PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2008 | 30 | 6 |

Tytuł artykułu

Genes associated with the release of dormant buds in tree peonies (Paeonia suffruticosa)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
A subtractive cDNA library was developed to study genes associated with the release of dormant buds in tree peony. To identify genes that are highly expressed in buds released from dormancy, 588 clones were examined by differential screening and then 185 clones were selected to be sequenced. A total of 31 unique genes were obtained, of which only 25 sequences had matches in the NCBI database or Arabidopsis thaliana protein database while 6 sequences with no matches. Many of the different genes were identified as having unknown or hypothetical functions while others were speculated to have different molecular functions. The expression profiles of the selected ‘‘candidate’’ genes which may be associated with dormancy release according to their putative function and previous reports were assessed by northern blot and semiquantitative RT-PCR. The results indicated that the transcriptional expressions of the isolated genes are related to growth regulation and stress response. Our results provide interesting information for further understanding the molecular mechanism of bud dormancy release in tree peony.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

30

Numer

6

Opis fizyczny

p.797-806,fig.,ref.

Twórcy

autor
  • College Landscape and Architecture, Beijing Forestry University, 100083 Beijing, People's Republic of China
  • College of Life Sciences, Qingdao Agricultural University, Qingdao, 266109 Shandong, People's Republic of China
autor
  • State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Taian, 271018 Shandong, People's Republic of China
autor
  • College Landscape and Architecture, Beijing Forestry University, 100083 Beijing, People's Republic of China
autor
  • College of Life Sciences, Qingdao Agricultural University, Qingdao, 266109 Shandong, People's Republic of China
autor
  • State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Taian, 271018 Shandong, People's Republic of China
autor
  • College of Life Sciences, Qingdao Agricultural University, Qingdao, 266109 Shandong, People's Republic of China

