Borgmann k, Sinaha P. Changes in the two dimensional protein pattern and in gene expression during the sink to source transition of potato tubers. Plant Science, 1994, 99: 97-108.
[2]
Van den Berg J H, Ewing E E, Plaisted R L, et al. QTL analysis of potato tuber dormancy. Theoretical and Applied Genetics, 1996, 93: 317-324.
Hance B A, Bevington J M. Changes in protein synthesis during stratification and dormancy release in embryos of sugar maple. Physiologia Plantarum, 1992, 86: 365-371.
Alam S M, Murr D P. The effect of ethylene and inhibitors of protein and nucleic acid syntheses on dormancy break and subsequent sprout growth. Potato Research, 1994, 37: 25-33.
Bachem C W, Van der Hoeven R S, Lucker J. Functional genomic analysis of potato tuber life cycle. Potato Research, 2000, 43: 297-312.
[11]
Suttle J C, Hultstrand J F. Role of endogenous abscisic acid in potato microtuber dormancy. Plant Physiology, 1994, 105: 891-896.
[12]
Suttle J C. Physiological regulation of potato tuber dormancy. American Journal of Potato Research, 2004, 81: 253-262.
[13]
Patrick R, Clare W, Hanneke M F. Low temperature sensing in tulip (Tulipa gesneriana) is mediated through an increased response to auxin. Journal of Experimental Botany, 2000, 51, 344: 587-594.
[14]
Choi S T, Jung W Y, Ahn H G. Effects of duration of cold treatment and planting depth on growth and flowering of Lilium spp.. Journal of American Society For Horticultural Science, 1998, 39(6): 765-770.
[15]
Nambara E, Marion P A. Abscisic acid biosynthesis and catabolism. Annual Review of Plant Biology, 2005, 56: 165-185.
[16]
Thompson J, Jackson C, Symonds C. Ectopic expression of a tomato 9-cis-epoxycarotenoid dioxygenase gene causes over-production of abscisic acid. The Plant Journal, 2000, 23: 363-374.
[17]
Lefebvre V, North H, Frey A. Functional analysis of Arabidopsis NCED6 and NCED9 genes indicates that ABA synthesized in the endosperm is involved in the induction of seed dormancy. Plant Journal, 2006, 45: 309-319.
[18]
Steven F, Isabel D S, Heather C. Dormancy cycling in Arabidopsis seeds is controlled by seasonally distinct hormone signaling pathways. Proceedings of the National Academy of Sciences, 2011, 108: 20236-20241.
[19]
Luis D B, Donna K, Linda H. Effects of postharvest storage and dormancy status on ABA content,metabolism, and expression of genes involved in ABA biosynthesis and metabolism in potato tuber tissues. Plant Molecular Biology, 2006, 61: 687-697.
[20]
Reed L E. Genetics of Aux/IAA and ARF action in plant growth and development. Plant Molecular Biology, 2002, 49: 387-400.
[21]
Carrera E, Bou J, Garcìa M J L, et al. Changes in GA20-oxidase gene expression strongly affect stem length, tuber induction and tuber yield of potato plants. Plant Journal, 2000, 22: 247-256.
[22]
Morris W L, Ducreux L J M, Hedden P. Overexpression of a bacterial 1-deoxy-D-xylulose 5-phosphate synthase gene in potato tubers perturbs the isoprenoid metabolic network: implications for the control of the tuber life cycle. Journal of Experimental Botany, 2006, 57: 3007-3018.
[23]
Pak C, Vanderplas L H W, Deboer A D. Importance of dormancy and sink strength in sprouting of onions (Allium cepa) during storage. Physiologia Plantarum, 1995, 94: 277-283.
[24]
Soni R, Carmichael J P, Shah Z H. A family of cyclin D homologs from plants differentially controlled by growth regulators and containing the conserved retinoblastoma protein interaction motif. Plant Cell, 1995, 7: 85-103.
