Signal transduction mechanisms involved in potato developmental processes

Solanum tuberosum L. potato plants undergo several development stages during their life cycle involving stolon formation, tuberization, tuber filling, dormancy and tuber sprouting. Potato tubers are underground sinks originated from stolons in a process that requires the cessation of apex growth, th...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autor principal: Ulloa, R.M
Otros Autores: Capiati, D.A, Giammaria, V.
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Nova Science Publishers, Inc. 2012
Acceso en línea:Registro en Scopus
Handle
Registro en la Biblioteca Digital
Aporte de:Registro referencial: Solicitar el recurso aquí
LEADER 26136caa a22017057a 4500
001 PAPER-23304
003 AR-BaUEN
005 20230518205458.0
008 190411s2012 xx ||||fo|||| 00| 0 eng|d
024 7 |2 scopus  |a 2-s2.0-84892279348 
040 |a Scopus  |b spa  |c AR-BaUEN  |d AR-BaUEN 
100 1 |a Ulloa, R.M. 
245 1 0 |a Signal transduction mechanisms involved in potato developmental processes 
260 |b Nova Science Publishers, Inc.  |c 2012 
270 1 0 |m Ulloa, R.M.; Instituto de Investigaciones en Ingeniería Genética y Biología Molecular, INGEBI, CONICET, Universidad de Buenos Aires, Vuelta de Obligado 2490, 1428 Buenos Aires, Argentina; email: rulloa@dna.uba.ar 
506 |2 openaire  |e Política editorial 
504 |a Cutter, E.G., Structure and development of the potato plant (1978) The potato crop, pp. 70-152. , Harris, PM editor (Eds.), New York: Halsted Press, John Wiley and Sons 
504 |a Prat, S., Frommer, W.B., Hofgen, R., Keil, M., Kossmann, J., Koster-topfer, M., Liu, X.J., Willmitzer, L., Gene expression during tuber development (1990) FEBS Letters, 268, pp. 334-338 
504 |a Visser, R.G.F., Vreugdenhil, D., Hendriks, T., Jacobsen, E.J., Gene expression and carbohydrate content during stolon to tuber transition (1994) Physiologia Plantarum, 90, pp. 285-292 
504 |a Sonnewald, U., Control of potato tuber sprouting (2001) Trends in Plant Science, 6, pp. 333-335 
504 |a Jackson, S.D., Multiple signaling pathways controls tuber induction in potato (1999) Plant Physiology, 119, pp. 1-8 
504 |a Sarkar, D., The signal transduction pathways controlling in planta tuberization in potato: an emerging synthesis (2008) Plant Cell Reports, 27, pp. 1-8 
504 |a Jackson, S.D., Plant responses to photoperiod (2009) New Phytologist, 181, pp. 517-531 
504 |a Batutis, E.J., Ewing, E., Red light effect on potato (Solanum tuberosum L.) tuberization (1982) Plant Physiology, 69, pp. 672-674 
504 |a Jackson, S., Heyer, A., Dietze, J., Prat, S., Phytochrome B mediates photoperiodic control of potato tuber formation (1996) Plant Journal, 9, pp. 159-166 
504 |a Yanovsky, M.J., Izaguirre, M., Wagmaister, J.A., Gatz, C., Jackson, S.D., Thomas, B., Casal, J.J., Phytochrome A resets the circadian in potato (2000) Plant Journal, 23, pp. 223-232 
504 |a Krauss, A., Interaction of nitrogen nutrition, phytohormones and tuberization (1985) Potato Physiology, pp. 209-231. , In: Li, PH editor, London: Academic Press 
504 |a Saluzzo, A., Echeverría, H., Andrade, F.H., Huarte, M., Nitrogen nutrition of potato cultivars differing in maturity (1999) Journal of Agronomy and Crop Science, 183, pp. 157-165 
504 |a Snyder, F., Ewing, E.E., Interactive effects of temperature, photoperiod and cultivar on tuberization (1989) Horticultural Science, 24, pp. 336-338 
504 |a Vreugdenhil, D., Sergeeva, L.I., Gibberellins and tuberization in potato (1999) Potato Research, 42, pp. 471-481 
504 |a Woolley, D.J., Wareing, P.F., Environmental effects on cytokinins and GA levels in potato (1972) New Phytologist, 71, pp. 1015-1025 