Bibliografia

  • Anderson JV, Gesch RW, Jia Y, Chao WS, Horvath DP (2005) Seasonal shifts in dormancy status, carbohydrate metabolism, and related gene expression in crown buds of leafy spurge. Plant Cell Environ 28:1567–1578
  • Arora R, Rowland LJ (1997) Chilling-response dehydrins in blueberry: are they associated with cold hardiness or dormancy transition? Physiol Plant 101:8–16
  • Bonhomme M, Rageau R, Gendraud M (2000) Influence of temperature on the dynamics of ATP, ADP and non-adenylic triphosphate nucleotides in vegetative and floral peach buds during dormancy. Tree Physiol 20:615–621
  • Brunel N, Leduc N, Poupard P, Simoneau P, Mauqet JC, Viémont JD (2002) KNAP2, a class I KN1-like gene is a negative marker of bud growth potential in apple trees (Malus domestica [L.] Borkh). J Exp Bot 53:2143–2149
  • Chang S, Purgear J, Cairney J (1993) A simple and efficient method for isolating RNA from pine trees. Plant Mol Biol Rep 11:117–121
  • Chao WS, Serpe MD, Anderson JV, Gesch RW, Horvath DP (2006) Sugars, hormones, and environment affect the dormancy status in underground adventitious buds of leafy spurge (Euphorbia esula). Weed Sci 54:59–68
  • Clark SE, Jacobsen SE, Levin JZ, Meyerowitz EM (1996) The Clavata and Shoot Meristemless loci competitively regulate meristem activity in Arabidopsis. Development 122: 1567–1575
  • Diatchenko L, Lau YF, Campbell AP, Chenchik A, Moqadam F, Huang B, Lukyanov S, Lukyanov K, Gurskaya N, Sverdlov ED, Siebert PD (1996) Suppression subtractive hybridization: a method for generating differentially regulated or tissue-specific cDNA probes and libraries. PNAS 93:6025–6030
  • Falvre-Rampant O, Cardle L, Marshall D, Vlola R, Taylor MA (2004) Changes in gene expression during meristem activation processes in Solanum tuberosum with a focus on the regulation of an auxin response factor gene. J Exp Bot 55:603–612
  • Faust MA, Erez LJ, Rowland S, Wang Y, Norman HA (1997) Bud dormancy in perennial fruit trees: physiological basis for dormancy induction, maintenance and release. HortScience 32:623–629
  • Faye MR, Jennifer KH, Harry TH, Peter JD, David JH (2003) Overexpression of a KNOTTED-like homeobox gene of potato alters vegetative development by decreasing gibberellin accumulation. Plant Physiol 132:106–117
  • Foyer C, Lopez-Delgado H, Dat J, Scott I (1997) Hydrogen peroxideand glutathione-associated mechanism of acclimatoury stress tolerance and signaling. Physiol Plant 100:241–254
  • Frewen BE, Chen TH, Howe GT, Davis J, Rohde A, Boerijan W, Bradshaw HDJ (2000) Quantitative trait loci and candidate gene mapping of bud set and bud flush in Populus. Genetics 154:837–845
  • Freyre R, Warnke S, Sosinski B, Souches DS (1994) Quantitative trait locus analysis of tuber dormancy in diploid potato (Solanum spp.). Theor Appl Genet 89:474–480
  • Hecht V, Vielle-Calzada JP, Hartog MV, Schmidt ED, Boutilier K, Grossniklaus U, de Vries SC (2001) The Arabidopsis somatice smbryogenesis receptor kinase1 gene is expressed in developing ovules and embryos and enhances embryogenic competence in culture. Plant Physiol 127:803–816
  • Henzell RF, Briscoe MR, Gravett I (1991) Improving kiwifruit vine productivity with plant growth regulators. Acta Hortic 297:345–350
  • Jia Y, Anderson JV, Horvath DP, Gu YQ, Lym RG, Chao WS (2006) Subtractive cDNA libraries identify differentially expressed genes in dormant and growing buds of leafy spurge (Euphorbia esula). Plant Mol Biol 61:329–344
  • Kim KY, Park SW, Chuang YS, Chung CH, Kim JI, Lee JH (2004) Molecular cloning of low-temperature-inducible ribosomal protein from soybean. J Exp Bot 55:1153–1155
  • Kim HB, Lee H, Oh CJ, Lee NH, An CS (2007) Expression of EuNOD-ARP1 encoding auxin-repressed protein homolog is up regulated by auxin and localized to the fixation zone in root nodules of Elaeagnus umbellate. Mol Cells 23:115–121
  • Krawiarz K, Szczotka Z (2005) Adenine nucleotides and energy charge during dormancy breaking in embryo axes of Acer platanoides and Fagus sylvatica seeds. Acta Physiol Planta 27(4):455–461
  • Kwaaitaal MACJ, de Vries SC, Russinova E (2005) Arabidopsis thaliana somatic embryogenesis receptor kinase1 protein is present in sporophytic and gametophytic cells and undergoes endocytosis. Protoplasma 226:55–65
  • Laloi M (1999) Plant mitochondrial carriers: an overview. Cell Mol Life Sci 56:918–944
  • Lang GA, Martin GC (1987) Endo-, para-, and eco-dormancy: physiological terminology and classification for dormancy research. HortScience 22:371–377
  • Li CY, Anneli VA, Tuula P, Olavi J, Pekka H, Palva ET (2003) Ecotype-dependent control of growth Dormancy and freezing tolerance under seasonal changes in Betula pendula Roth. Trees Struct Funct 17:127–132
  • Murphy JB, Noland TL (1982) Temperature effects on oxidative metabolism of dormant sugar pine seeds. Plant Physiol 70:1410–1412
  • Owens JN, Molder M (1973) A study of DNA and mitotic activity in the vegetative apex of Douglas fir during the annual growth cycle. Can J Bot 51:1395–1409
  • Perl M (1982) ATP accumulation in peanut seeds during seedripening and during the dormancy-breaking process. J Exp Bot 33:449–455
  • Reddy ASN (1990) Molecular cloning and sequencing of a cDNA for an auxin-repressed mRNA: correlation between fruit growth and repression of the auxin-regulated gene. Plant Mol Biol 14:127–136
  • Rorat T (2006) Plant dehydrins-tissue location, structure and function. Cell Mol Biol Lett 11:536–556
  • Rowland LJ, Arora R (1997) Proteins related to endodormancy (rest) in woody perennials. Plant Sci 126:119–144
  • Sangeeta A, Anil G (2005) Isolation and transcription profiling of low-O2 stress-associated cDNA clones from the flooding-stresstolerant FR13A rice genotype. Ann Bot 96:831–844
  • Sean DGM, Joanna JP, Kim MP, Richard DN (2003) The carboxylesterase gene family from Arabidopsis thaliana. J Mol Evol 57:487–500
  • Sozzi GO, Martínez GP (2004) Energetic metabolism in vegetative and flower peach (Prunus persica) primordial under different thermal regimes. Ciencia e Investigación Agraria 31:101–109
  • Stuhlfelder C, Lottspeich F, Mueller MJ (2002) Purification and partial amino acid sequences of an esterase from tomato. Phytochemical 60:233–240
  • Sylvie FM, Mélanie B, Olivier L, Gil S, Michael H, Christian M (2005) Physiological characterization of Arabidopsis mutants affected in the expression of the putative regulatory protein PII. Planta 223:28–39
  • Toni PM, Kirsten S, Effie A, Scott T, Ada C, Robert H (2003) Genes associated with the end of dormancy in grapes. Funct Integr Genomics 3:144–152
  • Toorop PE, Barroco RM, Engler G, Groot SP, Hilhorst HW (2005) Differentially expressed genes associated with dormancy or germination of Arabidopsis thaliana seeds. Planta 221:637–647
  • Wang LY (1986) Observations on the morphology of flower bud differentiation of cultivars of tree peony and the analysis on the formation of flower forms. Acta Hortic Sin 13:203–208
  • Welling A, Rinne P, Annell VA, Sar KS, Heino P, Palva EP (2004) Photoperiod and temperature differentially regulate the expression of two dehydrin genes during overwintering of birch. J Exp Bot 55:507–517
  • Zhang Y, Mian MA, Chekhovskiy K, So S, Kupfer D, Lai H, Roe BA (2005) Differential gene expression in Festuca under heat stress conditions. J Exp Bot 56:897–907
  • Zheng CC, Porat R, Lu P, O’Neill SD (1998) PNZIP is a novel mesophyll-specific cDNA that is regulated by phytochrome and a circadian rhythm and encodes a protein with a leucine zipper motif. Plant Physiol 116:27–35

Uwagi

Rekord w opracowaniu

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-f90d04a4-fcb3-4431-a0cc-628fdc3aa1d9
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.