosokawa D(2006)Usage of enumeration method based algorithms for finding promoter motifs in plant genomes Acta Biol Szeged 50 145-1709
  • [6] Shinozaki K(2005)European plant science a field of opportunities J Exp Bot 56 1699-271
  • [7] Abe H(2007)Genome-wide analysis of ABA-responsive elements ABRE and CE3 reveals divergent patterns in Arabidopsis and rice BMC Genomics 8 260-140
  • [8] Urao T(1990)A plant leucine zipper protein that recognizes an abscisic acid response element Science 250 267-300
  • [9] Ito T(2002)Experimentally determined sequence requirement of ACGT-containing abscisic acid response element Plant Cell Physiol 43 136-D74
  • [10] Seki M(1999)Plant cis-acting regulatory DNA elements (PLACE) database Nucleic Acids Res 27 297-327