504 |a Menzel, C.M., Tuberization at high temperatures: gibberellin content (1983) Annals of Botany, 52, pp. 697-702 
504 |a Carrera, E., Bou, J., Garcia-martinez, J.L., Prat, S., Transgenic GA 20-oxidase potato plants (2000) Plant Journal, 22, pp. 247-256 
504 |a Rosin, F.M., Hart, J.K., Horner, H.T., Davies, P.J., Hannapel, D.J., Overexpression of a knotted-like homeobox gene of potato alters vegetative development by decreasing gibberellin accumulation (2003) Plant Physiology, 132, pp. 106-117 
504 |a Simko, I., Effect of paclobutrazol on in vitro formation of potato micro tubers and their sprouting after storage (1994) Biologia Plantarum, 36, pp. 15-20 
504 |a Xu, X., van Lammeren, A.A., Vermeer, E., Vreugdenhil, D., Gibberellin, abscisic acid, and sucrose in the regulation of potato tuber formation (1998) Plant Physiology, 117, pp. 575-584 
504 |a Ross, J.J., Reid, J.B., Swain, S.M., Hasan, O., Poole, A.T., Hedden, P., Willis, C.L., Genetic regulation of gibberellin deactivation in Pisum (1995) Plant Journal, 7, pp. 513-523 
504 |a Kloosterman, B., Navarro, C., Bijsterbosch, G., Lange, T., Prat, S., Visser, R.G., Bachem, C.W., StGA2ox1 is induced prior to stolon swelling and controls GA levels during potato tuber development (2007) Plant Journal, 52, pp. 362-373 
504 |a Martinez-garcia, J.F., Virgos-soler, A., Prat, S., Control of photoperiod-regulated tuberization in potato by the Arabidopsis flowering-time gene CONSTANS (2002) Proceedings of the National Academy of Sciences of the United States of America, 99, pp. 15211-15216 
504 |a Jackson, S.D., James, P.E., Carrera, E., Prat, S., Thomas, B., Regulation of transcript levels of a potato Gibberellin 20-oxidase gene by light and phytochrome B (2000) Plant Physiology, 124, pp. 423-430 
504 |a Van den Berg, J.H., Simko, I., Davies, P.J., Ewing, E.E., Halinska, A., Morphology and GA metabolism in wild-type and dwarf Solanum tuberosum ssp. andigena (1995) Journal of Plant Physiology, 146, pp. 467-473 
504 |a Amador, V., Monte, E., Garcia-martinez, J.L., Prat, S., PHOR1 function in GA signaling (2001) Cell, 106, pp. 343-354 
504 |a Fernie, A.R., Willmitzer, L., Molecular and biochemical triggers of potato tuber development (2001) Plant Physiology, 127, pp. 1459-1465 
504 |a Machackova, I., Konstantinova, T.N., Seergeva, L.I., Lozhnikova, V.N., Golyanovskaya, S.A., Dudko, N.D., Eder, J., Aksenova, N.P., Photoperiodic control and phytohormone balance in Solanum tuberosum (1998) Physiologia Plantarum, 102, pp. 272-278 
504 |a Quarrie, S.A., Droopy: a wilty mutant of potato deficient in abscisic acid (1982) Plant Cell and Environment, 5, pp. 23-26 
504 |a Koda, Y., Okazawa, Y., A potato tuber-inducing activity (1998) Plant and Cell Physiology, 29, pp. 969-974 
504 |a Helder, H., Miersch, O., Vreugdenhil, D., Sembdner, G., JA in leaflets of Solanum demissum plants (1993) Physiologia Plantarum, 88, pp. 647-653 
504 |a Koda, Y., Jasmonates in various morphogenetic events (1997) Physiologia Plantarum, 100, pp. 639-646 
504 |a Jackson, S., Willmitzer, L., JA does not induce tuberization in SD-potato species in non-inducing conditions (1994) Planta, 194, pp. 155-159 
504 |a Ulloa, R.M., Raíces, M., Macintosh, G.C., Maldonado, S., Téllez-Iñón, M.T., JA effects on potato plants (2002) Physiologia Plantarum, 115, pp. 417-427 
504 |a Martín, M., León, J., Dammann, C., Albar, J.P., Griffiths, G., Sánchez-serrano, J.J., Depletion of potato leaf ω3 fatty acid desaturase (1999) European Journal of Biochemistry, 262, pp. 283-290 
504 |a Kolomiets, M.V., Hannapel, D.J., Chen, H., Tymeson, M., Gladon, R.J., Lipoxygenase function in potato tuber development (2001) Plant Cell, 13, pp. 613-626 
