The role of gibberellins in the control of tuberization in potato (Solanum tuberosum L.)

Potato (Solanum tuberosum L.) is grown all over the world, being the fourth most important food crop after corn, rice and wheat. Potato tuber is formed from an underground stem, called stolon, whose tip swells to form the tuber under inducing conditions. This is a complex process that is influenced...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autor principal: García, M.N.M
Otros Autores: Muro, M.C, Stritzler, M., Capiati, D.A
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Nova Science Publishers, Inc. 2015
Acceso en línea:Registro en Scopus
Handle
Registro en la Biblioteca Digital
Aporte de:Registro referencial: Solicitar el recurso aquí
LEADER 17370caa a22011537a 4500
001 PAPER-13641
003 AR-BaUEN
005 20230518204401.0
008 190411s2015 xx ||||fo|||| 00| 0 eng|d
024 7 |2 scopus  |a 2-s2.0-84958693570 
040 |a Scopus  |b spa  |c AR-BaUEN  |d AR-BaUEN 
100 1 |a García, M.N.M. 
245 1 4 |a The role of gibberellins in the control of tuberization in potato (Solanum tuberosum L.) 
260 |b Nova Science Publishers, Inc.  |c 2015 
270 1 0 |m Capiati, D.A.; INGEBI, CONICET and Facultad de Ciencias Exactas y Naturales, Universidad de Buenos AiresArgentina; email: dcapiati@dna.uba.ar 
506 |2 openaire  |e Política editorial 
504 |a Ewing, E.E., Struik, P.C., Tuber formation in potato: induction, initiation, and growth (1992) Horticultural Reviews, 14, pp. 189-198 
504 |a Xu, X., Vreugdenhil, D., van Lammeren, A.M.M., Cell division and cell enlargement during potato tuber formation (1998) Journal of Experimental Botany, 49, pp. 573-582 
504 |a Jackson, S.D., Multiple signalling pathways control tuber induction in potato. (1999) Plant Physiology, 119, pp. 1-8 
504 |a Hannapel, D.J., Chen, H., Rosin, F.M., Banerjee, A.K., Davies, P.J., Molecular controls of tuberization (2004) American Journal of Potato Research, 81, pp. 263-274 
504 |a Rodriguez-Falcon, M., Bou, J., Prat, S., Seasonal control of tuberization in potato: conserved elements with the flowering response (2006) Annual Review of Plant Biology, 57, pp. 151-180 
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 Sun, T.P., Gubler, F., Molecular mechanism of gibberellin signaling in plants Annual Review of Plant Biology, 55, pp. 197-223. , 2204 
504 |a Achard, P., Genschik, P., Releasing the brakes of plant growth: how GAs shutdown DELLA proteins (2009) Journal of Experimental Botany, 60, pp. 1085-1092 
504 |a Smith, O.E., Rappaport, L., Gibberellins, inhibitors, and tuber formation in the potato (Solanum tuberosum) (1969) American Potato Journal, 46, pp. 185-191 
504 |a Kumar, D., Wareing, P.F., Factors controlling stolon development in the potato plant (1972) New Phytologist, 71, pp. 639-648 
504 |a Xu, X., van Lammeren, A.A.M., Vermeer, E., Vreugdenhil, D., The role of gibberellin, abscisic acid, and sucrose in the regulation of potato tuber formation in vitro (1998) Plant Physiology, 117, pp. 575-584 
504 |a Jackson, S.D., James, P., Prat, S., Thomas, B., Phytochrome B affects the levels of a graft-transmissible signal involved in tuberization (1998) Plant Physiology, 117, pp. 29-32 
504 |a Suárez-López, P., Long-range signalling in plant reproductive development (2005) The International Journal of Developmental Biology, 49, pp. 761-771 
504 |a Jackson, S.D., Plant responses to photoperiod (2009) New Phytologist, 181, pp. 517-531 
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) The 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 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 Bhogale, S., Mahajan, A.S., Natarajan, B., Rajabhoj, M., Thulasiram, H.V., Banerjee, A.K., MicroRNA156: a potential graft-transmissible microRNA that modulates plant architecture and tuberization in Solanum tuberosum ssp (2014) andigena. Plant Physiology, 164, pp. 1011-1027 
504 |a Hedden, P., Phillips, A.L., Gibberellin metabolism: new insights revealed by the genes (2000) Trends in Plant Science, 5, pp. 523-530 
504 |a Yamaguchi, S., Gibberellin metabolism and its regulation (2008) Annual Review of Plant Biology, 59, pp. 225-251 
