Brassinosteroid-driven Stimulation of Shoot Formation and Elongation: Application in Micropropagation

Brassinosteroids (BRs) comprise a specific class of low-abundance, natural polyhydroxy steroidal lactones and ketones now recognized as a new class of phytohormones. These steroids of ubiquitous occurrence in plants are known to stimulate stem elongation and to control apical dominance as well. In t...

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Autor principal: Pereira-Netto, A.B
Otros Autores: Galagovsky, L.R, Ramírez, Javier Alberto
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: Bentham Science Publishers Ltd. 2012
Acceso en línea:Registro en Scopus
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100 1 |a Pereira-Netto, A.B. 
245 1 0 |a Brassinosteroid-driven Stimulation of Shoot Formation and Elongation: Application in Micropropagation 
260 |b Bentham Science Publishers Ltd.  |c 2012 
270 1 0 |m Pereira-Netto, A.B.; Department of Botany-SCB, Centro Politécnico-Parana Federal University, 19031 Curitiba, PR, 81531-970, Brazil; email: apereira@ufpr.br 
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504 |a Nomura, T., Kushiro, T., Yokota, T., Kamiya, Y., Bishop, G.J., Yamaguchi, S., The last reaction producing brassinolide is catalyzed by cytochrome P-450s, CYP85A3 in tomato and CYP85A2 in Arabidopsis (2005) J Biol Chem, 280, pp. 17873-17879 
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504 |a Sekimata, K., Han, S.Y., Yoneyama, K., Takeuchi, Y., Yoshida, S., Asami, T., A specific and potent inhibitor of brassinosteroid biosynthesis possessing a dioxolane ring (2002) J Agric Food Chem, 50, pp. 3486-3490 
504 |a Choe, S., Dilkes, B.P., Fujioka, S., Takatsuto, S., Sakurai, A., Feldmann, K.A., The DWF4 gene of Arabidopsis encodes a cytochrome P450 that mediates multiple 22α-hydroxylation steps in brassinosteroid biosynthesis (1998) Plant Cell, 10, pp. 231-243 
504 |a Asami, T., Min, Y.K., Nagata, N., Characterization of brassinazole, a triazole-type brassinosteroid biosynthesis inhibitor (2000) Plant Physiol, 123, pp. 93-100 
504 |a Asami, T., Mizutani, M., Fujioka, S., Selective interaction of triazole derivatives with DWF4, a cytochrome p450 monooxygenase of the brassinosteroid biosynthetic pathway, correlates with brassinosteroid deficiency in planta (2001) J Biol Chem, 276, pp. 25687-25691 
504 |a Asami, T., Nakano, T., Nakashita, H., Sekimata, K., Shimada, Y., Yoshida, S., The influence of chemical genetics on plant science: shedding light on functions and mechanism of action of brassinosteroids using biosynthesis inhibitors (2003) J Plant Growth Regul, 22, pp. 336-349 
504 |a Yamamoto, R., Fujioka, S., Demura, T., Takatsuto, S., Yoshida, S., Fukuda, H., Brassinosteroid levels increase drastically prior to morphogenesis of tracheary elements (2001) Plant Physiol, 125, pp. 556-563 
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504 |a Symons, G.M., Reid, J.B., Hormone levels and response during de-etiolation in pea (2003) Planta, 216, pp. 422-431 
504 |a Pereira-netto, A.B., Carvalho-oliveira, M.M.C., Ramírez, J.A., Galagovsky, L.R., Shooting control in Eucalyptus grandis × (2006) urophylla hybrid: Comparative effects of 28-homocastasterone and a 5α-monofluoro derivative. Plant Cell Tiss Organ Cult, 86, pp. 329-335 
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504 |a Clouse, S.D., Molecular genetic studies confirm the role of brassinosteroids in plant growth and development (1996) Plant J, 10, pp. 1-8 
504 |a Chon, N.M., Nishikawa-koseki, N., Hirata, Y., Saka, H., Abe, H., Effects of brassinolide on mesocotyl, coleoptile and leaf growth in rice seedlings (2000) Plant Produc Sci, 3, pp. 360-365 
504 |a Kohout, L., Strnad, M., Kaminek, M., Types of brassinosteroids and their bioassay (1991) Brassinosteroids, chemistry, bioactivity, and applications, pp. 56-73. , In: Cutler HG, Yokota T, Adam G, Eds., Washington DC, ACS Symposium Series 474. American Chemical Society 
506 |2 openaire  |e Política editorial 
520 3 |a Brassinosteroids (BRs) comprise a specific class of low-abundance, natural polyhydroxy steroidal lactones and ketones now recognized as a new class of phytohormones. These steroids of ubiquitous occurrence in plants are known to stimulate stem elongation and to control apical dominance as well. In this chapter, we describe the use of BRs to significantly improve protocols for micropropagation of woody species, more specifically, the marubakaido apple rootstock and a clone of Eucalyptus, through the stimulation of shoot elongation and formation of new shoots. It is also shown in this chapter that these BR-induced changes in shoot architecture do not result from changes in the endogenous levels of any single metabolite and do not rely on broad changes in the metabolite profile, as well. © 2011 Bentham Science Publishers. All rights reserved.  |l eng 
593 |a Department of Botany-SCB, Centro Politécnico-Parana Federal University, C.P. 19031 Curitiba, PR, 81531-970, Brazil 
593 |a Department of Organic Chemistry and UMYMFOR (CONICET-FCEyN), School of Exact and Natural Sciences, University of Buenos Aires, Argentina 
690 1 0 |a 22-HYDROXYLATED BRS 
690 1 0 |a 5F-28-HOMOCASTASTERONE 
690 1 0 |a BRZ220 
690 1 0 |a E. GRANDIS X E. UROPHYLLA HYBRID 
690 1 0 |a MARUBAKAIDO 
690 1 0 |a METABOLOMICS 
690 1 0 |a MULTIPLICATION RATE 
700 1 |a Galagovsky, L.R. 
700 1 |a Ramírez, Javier Alberto 
773 0 |d Bentham Science Publishers Ltd., 2012  |h pp. 26-34  |p Brassinosteroids: Pract. Appl. in Agric. and Human Health  |z 9781608056545  |t Brassinosteroids: Practical Applications in Agriculture and Human Health 
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