504 |a Jang, J.-C., Sheen, J., Sugar sensing in higher plants (1994) Plant Cell, 6, pp. 1665-1679 
504 |a Jang, J.-C., Leon, P., Zhou, L., Sheen, J., Hexokinase as a sugar sensor in higher plants (1997) Plant Cell, 9, pp. 5-19 
504 |a Rolland, F., Moore, B., Sheen, J., Sugar Sensing and Signaling in Plants (2002) Plant Cell, 14, pp. 185-205 
504 |a Lê, C.L., Facteurs influençant la tubérisation in vitro de pommes de terre (Solanum tuberosum L. var. Agria) (1990) Revue Suisse Agriulture, 22, pp. 115-116 
504 |a Garner, N., Blake, J., Induction and Development of Potato microtubers (1989) Annals of Botany, 63, pp. 663-674 
504 |a Raíces, M., Macintosh, G.C., Ulloa, R.M., Gargantini, P.R., Vozza, N.F., Téllez-Iñón, M.T., Sucrose increases CDPK and phosphatase activities in potato plants (2003) Cellular and Molecular Biology, 49, pp. 956-964 
504 |a Oparka, K.J., Wright, K.M., Osmotic regulation of starch synthesis in potato tubers? (1988) Planta, 174, pp. 123-126 
504 |a Marmiroli, N., Macharay, G.C., Oparka, K.J., Tuberisation in potato involves a swich from apoplastic. to symplastic phloem unloading (2001) Plant Cell, 13, pp. 385-398 
504 |a Müller-Röber, B.T., Kossmann, J., Hannah, L.C., Willmitzer, L., Sonnewald, U., A potato ADP-glucose pyrophosphorylase responds to sucrose (1990) Molecular and General Genetics, 224, pp. 136-146 
504 |a Salanoubat, M., Belliard, G., Potato sucrose synthase mRNA depends on wounding, anaerobiosis and sucrose concentration (1989) Gene, 84, pp. 181-185 
504 |a Hendriks, T., Vreugdenhil, D., Stiekema, W.J., Patatin and proteinase inhibitor during potato tuber development (1991) Plant Molecular Biology, 17, pp. 385-394 
504 |a Mitsumori, C., Yamagishi, K., Fugino, K., Kikuta, Y., Kunitz and Bowmann-Birk proteinase inhibitors expressed during potato tuber development (1994) Plant Molecular Biology, 26, pp. 961-969 
504 |a Weeda, S.M., Mohan Kumar, G.N., Richard Knowles, N., Developmentally linked changes in proteases and protease inhibitors suggest a role for potato multicystatin in regulating protein content of potato tubers (2009) Planta., 230, pp. 73-84 
504 |a Appeldoorn, N.J., Sergeeva, L., Vreugdenhil, D., Van Der Plas, L.H., Visser, R.G., Sucrose to hexose-phosphate conversion during stolon-to-tuber transition (2002) Physiologia Plantarum, 115, pp. 303-310 
504 |a Ross, H.A., Davies, H.V., Burch, L.R., Viola, R., Mcrae, D., Changes in carbohydrate contents and sucrose degrading enzymes in tuberizing stolons (1994) Physiologia Plantarum, 90, pp. 748-756 
504 |a Zrenner, R., Salanabout, M., Willmitzer, L., Sonnewald, U., Role of sucrose synthase for sink strength using transgenic potato plants (1995) Plant Journal, 7, pp. 97-107 
504 |a Müller-Röber, B., Sonnewald, U., Willmitzer, L., Inhibition of the ADP-glucose pyrophosphorylase in transgenic potatoes leads to sugar-storing tubers and influences tuber formation and expression of tuber storage protein genes (1992) EMBO Journal, 11, pp. 1229-1238 
504 |a Bachem, C.W.B., Vanderhoeven, R.S., Debruijn, S.M., Vreugdenhil, D., Zabeau, M., Visser, R.G.F., RNA fingerprinting based on AFLP (1996) Plant Journal, 9, pp. 745-747 
504 |a Bachem, C.W., Oomen, R.J.F., Kuyt, S., Horvath, B.M., Claassens, M.M., Vreugdenhil, D., Visser, R.G., Suppression of a potato alpha-SNAP homologue (2000) Plant Molecular Biology, 43, pp. 473-482 
504 |a Bachem, C.W., Horvath, B., Trindade, L., Claassens, M., Davelaar, E., Jordi, W., Visser, R.G., Steroid dehydrogenases affects gibberellin levels (2001) Plant Journal, 25, pp. 595-604 
