| Literature DB >> 20144228 |
Sergio Jiménez1, Zhigang Li, Gregory L Reighard, Douglas G Bielenberg.
Abstract
BACKGROUND: In many tree species the perception of short days (SD) can trigger growth cessation, dormancy entrance, and the establishment of a chilling requirement for bud break. The molecular mechanisms connecting photoperiod perception, growth cessation and dormancy entrance in perennials are not clearly understood. The peach [Prunus persica (L.) Batsch] evergrowing (evg) mutant fails to cease growth and therefore cannot enter dormancy under SD. We used the evg mutant to filter gene expression associated with growth cessation after exposure to SD. Wild-type and evg plants were grown under controlled conditions of long days (16 h/8 h) followed by transfer to SD (8 h/16 h) for eight weeks. Apical tissues were sampled at zero, one, two, four, and eight weeks of SD and suppression subtractive hybridization was performed between genotypes at the same time points.Entities:
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Year: 2010 PMID: 20144228 PMCID: PMC2829590 DOI: 10.1186/1471-2229-10-25
Source DB: PubMed Journal: BMC Plant Biol ISSN: 1471-2229 Impact factor: 4.215
Gene bank accession numbers and primer sequences used in real-time PCR of differentially expressed ESTs
| Gene name | EST bank accession # | Forward (F) and reverse (R) primer sequence | |
|---|---|---|---|
| Desiccation-related protein, putative | GE653173 | F | 5'-AGGGCTCGACGATATCAGTCC-3' |
| R | 5'-TGCATACGGGTCAAATGCAGG-3' | ||
| Amidase family protein | GE653170 | F | 5'-CGGTTCGATCCTTGGCAGAC-3' |
| R | 5'-TCGACACGGCTGCAAATGGAG-3' | ||
| Deoxynucleoside kinase family protein | GE653171 | F | 5'-AGGAGGACAGCTCGAACTCAG-3' |
| R | 5'-GCATACCTCTGCGGCTCAGC-3' | ||
| Auxin-binding protein ABP20 precursor | GE653207 | F | 5'-AGCCTCACCTCCATTGACTTGG-3' |
| R | 5'-TGTTGCTCAGTTTCCTGGTGTGA-3' | ||
| Amino acid transporter family protein | GE653321 | F | 5'-GGCTTCACCCATGACATCACC-3' |
| R | 5'-CTGGAATTATGAGCCTGCCTGC-3' | ||
| Glycoside hydrolase, family 18 | GE653328 | F | 5'-CAGTCCACCACTCCCATCACTG-3' |
| R | 5'-GCTTCCATTGCTCCCTTCGATG-3' | ||
| ATP sulfurylase 1 | GE653245 | F | 5'-ACAAGACGCAATGCTGATGCTG-3' |
| R | 5'-ACCACAGTCGTCTCAGGATCAAG-3' | ||
| KEG (KEEP ON GOING) protein | GE653332 | F | 5'-ACCCGTTCTATTTCCGATGCCT-3' |
| R | 5'-TCAGTTTCAACTCCAACCCACCA-3' | ||
| Phosphatidylinositol 3- and 4-kinase family protein | GE653311 | F | 5'-GGGTTGGGGAGACAGGTTTCA-3' |
| R | 5'-AGTCCCATGATCACTGGCATCA-3' | ||
| PRH75 (DEAD-box helicase) | GE653257 | F | 5'-TGTAGCCAGCAGCCTTAGCAAG-3' |
| R | 5'-GCCAGTTGATGTTGCCAAAGCAG-3' | ||
| Zinc ion binding/LIM | GE653319 | F | 5'-AGAAGAGGATGAGGAGGAAGACG-3' |
| R | 5'-GTTGTTGACAGGGTCGATTCTGG-3' | ||
| ATP-binding cassette transporter MRP6 | GE653330 | F | 5'-CTGGGATTGTGGGTAGAACTGG-3' |
| R | 5'-CCTTCAAACATGGTTGGGTCCTG-3' | ||
| Unknown1 | GE653303 | F | 5'-CTCTCTGTGCTTCTCTCTCCTCA-3' |
| R | 5'-TCCAGATTAACTCAGGGAGAAACCAG-3' | ||
| Late embryogenesis abundant (LEA) | GE653244 | F | 5'-TTCAAATTCTCCGGGGGTCG-3' |
| R | 5'-TTCCAGGCCATCTTCCACGG-3' | ||
| Metallothionein-like protein | GE653329 | F | 5'-TCCACCAATCAACAAACACCTCAC-3' |
| R | 5'-TAGCAAGTAATCTATGCGTGTGTGG-3' | ||
| Pathogenesis-related protein 1a (PR-1a) | GE653248 | F | 5'-CGACTGCAATCTTGTCCACTCTGG-3' |