[25]
Berckmans B, De Veylder L. Transcriptional control of the cell cycle. Current Opinion of Plant Biology, 2009, 12: 599-605.
[26]
Freeman D, Riou-khamlichi C, Oakenfull E A. Isolation, characterization and expression of cyclin and cyclin-dependent kinase genes in Jerusalem artichoke. Journal of Experimental Botany, 2003, 54: 303-308.
[27]
Riou K C, Hun tley R, Jacqmard A. Cytokinin activation of Arabidopsis cell division through a D-type cyclin. Science, 1999, 283: 1541-1544.
[28]
Campbell M A, Suttle J C, Sell T W. Changes in cell cycle status and expression of p34(cdc2) kinase during potato tuber meristem dormancy. Physiology Plant, 1996, 98: 743-752.
[29]
Senning M, Sonnewald U, Sonnewald S. Deoxyuridine triphosphatase expression defines the transition from dormant to sprouting potato tuber buds. Molecular Breed, 2010, 27: 525-531.
[30]
Carter C E, Partis M D, Thomas B. The expression of histone 2A in onion during the onset of dormancy, storage and emergence from dormancy. New Phytologist, 1999, 143: 461-470.
[31]
Gemma A C, Katherine C, John P. Physiological, biochemical and transcriptional analysis of onion bulbs during storage. Annals of Botany, 2012, 109: 819-831.
[32]
Rosin F M, Hart J K, Horner H T. Overexpression of a KNOTTED-like homeobox gene of potato alters vegetative development by decreasing gibberellin accumulation. Plant Physiology, 2003, 132: 106-117.
[33]
Yamaguchi-Shinozaki K, Shinozaki K. Transcriptional regulatory networks in cellular responses and tolerance to dehydration and cold stresses. Annual Review of Plant Biology, 2006, 57: 781-803.
[34]
Fujii H, Verslues P E, Zhu J K. Identification of two protein kinases required for abscisic acid regulation of seed germination, root growth,and gene expression in Arabidopsis. The Plant Cell, 2007, 19: 485-494.
[35]
Bewley J D, Black M. Physiology and biochemistry of seeds in relation to germination: viability, dormancy and envionmental control. Berlin: Springer Verlag, 1982: 258-374.
[36]
Sato A, Okubo H, Saitou K. Increase in the expression of an alpha-amylase gene and sugar accumulation induced during cold period reflects shoot elongation in hyacinth bulbs. Journal of American Society For Horticultural Science, 2006, 131: 185-191.
[37]
Shin K S, Chakrabarty D, Paek K Y. Sprouting rate, change of carbohydrate contents and related enzymes during cold treatment of lily bulblets regenerated in vitro. Scientia Horticulturae, 2002, 96: 195-204.
[38]
Cochrane M P, Duffers C M. Amylolytic activity in stored potato tubers. 2.The effect of low temperature storage on the activities of α- and β-amylase and α-glucosidase in potato tubers. Potato Research, 1991, 34: 333-341.
[39]
Duwenig E, Steup M, Willmitzer L. Antisense inhibition of cytosolic phosphorylase in potato plants effects tuber sprouting and flower formation with only llittle impact on carbohydrate metabolism. Plant Journal, 1991, 12: 323-333.
[40]
Cristina M M, Ritter E, Ralf S P. Cold sweetening in diploid potato: mapping quantitative trait loci and candidate genes. Genetics, 2002, 162: 1423-1434.
Chen X F. Gebhardt S C. A potato molecular function map for carbohydrate metabolismand transport. Theoretical and Applied Genetics, 2001, 102: 284-295.
[43]
Hill L, Schroder R R. The onset of sucrose accumulation in cold stored potato tubers is caused by an increased rate of sucrose synthesis and coincides with low levels of hexose phosphates, an activation of sucrose phosphate synthase and the appearance of a new form of amylase. Plant Cell Environment, 1996, 19: 1223-1237.