504 |a Suárez-López, P., Long-range signalling in plant reproductive development (2005) International Journal of Developmental Biology, 49, pp. 761-771 
504 |a Chatterjee, M., Banerjee, A.K., Hannapel, D.J., A BELL1-like gene of potato is light activated and wound inducible (2007) Plant Physiology, 145, pp. 1435-1443 
504 |a Banerjee, A.K., Chatterjee, M., Yu, Y., Suh, S.G., Miller, W.A., Hannapel, D.J., Dynamics of a mobile RNA of potato involved in a long-distance signaling pathway (2006) Plant Cell, 18, pp. 3443-3457 
504 |a Banerjee, A.K., Lin, T., Hannapel, D.J., Untranslated regions of a mobile transcript mediate RNA metabolism (2009) Plant Physiology, 151, pp. 1831-1843 
504 |a Hannapel, D.J., A model system of development regulated by the long-distance transport of mRNA (2010) Journal of Integrative Plant Biology, 52, pp. 40-52 
504 |a Martin, A., Adam, H., Díaz-mendoza, M., Zurczak, M., González-schain, N.D., Suárez-López, P., Graft-transmissible induction of potato tuberization by the microRNA miR172 (2009) Development, 136, pp. 2873-2881 
504 |a Corbesier, L., Vincent, C., Jang, S., Fornara, F., Fan, Q., Searle, I., Giakountis, A., Coupland, G., FT protein movement contributes to long-distance signaling in floral induction of Arabidopsis (2007) Science, 316, pp. 1030-1033 
504 |a Notaguchi, M., Abe, M., Kimura, T., Daimon, Y., Kobayashi, T., Yamaguchi, A., Tomita, Y., Araki, T., Long-distance, graft-transmissible action of Arabidopsis FLOWERING LOCUS T protein to promote flowering (2008) Plant Cell Physiology, 49, pp. 1645-1658 
504 |a Ishikawa, R., Aoki, M., Kurotani, K.I., Yokoi, S., Shinomura, T., Takano, M., Shimamoto, K., Phytochrome dependent quantitative control of Hd3a transcription is the basis of the night break effect in rice flowering (2011) Molecular Genetics and Genomics, , DOI: 10.1007/s00438-011-0621-4 
504 |a Abelenda, J.A., Navarro, C., Prat, S., From the model to the crop: genes controlling tuber formation in potato (2011) Current Opinion in Biotechnology, 22, pp. 287-292 
504 |a Hannapel, D.J., Differential expression of potato tuber protein genes (1990) Plant Physiology, 94, pp. 919-925 
504 |a Fischer, L., Lipavska, H., Hausman, J.F., Opatrny, Z., Morphological and molecular characterization of a spontaneously tuberizing potato mutant: an insight into the regulatory mechanisms of tuber induction (2008) BMC Plant Biology, 8, p. 117 
504 |a Hannapel, D.J., Miller, J.C., Park, W.D., Regulation of potato tuber protein accumulation by gibberellic acid (1985) Plant Physiology, 78, pp. 700-703 
504 |a País, S.M., Muñiz García, M.N., Téllez-Iñón, M.T., Capiati, D.A., Protein phosphatases type 2A mediate tuberization signaling in Solanum tuberosum L. leaves (2010) Planta, 232, pp. 37-49 
504 |a Bush, D.S., Calcium signaling and regulation in plant cells (1995) Annual Review of Plant Physiology and Plant Molecular Biology, 46, pp. 95-122 
504 |a Evans, N.H., Mcainsh, M.R., Hetherington, A.M., Calcium oscillations in higher plants (2001) Current Opinion in Plant Biology, 4, pp. 415-420 
504 |a Sopory, S.K., Munshi, M., Protein kinases and phosphatases in cellular signaling in plants (1998) Critical Reviews in Plant Sciences, 17, pp. 245-318 
504 |a Balamani, V., Veluthambi, K., Poovaiah, B.W., Calcium in potato tuberization (1986) Plant Physiology, 80, pp. 856-858 
504 |a Takezawa, D., Liu, Z.H., An, G., Poovaiah, B.W., Calmodulin gene family in potato (1995) Plant Molecular Biology, 27, pp. 693-703 
504 |a Poovaiah, B.W., Takezawa, D., An, G., Han, T.-J., A calmodulin isoform alters growth and development in potato (1996) Journal of Plant Physiology, 149, pp. 553-558 
504 |a Roberts, D.M., Harmon, A.C., Calcium-modulated proteins (1992) Annual Review of Plant Physiology and Plant Molecular Biology, 43, pp. 375-414 