504 |a Helliwell, C.A., Sheldon, C.C., Olive, M.R., Walker, A.R., Zeevaart, J.A.D., Peacock, W.J., Dennis, E.S., Cloning of the Arabidopsis entkaurene oxidase gene GA3 (1998) Proceedings of the National Academy of Sciences of the United States of America, 95, pp. 9019-9024 
504 |a Croker, S.J., Hedden, P., Lenton, J.R., Stoddart, J.L., Comparison of gibberellins in normal and slender barley seedlings (1990) Plant Physiology, 94, pp. 194-200 
504 |a Martin, D.N., Proebsting, W.M., Parks, T.D., Dougherty, W.G., Lange, T., Lewis, M.J., Gaskin, P., Hedden, P., Feed-back regulation of gibberellin biosynthesis and gene expression in Pisum sativum L. (1996) Planta, 200, pp. 159-166 
504 |a Silverstone, A.L., Jung, H.S., Dill, A., Kawaide, H., Kamiya, Y., Sun, T.P., Repressing a repressor: Gibberellin induced rapid reduction of the RGA protein in Arabidopsis (2001) The Plant Cell, 13, pp. 1555-1566 
504 |a Fujioka, S., Yamane, H., Spray, C.R., Gaskin, P., MacMillan, J., Phinney, B.O., Takahashi, N., Qualitative and quantitative analyses of gibberellins in vegetative shoots of normal (1988) dwarf-1, dwarf-2, dwarf-3, and dwarf-5 seedlings of Zea mays L. Plant Physiology, 88, pp. 1367-1372 
504 |a Talón, M., Koornneef, M., Zeevaart, J.A.D., Accumulation of C-19-gibberellins in the gibberellin-insensitive dwarf mutant gai of Arabidopsis thaliana (L.) Heynh (1990) Planta, 182, pp. 501-505 
504 |a Xu, Y.L., Li, L., Wu, K., Peeters, A.J.M., Gage, D.A., Zeevaart, J.A.D., The GA5 locus of Arabidopsis thaliana encodes a multifunctional gibberellin 20-oxidase: Molecular cloning and functional expression (1995) Proceedings of the National Academy of Sciences of the United States of America, 92, pp. 6640-6644 
504 |a Thomas, S.G., Phillips, A.L., Hedden, P., Molecular cloning and functional expression of gibberellin 2-oxidases, multifunctional enzymes involved in gibberellin deactivation (1999) Proceedings of the National Academy of Sciences of the United States of America, 96, pp. 4698-4703 
504 |a Elliott, R.C., Smith, J.L., Lester, D.R., Reid, J.B., Feedforward regulation of gibberellin deactivation in pea (2001) Journal of Plant Growth Regulation, 20, pp. 87-94 
504 |a Ueguchi-Tanaka, M., Nakajima, M., Motoyuki, A., Matsuoka, M., Gibberellin receptor and its role in gibberellin signaling in plants (2007) Annual Review of Plant Biology, 58, pp. 183-198 
504 |a Davière, J.M., Achard, P., Gibberellin signaling in plants (2013) Development, 140, pp. 1147-1151 
504 |a Harberd, N., Botany, P., Relieving DELLA restraint (2003) Science, 299, pp. 1853-1854 
504 |a Ueguchi-Tanaka, M., Ashikari, M., Nakajima, M., Itoh, H., Katoh, E., Kobayashi, M., Chow, T.Y., Matsuoka, M., GIBBERELLIN INSENSITIVE DWARF1 encodes a soluble receptor for gibberellin (2005) Nature, 437, pp. 693-698 
504 |a Griffiths, J., Murase, K., Rieu, I., Zentella, R., Zhang, Z.L., Powers, S.J., Gong, F., Thomas, S.G., Genetic characterization and functional analysis of the GID1 gibberellin receptors in Arabidopsis (2006) The Plant Cell, 18, pp. 3399-3414 
504 |a Willige, B.C., Ghosh, S., Nill, C., Zourelidou, M., Dohmann, E.M., Maier, A., Schwechheimer, C., The DELLA domain of GA INSENSITIVE mediates the interaction with the GA INSENSITIVE DWARF1A gibberellin receptor of Arabidopsis (2007) The Plant Cell, 19, pp. 1209-1220 
504 |a McGinnis, K.M., Thomas, S.G., Soule, J.D., Strader, L.C., Zale, J.M., Sun, T.P., Steber, C.M., The Arabidopsis SLEEPY1 gene encodes a putative F-box subunit of an SCF E3 ubiquitin ligase (2003) The Plant Cell, 15, pp. 1120-1130 
504 |a Dill, A., Thomas, S.G., Hu, J., Steber, C.M., Sun, T.P., The Arabidopsis F-box protein SLEEPY1 targets gibberellin signaling repressors for gibberellin-induced degradation (2004) The Plant Cell, 16, pp. 1392-1405 
504 |a Carrera, E., Jackson, S.D., Prat, S., Feedback control and diurnal regulation of gibberellin 20-oxidase transcript levels in potato (1999) Plant Physiology, 119, pp. 765-774 
504 |a Bou-Torrent, J., Martínez-García, J.F., García-Martínez, J.L., Prat, S., Gibberellin A1 metabolism contributes to the control of photoperiod-mediated tuberization in potato (2011) PLoS One, 6, p. e24458 