| R | 5'-ACCTCCACTGTTGCACCTCAC-3' | ||
| Dormancy associated MADS-box gene 1 (PpDAM1) | GE653327 | F | 5'-CAGAGGGCAAGCAACTACCAC-3' |
| R | 5'-CCAGAGAAATTATGGAAGCCCCA-3' | ||
| Dormancy associated MADS-box gene 6 (PpDAM6) | GE653238 | F | 5'-CCAACAACCAGTTAAGGCAGAAGA-3' |
| R | 5'-GGAAGCCCCAGTTTGAGAGA-3' | ||
| Epicotyl-specific tissue protein | GE653203 | F | 5'-CACCAAAAGAGAAAGCCGACTGC-3' |
| R | 5'-TCAACCTCAACGTCAACCTCAAC-3' | ||
| RD22 (dehydration-responsive) precursor | GE653312 | F | 5'-GAACCCACACAAGATTATCAGCAGG-3' |
| R | 5'-TTCTACTGCCACAGCCAGCA-3' | ||
| Unknown2 | GE653334 | F | 5'-ATGGCAAACCACCAAGCACTCA-3' |
| R | 5'-GTAGAGGAGCCTTGATTGGAGGAG-3' | ||
| Unknown3 | GE653309 | F | 5'-AAGTTGTCCATCCCAACACATTCG-3' |
| R | 5'-GCGAGGACATCTCTGGCAATAAGA-3' | ||
| Unknown4 | GE653307 | F | 5'-TCCTCAACGAACAGACGGAACTC-3' |
| R | 5'-TGGTGGTCTTGGAAATGCTGGT-3' |
Figure 1Stem growth and potential re-growth of WT and . Stem growth (increase in length) was measured one week prior and eight weeks after transfer of WT and evg plants from LD (16 h light) to SD (8 h light) photoperiod conditions and potential re-growth when WT plants are transferred back to LD conditions. The day of treatment change to SD conditions is named week 0. Data are mean ± SE of 29 and 15 replicates for WT and evg, respectively. Growth elongation significance between paired dates is indicated: not significant, not showed; *, P < 0.05, ***, P < 0.001.
Figure 2Putative differentially expressed genes between WT and . Sequences were analyzed using BLASTx tool and using tBLASTx or BLASTn when no similarity was found. Statistical testing of expression level between WT and evg was performed with the Mann-Whitney-Wilcoxon test (P < 0.05). Gene expression pattern in WT tissue was calculated as the expression values in SD relative to the values at LD conditions. The color scale is in log10 ratio where a green color corresponds with up-regulated gene in SD, the magenta color with down-regulated color in SD and black color with no change in the expression level.
Figure 3Expression profiles of early response genes in WT and . Putative amidase (A) and auxin-binding protein ABP20 precursor (B) gene expression is shown relative to the LD level (week 0 prior to the change in photoperiod) for each genotype. Values above columns represent the relative expression (fold) between WT and evg apical tissues at the week where it was maximum.
Figure 4Expression profiles of steady response genes in WT and . Putative GH18 (A), putative ATP sulfurylase 1 (B), putative KEG (C), putative LIM (D), putativeMRP6 (E) and unknown1 (F) gene expression is shown relative to the LD level (week 0 prior to the change in photoperiod) for each genotype. Values above columns represent the relative expression (fold) between WT and evg apical tissues at the week where it was maximum.
Figure 5Expression profiles of late response genes in WT and . Putative LEA protein (A), metallothionein (B), PR-1a (C), PpDAM1 (D), PpDAM6 (E), putative epicotyl-specific tissue protein (F), unknown2 (G), unknown3 (H) and unknown4 (I) gene expression is shown relative to the LD level (week 0 prior to the change in photoperiod) for each genotype. Values above columns represent the relative expression (fold) between WT and evg apical tissues at the week where it was maximum.