504 |a Harmon, A.C., Putnam-evans, C., Cormier, M.J., A calcium-dependent but calmodulin-independent protein kinase from soybean (1987) Plant Physiology, 83, pp. 830-837 
504 |a Harper, J.F., Sussman, M.R., Schaller, G.E., Putnam-evans, C., Charbonneau, H., Harmon, A.C., A CDPK with a calmodulin like regulatory domain (1991) Science, 252, pp. 951-954 
504 |a Cheng, S.-H., Willmann, M.R., Chen, H.-C., Sheen, J., Calcium signaling through protein kinases. The Arabidopsis calcium-dependent protein kinase gene family (2002) Plant Physiology, 129, pp. 469-485 
504 |a Hrabak, E.M., Chan, C.W., Gribskov, M., Harper, J.F., Choi, J.H., Halford, N., Kudla, J., Harmon, A.C., The Arabidopsis CDPK-SnRK superfamily of protein kinases (2003) Plant Physiology, 132, pp. 666-680 
504 |a Ray, S., Agarwal, P., Arora, R., Kapoor, S., Tyagi, A.K., Expression analysis of calcium-dependent protein kinase gene family during reproductive development and abiotic stress conditions in rice (Oryza sativa L. ssp. indica) (2007) Molecular Genetics and Genomics, 278, pp. 493-505 
504 |a Li, A.L., Zhu, Y.F., Tan, X.M., Wang, X., Wei, B., Guo, H.Z., Zhang, Z.L., Mao, L., Evolutionary and functional study of the CDPK gene family in wheat (Triticum aestivum L.) (2008) Plant Molecular Biology, 66, pp. 429-443 
504 |a Raíces, M., Chico, J.M., Téllez-Iñón, M.T., Ulloa, R.M., Molecular characterization of StCDPK1 (2001) Plant Molecular Biology, 46, pp. 591-601 
504 |a Gargantini, P.R., Giammaria, V., Grandellis, C., Feingold, S.E., Maldonado, S., Ulloa, R.M., Genomic and functional characterization of StCDPK1 (2009) Plant Molecular Biology, 70, pp. 153-172 
504 |a Giammaria, V., Grandellis, C., Bachmann, S., Gargantini, P.R., Feingold, S.E., Bryan, G., Ulloa, R.M., StCDPK2 expression and activity reveal a highly responsive potato calcium-dependent protein kinase involved in light signalling (2011) Planta, 233, pp. 593-609 
504 |a Kobayashi, M., Ohura, I., Kawakita, K., Yokota, N., Fujiwara, M., Shimamoto, K., Doke, N., Yoshioka, H., Calcium-dependent protein kinases regulate the production of reactive oxygen species by potato NADPH oxidase (2007) Plant Cell, 19, pp. 1065-1080 
504 |a Lakatos, L., Hutvágner, G., Bánfalvi, Z., Potato protein kinase StCPK1: a putative evolutionary link between CDPKs and CRKs (1998) Biochimica et Biophysica Acta, 1442, pp. 101-108 
504 |a Lu, S.X., Hrabak, E.M., An Arabidopsis CDPK associated with the endoplasmic reticulum (2002) Plant Physiology, 128, pp. 1008-1021 
504 |a Harper, J.F., Breton, G., Harmon, A., Decoding Ca(2+) signals through plant protein kinases (2004) Annual Review of Plant Biology, 55, pp. 263-288 
504 |a Sheen, J., Ca2+-dependent protein kinases and stress signal transduction in plants (1996) Science, 274, pp. 1900-1902 
504 |a Botella, J.R., Arteca, J.M., Somodevilla, M., Arteca, R.N., CDPK expression in mungbean (Vigna radiata) (1996) Plant Molecular Biology, 30, pp. 1129-1137 
504 |a Pestenacz, A., Erdei, L., Maize and sorghum CDPK induced by polyethylene glycol (1996) Physiologia Plantarum, 97, pp. 360-364 
504 |a Yoon, G.M., Cho, H.S., Ha, H.J., Liu, J.R., Lee, H.P., Characterization of NtCDPK1 (2002) Plant Molecular Biology, 39, pp. 991-1001 
504 |a Klimecka, M., Muszynska, G., Structure and functions of plant calcium-dependent protein kinases (2007) Acta Biochimica Polonica, 54, pp. 219-233 
504 |a Macintosh, G.C., Ulloa, R.M., Raíces, M., Téllez-Iñón, M.T., Calcium-dependent protein kinase and tuberization process in potato (1996) Plant Physiology, 112, pp. 1541-1550 