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) The Plant Journal, 52, pp. 362-373 
504 |a Abdala, G., Guiñazú, M., Tizio, R., Pearce, D.W., Pharis, R.P., Effect of 2-chloroethyl trimethyl ammonium chlorides on tuberization and endogenous GA3 in roots of potato cuttings (1995) Plant Growth Regulation, 17, pp. 95-100 
504 |a Vreugdenhil, D., Bindels, P., Reinhoud, P., Klocek, J., Hendriks, T., Use of growth retardant tetcyclacis for potato tuber formation in vitro (1994) Plant Growth Regulation, 14, pp. 257-265 
504 |a Bandara, P.M.S., Tanino, K.K., Paclobutrazol enhances minituber production in Norland potatoes (1995) Journal of Plant Growth Regulation, 14, pp. 151-155 
504 |a Okazawa, Y., Studies on the occurrence of natural gibberellin and its effect on the tuber formation of potato plants (1959) Proceedings of the Crop Science Society of Japan, 28, pp. 129-133 
504 |a Railton, I.D., Wareing, P.F., Effects of daylength on endogenous gibberellins in leaves of Solanum andigena (1973) Physiologia Plantarum, 28, pp. 88-94 
504 |a van den Berg, J.H., Simko, I., Davies, P.J., Ewing, E.E., Halinska, A., Morphology and [14C] gibberellin A12 metabolism in wild-type and dwarf Solanum tuberosum ssp. andigena grown under long and short photoperiods (1995) Journal of Plant Physiology, 146, pp. 467-473 
504 |a Carrera, E., Bou, J., García-Martínez, J.L., Prat, S., Changes in GA 20-oxidase gene expression strongly affect stem length, tuber induction and tuber yield of potato plants (2000) The Plant Journal, 22, pp. 247-256 
504 |a Davidson, S.E., Elliott, R.C., Helliwell, C.A., Poole, A.T., Reid, J.B., The pea gene NA encodes ent-kaurenoic acid oxidase (2003) Plant Physiology, 131, pp. 335-344 
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 Cyr, R.J., Microtubules in plant morphogenesis: Role of the cortical array (1994) Annual Review of Cell Biology, 10, pp. 153-180 
504 |a Shibaoka, H., Plant hormone-induced changes in the orientation of cortical microtubules: Alterations in the cross-linking between microtubules and the plasma membrane (1994) Annual Review of Plant Physiology and Plant Molecular Biology, 45, pp. 527-544 
504 |a Fujino, K., Koda, Y., Kikuta, Y., Reorientation of cortical microtubules in the sub-apical region during tuberization in single-node stem segments of potato in culture (1995) Plant and Cell Physiology, 36, pp. 891-895 
504 |a Martínez-García, J.F., García-Martínez, J.L., Bou, J., Prat, S., The interaction of gibberellins and photoperiod in the control of potato tuberization (2001) Journal of Plant Growth Regulation, 20, pp. 377-386 
504 |a Jackson, S.D., Heyer, A., Dietze, J., Prat, S., Phytochrome B mediates the photoperiodic control of tuber formation in potato (1996) The Plant Journal, 9, pp. 159-166. , 1996 
504 |a Yanovsky, M.J., Izaguirre, M., Wagmaister, J.A., Jackson, S.D., Thomas, B., Casal, J.J., Phytochrome A resets the circadian clock and delays tuber formation under long days in potato (2000) The Plant Journal, 23, pp. 223-232 
504 |a Kumar, D., Wareing, P.F., Studies on tuberization of Solanum andigena. II. Growth hormones and tuberization (1974) New Phytologist, 73, pp. 833-840 
504 |a Jackson, S.D., James, P.E., Carrera, E., Prat, S., Thomas, B., Regulation of transcript levels of potato gibberellin 20-oxidase gene by light and phytochrome B (2000) Plant Physiology, 124, pp. 423-430 
504 |a Okazawa, Y., Chapman, H.W., Regulation of tuber formation in the potato plant (1962) Physiologia Plantarum, 15, pp. 413-419 
504 |a Marschner, H., Sattelmacher, B., Bangerth, F., Growth rate of potato tubers and endogenous contents of indolylacetic acid and abscisic acid (1984) Physiologia Plantarum, 60, pp. 16-20 
504 |a Krauss, A., Marschner, H., Influence of nitrogen nutrition, daylength, and temperature on contents of gibberellic and abscisic acid and on tuberization in potato plants (1982) Potato Research, 25, pp. 13-21 