[44]
Yamauchi Y, Ogawa M, Yamaguchi S. Activation of gibberellin biosynthesis and response pathways by low temperature during imbibition of Arabidopsis thaliana seeds. The Plant Cell, 2004, 16: 367-378.
[45]
Farré E M, Geigenberger P, Willmitzer L, et al. A possible role for pyrophosphate in the coordination of cytosolic and plastidial carbon metabolism within the potato tuber. Plant Physiology, 2000, 123: 681-688.
[46]
Ap Rees T, Morrell S. Carbohydrate metabolism in developing potatoes. American Journal of Potato Research, 1990, 67: 835-847.
[47]
Bournay A S, Hedley P E, Maddison A. Exon skipping induced by cold stress in a potato invertase gene transcript. Nucleic Acids Research, 1996, 24: 2347-2351.
[48]
PG lez-Garcìa M, Rodrìguez D, Lorenzo O. Negative regulation of abscisic acid signaling by the fagus sylvatica FsPP2C1 plays a role in seed dormancy regulation and promotion of seed germination. Plant Physiology, 2003, 133: 135-144.
[49]
Brady S M, McCourt P. Hormone cross-talk in seed dormancy. Journal of Plant Growth Regulation, 2003, 22: 25-31.
[50]
Mizoguchi T. Characterizatiion of two cDNAs that encode MAP kinase homologues in Arabidopsis and analysis of the possible of auxin in activating such kinase activities in cultured cells. Plant, 1994, 5: 111-122.
[51]
Zentella R, Yamauchi D, Ho T H. Molecular dissection of the gibberellin, abscisic acid signaling pathways by transiently expressed RNA interference in barley aleurone cells. Plant Cell, 2002, 14: 2289-2301.
Kucera B, Colin M A, Leubner-Metager G. Plant hormone interactions during seed dormancy release and germination. Seed Science Research, 2005, 15: 281-307.
[54]
Raventós D, Skriver K, Schlein M. HRT, a novel zinc finger transcriptional repressor from barley. Journal of Biological Chemistry, 1998, 273: 23313-23320.
[55]
Oussama A, Angela R M, Almudena T. Developmental and stress regulation of gene expression for a cis-epoxy carotenoid dioxygenase, CstNCED, isolated from Crocus sativus stigmas. Journal of Experimental Botany, 2012, 63(2): 681-694.
[56]
Oracz K, El-Maarouf-Bouteau H, Kranner I. The mechanisms involved in seed dormancy alleviation by hydrogen cyanide unravel the role of reactive oxygen species as key factors of cellular signaling during germination. Plant Physiology, 2009, 150: 494-505.
[57]
Rojas-Beltran J A, Dejaeghere F, Abd Alla Kotb M. Expression and activity of antioxidant enzymes during potato tuber dormancy. Potato Research, 2000, 43: 383-393.
[58]
Fedoroff N V. Cross-talk in abscisic acid signaling. Science, STKE, 2002, 140(9): 10.
[59]
Rook F, Corke F, Card R. Impaired sucrose induction mutants reveal the modulation of sugar induced starch biosynthetic gene expression by abscisic acid signalling. Plant Journal, 2001, 26: 421-433.
[60]
Cakir B, Agasse A, Gaillard C. A grape ASR protein involved in sugar and abscisic acid signaling. Plant Cell, 2003, 15: 2165-2180.
[61]
Avonce N, Leyman B, Mascorro-Gallardo J O. The Arabidopsis trehalose-6-P synthase AtTPS1 gene is a regulator of glucose, abscisic acid, and stress signaling. Plant Physiology, 2004, 136: 3649-3659.
[62]
Gomez L D, Gilday A, Feil Rl. AtTPS1-mediated trehalose 6-phosphate synthesis is essential for embryogenic and vegetative growth and responsiveness to ABA in germinating seeds and stomatal guard cells. Plant Journal, 2010, 64: 1-13.
[63]
Ramon M, Rolland F, Thevelein J. ABI4 mediates the effects of exogenous trehalose on Arabidopsis growth and starch breakdown. Plant Molecular Biology, 2007, 63: 195-206.