504 |a Ulloa, R.M., Macintosh, G.C., Melchiorre, M., Mentaberry, A.N., Dallari, P., Moriconi, D.N., Téllez-Iñón, M.T., Protein kinase activity in potato microtuberization (1997) Plant Cell Reports, 16, pp. 426-429 
504 |a Raíces, M., Gargantini, P.R., Chinchilla, D., Crespi, M., Téllez-Iñón, M.T., Ulloa, R.M., Regulation of CDPK isoforms during tuber development (2003) Plant Molecular Biology, 52, pp. 1011-1024 
504 |a Raíces, M., Ulloa, R.M., Macintosh, G., Crespi, M.D., Téllez-Iñón, M.T., StCDPK1 is expressed in stolon tips and is induced by high sucrose (2003) Journal of Experimental Botany, 54, pp. 2589-2591 
504 |a Viola, R., Roberts, A.G., Haupt, S., Gazzani, S., Hancock, R.D., Marmiroli, N., Machray, G.C., Oparka, K.J., Simplastic phloem unloading in potato (2001) The Plant Cell, 13, pp. 385-398 
504 |a Reust, W., EAPR working group physiological age of the potato (1986) Potato Research, 29, pp. 268-271 
504 |a Coleman, W.K., Dormancy release in potato tubers: a review (1987) Potato Research, 14, pp. 96-101 
504 |a Burton, W.G., Post-harvest physiology (1989) The potato, 4, pp. 23-522. , Burton WG, editor, Harlow: Longman Scientific and Technical 
504 |a Suttle, J.C., Hultstrand, J.F., Role of endogenous abscisic acid in potato microtuber dormancy (1994) Plant Physiology, 105, pp. 891-896 
504 |a Destefano-beltran, L., Knauber, D., Huckle, L., Suttle, J.C., 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 (2006) Plant Molecular Biology, 61, pp. 687-697 
504 |a Suttle, J.C., Involvement of ethylene in potato microtuber dormancy (1998) Plant Physiology, 118, pp. 843-848 
504 |a Bajji, M., M'Hamdi, M., Gastiny, F., Rojas-beltran, J.A., du Jardin, P., Catalase inhibition accelerates dormancy release and sprouting in potato (Solanum tuberosum L.) tubers (2007) Biotechnologie, Agronomie, 11, pp. 121-131. , Société et Environnement 
504 |a Suttle, J.C., Dormancy-relatedchangesincytokininefficacy and metabolism in potato tubers during postharvest storage (2001) Plant Growth Regulation, 35, pp. 199-206 
504 |a Madec, P., Perennec, P., Levée de dormance de tubercules de pomme de terre d'âge différent: action de la rindite, de la gibberelline et de l'oeilletonnage (1969) European Potato Jornal, 12, pp. 196-115 
504 |a Alexopoulos, A.A., Akoumianakis, K.A., Olympios, C.M., Passam, H.C., The effect of the time and mode of application of gibberellic acid and inhibitors of gibberellin biosynthesis on the dormancy of potato tubers grown from true potato seed (2007) Journal of the Science of Food and Agriculture, 87, pp. 1973-1979 
504 |a Suttle, J.C., Involvement of endogenous gibberellins in potato tuber dormancy and early sprout growth: a critical assessment (2004) Journal of Plant Physiology, 161, pp. 157-164 
504 |a Hartmann, A., Senning, M., Hedden, P., Sonnewald, U., Sonnewald, S., Reactivation of meristem activity and sprout growth in potato tubers require both cytokinin and gibberellins (2011) Plant Physiology, 155, pp. 776-796 
504 |a Sorce, C., Lombardi, L., Giorgetti, L., Parisi, B., Ranalli, P., Lorenzi, R., Indole acetic acid concentration and metabolism changes during bud development in tubers of two potato (Solanum tuberosum) cultivars (2009) Journal of Plant Physiology, 166, pp. 1023-1033 
504 |a Viola, R., Pelloux, J., van der Ploeg, A., Gillespie, T., Marquis, N., Roberts, A.G., Hancock, R.D., Symplastic connection is required for bud outgrowth following dormancy in potato (Solanum tuberosum L.) tubers (2007) Plant Cell and Environment, 30, pp. 973-983 
504 |a Ronning, C.M., Stegalkina, S.S., Ascenzi, R.A., Bougri, O., Hart, A.L., Utterbach, T.R., Vanaken, S.E., Cho, J., Comparative analyses of potato expressed sequence tag libraries (2003) Plant Physiology, 131, pp. 419-429 