504 |a Vreugdenhil, D., Struik, P.C., An integrated view of the hormonal regulation of tuber formation in potato (Solanum tuberosum) (1989) Physiologia Plantarum, 75, pp. 525-531 
504 |a Muñiz García, M.N., Giammaria, V., Grandellis, C., Téllez-Iñón, M.T., Ulloa, R.M., Capiati, D.A., Characterization of StABF1, a stress-responsive bZIP transcription factor from Solanum tuberosum L. that is phosphorylated by StCDPK2 in vitro (2012) Planta, 235, pp. 761-778 
504 |a Muñiz García, M.N., Stritzler, M., Capiati, D.A., Heterologous expression of Arabidopsis ABF4 gene in potato enhances tuberization through ABA-GA crosstalk regulation (2014) Planta, 239, pp. 615-631 
504 |a Harmey, M.A., Crowley, M.P., Clinch, P.E.M., The effect of growth regulators on tuberization of cultured stem pieces of Solanum tuberosum (1966) European Potato Journal, 9, pp. 146-151 
504 |a Obata-Sasamoto, H., Suzuki, H., Activities of enzymes relating to starch synthesis and endogenous levels of growth regulators in potato stolon tips during tuberization (1979) Physiologia Plantarum, 45, pp. 320-324 
504 |a Roumeliotis, E., Visser, R.G.F., Bachem, C.W.B., A crosstalk of auxin and GA during tuber development (2012) Plant Signaling and Behavior, 7, pp. 1360-1363 
504 |a Ross, J.J., O'Neill, D.P., Smith, J.J., Kerckhoffs, L.H., Elliott, R.C., Evidence that auxin promotes gibberellin A1 biosynthesis in pea (2000) The Plant Journal, 21, pp. 547-552 
504 |a Palmer, C.E., Smith, O.E., Cytokinins and tuber initiation in the potato (1969) Solanum tuberosum L. Nature, 221, pp. 279-280 
504 |a Hussey, G., Stacey, N.J., Factors affecting the formation of in vitro tubers of potato (Solanum tuberosum L.) (1984) Annals of Botany, 53, pp. 565-578 
504 |a Mauk, C.S., Langille, A.R., Physiology of tuberization in Solanum tuberosum L. (1978) Plant Physiology, 62, pp. 438-442 
504 |a Raspor, M., Motyka, V., Žižková, E., Dobrev, P.I., Trávníčková, A., Zdravković-Korać, S., Simonović, A., Dragićević, I., Cytokinin profiles of AtCKX2-overexpressing potato plants and the impact of altered cytokinin homeostasis on tuberization in vitro (2012) Journal of Plant Growth Regulation, 31, pp. 460-470 
520 3 |a Potato (Solanum tuberosum L.) is grown all over the world, being the fourth most important food crop after corn, rice and wheat. Potato tuber is formed from an underground stem, called stolon, whose tip swells to form the tuber under inducing conditions. This is a complex process that is influenced by many environmental factors, such as nitrogen level, light and temperature. Tuber development regulation is mediated by hormonal control mainly by gibberellic acid (GA, gibberellins), which plays a central role as negative regulator of the process. GA promotes stolon elongation and inhibits stolon swelling, diminishing tuber formation. Bioactive GA levels decline during tuber induction in stolons due to a complex transcriptional regulation of the GA metabolism genes. This chapter is focused on the mechanisms involved in the control of tuberization by GA, including the regulation of bioactive GA levels, the mechanism of action during tuber formation, and the interaction between GA and other hormones affecting tuberization. © 2015 by Nova Science Publishers, Inc. All rights reserved.  |l eng 
593 |a INGEBI, CONICET and Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Buenos Aires, Argentina 
700 1 |a Muro, M.C. 
700 1 |a Stritzler, M. 
700 1 |a Capiati, D.A. 
773 0 |d Nova Science Publishers, Inc., 2015  |h pp. 59-78  |p Gibberellins and Gibberellic Acid: Biosynth., Regul. and Physiol. Eff.  |z 9781634825801  |z 9781634825498  |t Gibberellins and Gibberellic Acid: Biosynthesis, Regulation and Physiological Effects 
856 4 1 |u https://www.scopus.com/inward/record.uri?eid=2-s2.0-84958693570&partnerID=40&md5=fc09750b261248e0f54aeadc0db776ef  |y Registro en Scopus 
856 4 0 |u https://hdl.handle.net/20.500.12110/paper_97816348_v_n_p59_Garcia  |y Handle 
856 4 0 |u https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_97816348_v_n_p59_Garcia  |y Registro en la Biblioteca Digital 
961 |a paper_97816348_v_n_p59_Garcia  |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 74594