[64]
Debast S, Adriano N N, Hajirezaei M R. Altering Trehalose-6-phosphate content in transgenic potato tubers affects tuber growth and alters responsiveness to hormones during sprouting. American Society of Plant Biologists, 2011, 156: 1754-1771.
[65]
Gubler F, Peter M C, Rosemary G. Gibberellin signaling in barley aleurone cells control of SLN1 and GAMYB expression. Plant Physiology, 2002, 129: 191-200.
[66]
Itoh H, Tanaka M U, Sato Y. Gibberellin signaling is regulated by the appearance and disappearance of SLENDER RICE1 in the nuclei. Plant Cell, 2002, 14:57-70.
[67]
Gubler F, Raventos D, Keys M. Target genes and regulatory domains of the GAMYB transcriptional activator in cereal aleurone. Plant Journal, 1999, 17: l-9.
[68]
Bachem C W, Horvath B, Trindade L. A potato tuber-expressed mRNA with homology to steroid dehydrogenases affects gibberellin levels and plant development. The Plant Journal, 2001, 25: 595-604.
[69]
Bajji M, Hamdi M M, Gastiny F. Catalase inhibition accelerates dormancy release and sprouting in potato tubers. Biotechnologie Agronomie Societe et Environnement, 2007, 11(2): 121-131.
Femie A R, Willmitzer L, Trethewey R N. Sucrose to starch: a transition in molecular plant physiology. Trends in Plant Science, 2002, 7: 35-41.
[72]
Hajirezaei M, Sonnewald U. Inhibition of potato tuber sprouting: low levels of cytosolic pyrophosphate lead to nonsprouting tubers harvested from transgenic potato plants. Potato Research, 1999, 42: 353-372.
[73]
Farré E M, Bachmann A, Willmitzer L. Acceleration of potato sprouting by the expression of a bacterial pyrophosphatase. Nature Biotechnology, 2001, 19: 268-272.
Mohammad RH F, Martin P, Yasuhiro T. Decreased sucrose content triggers starch breakdown and respiration in stored potato tubers (Solanum tuberosum). Journal of Experimental Botany, 2003, 54: 477-488.
[76]
Anna L, Nicolas S, Lothar W. Tuber-specific cytosolic expression of a bacterial phosphoglucomutase in potato dramatically alters carbon partitioning. Plant Cell Physiology, 2005, 46(4): 588-597.
Ulmasov T, Hagen G, Guilfoyle T J. Dimerization and DNA binding of auxin response factors. The Plant Journal, 1999, 19: 309-319.
[79]
Sorce C, Lorenzi R, Ceccarelli N. Changes in free and conjugated IAA during dormancy and sprouting of potato tubers. Australian Journal of Plant Physiology, 2000, l27: 371-377.
[80]
Sorce C, Lombardi L, Giorgetti L. Indoleacetic acid concentration and metabolism changes during bud development in tubers of two potato(Solanum tuberosum)cultivars. Journal of Plant Physiology, 2009, 1166: 1023-1033.
[81]
Faivre R O, Cardle L, Marshall D. Changes in gene expression during meristem activation processes in Solanum tuberosum with a focus on the regulation of an auxin response factor gene. Journal of Experimental Botany, 2004, 55: 613-622.
[82]
Suttle J C. Involvement of endogenous gibberellins in potato tuber dormancy and early sprout growth: a critical assessment. Journal of Plant Physiology, 2004, 1161: 157-164.
[83]
Hartmann A, Senning M, Hedden P. Reactivation of meristem activity and sprout growth in potato tubers require both cytokinin and gibberellin. Plant Physiology, 2011, 155: 776-796.
[84]
Coles J P, Phillips A L, Croker S J. Modification of gibberellin production and plant development in Arabidopsis by sense and antisense expression of gibberellin 20-oxidase genes. Plant Journal, 1999, 17: 547-556.