504 |a Campbell, M., Segear, E., Beers, L., Knauber, D., Suttle, J., Dormancy in potato tuber meristems: chemically induced cessation in dormancy matches the natural process based on transcript profiles (2008) Functional and Integrative Genomics, 8, pp. 317-328 
504 |a Somyong, S., Munkvold, J.D., Tanaka, J., Benscher, D., Sorrells, M.E., Comparative genetic analysis of a wheat seed dormancy QTL with rice and Brachypodium identifies candidate genes for ABA perception and calcium signaling (2011) Functional and Integrative Genomics, , DOI: 10.1007/s10142-011-0219-2 
504 |a Pang, X., Halaly, T., Crane, O., Keilin, T., Keren-keiserman, A., Ogrodovitch, A., Galbraith, D., Or, E., Involvement of calcium signalling in dormancy release of grape buds (2007) Journal of Experimental Botany, 58, pp. 3249-3262 
520 3 |a Solanum tuberosum L. potato plants undergo several development stages during their life cycle involving stolon formation, tuberization, tuber filling, dormancy and tuber sprouting. Potato tubers are underground sinks originated from stolons in a process that requires the cessation of apex growth, the swelling of the stolon by subapical radial growth, and enlargement of the body. Potato plants produce tubers as a result of the changing balance of endogenous growth regulators, which is brought about by the plant's ability to perceive changes in the environment. An important aspect of tuber induction is that the stimulus is received on the leaves and is graft-transmissible. Environmental and hormonal signals, such as those mediated by light and gibberellins, are integrated in the leaves and a mobile signal is exported to the underground stolons to initiate tuber formation. This process is accompanied by the accumulation of starch and storage proteins. Tuberization allows the plant to reproduce in a vegetative way and determines that it can be considered a potential perennial plant. With the onset of sprouting, the tuber turns into a source organ; the reducing sugars increase as starch is hydrolyzed, providing carbon and energy for growth of the developing sprout. Tuber development and sprouting require coordinated transcriptional and metabolic changes as well as major changes in gene expression patterns. Signalling cascades are involved in sensing and transducing the environmental and hormonal stimuli that modulate both developmental processes. In this chapter we will review the different external and endogenous factors that regulate both processes and the signal transduction cascades associated to them. © 2012 Nova Science Publishers, Inc. All rights reserved.  |l eng 
593 |a Instituto de Investigaciones en Ingeniería Genética y Biología Molecular, INGEBI, CONICET, Universidad de Buenos Aires, Vuelta de Obligado 2490, 1428 Buenos Aires, Argentina 
700 1 |a Capiati, D.A. 
700 1 |a Giammaria, V. 
773 0 |d Nova Science Publishers, Inc., 2012  |h pp. 125-146  |p Potatoes: Prod., Consum. and Health Benefits  |z 9781621007036  |t Potatoes: Production, Consumption and Health Benefits 
856 4 1 |u https://www.scopus.com/inward/record.uri?eid=2-s2.0-84892279348&partnerID=40&md5=7f8fd815fe6313a2d6d058a6301ae9db  |y Registro en Scopus 
856 4 0 |u https://hdl.handle.net/20.500.12110/paper_97816210_v_n_p125_Ulloa  |y Handle 
856 4 0 |u https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_97816210_v_n_p125_Ulloa  |y Registro en la Biblioteca Digital 
961 |a paper_97816210_v_n_p125_Ulloa  |b paper  |c PE 
962 |a info:eu-repo/semantics/bookPart  |a info:ar-repo/semantics/parte de libro  |b info:eu-repo/semantics/publishedVersion 
999 |c 84257