PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2011 | 33 | 1 |

Tytuł artykułu

Metabolism of carbohydrates during the development of seeds of the brazilian rubber tree [Hevea brasiliensis (Willd. Ex Adr. de Juss) Muell.-Arg.]

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
This work aimed at the assessment of the metabolism of carbohydrate during the development of the seeds of Brazilian rubber trees. The enzymatic activity of the acid invertase, neutral invertase and sucrose synthase (SuSy) and the levels of total soluble sugars (TSS), reducing sugars (RS) and sucrose were evaluated separately in each part of the fruit and seed—pericarp, seed coat, embryo and endosperm—on different days after the pollination (DAP). Based on the results obtained in this study, it is possible to conclude that in the beginning of the development of the rubber tree seeds, until 95 DAP, the endosperm presents high concentration of RS and low concentration of sucrose. After this period, the endosperm of the seed initiates starch accumulation and the concentration of RS decreases followed by the increase in the concentration of sucrose, presenting, after 120 DAP, an inversion of concentration of these two sugars. In the embryo, the levels of TSS, RS and sucrose show significant increase with the progress of the seed development. In the endosperm, the transition of the division phase and cell expansion for the storage of reserve material seem to occur around 120 DAP and is to be controlled mainly by the enzymes acid invertase and SuSy, while in the embryo, such transition seems to occur around 135 DAP and is to be controlled mainly by the enzymes acid and neutral invertases.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

33

Numer

1

Opis fizyczny

p.211-219,fig.,ref.

Twórcy

  • Departamento de Biologia, Universidade Federal de Lavras, Lavras, Minas Gerais State, Brazil
  • Departamento de Biologia, Universidade Federal de Lavras, Lavras, Minas Gerais State, Brazil
  • Departamento de Biologia, Universidade Federal de Lavras, Lavras, Minas Gerais State, Brazil
  • Departamento de Biologia, Universidade Federal de Lavras, Lavras, Minas Gerais State, Brazil
  • Departamento de Fitopatologia, Universidade Federal de Lavras, Lavras, Minas Gerais State, Brazil

Bibliografia

  • Amaral LIV, Pereira M de FDA, Cortelazzo ÂL (2001) Formação das substâncias de reserva durante o desenvolvimento de sementes de urucum (Bixa orellana L- Bixaceae). Acta Bot Bras 15:125–132. doi:10.1590/S0102-33062001000100012
  • Baud S, Boutin JP, Miquel M, Lepiniec L, Rochat C (2002) An integrated overview of seed development in Arabidopsis thaliana ecotype WS. Plant Physiol Biochem 40:151–160. doi: 10.1016/S0981-9428(01)01350-X
  • Bhattacharya A, Nagar PK, Ahuja PS (2002) Seed development in Camellia sinensis (L.) O. Kuntze. Seed Sci Res 12:39–46. doi: 10.1079/SSR200196
  • Boesewinkel FD, Bouman F (1995) The seed: structure and function. In: Kigel J, Galili G (eds) Seed development and germination. Marcel Dekker, New York, p 853
  • Borisjuk L, Walenta S, Weber H, Mueller-Klieser W, Wobus U (1998) High resolution histographical mapping of glucose concentration in developing cotyledons of V. faba in relation to mitotic activity and starch accumulation: glucose as a possible developmental trigger. Plant J 15:583–591. doi:10.1046/j.1365-313X.1998.00214.x
  • Borisjuk L, Walenta S, Rolletschek H, Mueller-Klieser W, Wobus U, Weber H (2002) Spatial analysis of plant metabolism: sucrose imaging within Vicia faba cotyledons reveals specific developmental patterns. Plant J 29:521–530
  • Borisjuk L, Rolletschek H, Wobus U, Weber H (2003) Differentiation of legume cotyledons as related to metabolic gradients and assimilate transport into seeds. J Exp Bot 54:503–512
  • Cavalari AA (2004) Invertase ácida, sacarose sintase e o metabolismo de açúcares no desenvolvimento da semente de café (Coffea arábica L.). Dissertation, State University of Campinas
  • Cheng WH, Chourey PS (1999) Genetic evidence that invertase mediated release of hexoses is critical for appropriate carbon partitioning and normal seed development in maize. Theor Appl Gen 98:485–495
  • Cooper RA, Greenshields RN (1961) Sucrases in Phaseolus vulgaris. Nature 5:4788–4789
  • Déjardin A, Rochat C, Wuillème S, Boutin JP (1997) Contribution of sucrose synthase, ADP-glucose pyrophosphorylase and starch synthase to starch synthesis in developing pea seeds. Plant Cell Environ 20:1421–1430
  • Dekkers BJ, Schuurmans JA, Smeekens SC (2008) Interaction between sugar and abscisic acid signalling during early seedling development in Arabidopsis. Plant Mol Biol 67:151–167. doi: 10.1007/s11103-008-9308-6
  • Geigenberger P (2003) Regulation of sucrose to starch conversion in growing potato tubers. J Exp Bot 54:457–465
  • Heim U, Weber H, Bäumlein H, Wobus U (1993) A sucrose-synthase gene of Vicia faba L. Expression pattern in developing seeds in relation to starch synthesis and metabolic regulation. Planta 191:394–401
  • Hill ML, Smith MRE, Rawsthorne S (2003) Metabolism of sugar in the endosperm of developing seeds of oilseed rape. Plant Physiol 131:228–236
  • Hirose T, Takano M, Terao T (2002) Cell wall invertase in developing rice caryopsis: molecular cloning of OsCIN1 and analysis of its expression in relation to its role in grain filling. Plant Cell Physiol 43:452–459
  • King SP, Lunn JE, Furbank RT (1997) Carbohydrate content and enzyme metabolism in developing canola siliques. Plant Physiol 11:153–160
  • Kock K (2004) Sucrose metabolism: regulatory mechanisms and pivotal roles in sugar sensing and plant development. Curr Opin Plant Biol 7:235–246. doi:10.1016/j.pbi.2004.03.014
  • Marcos Filho J (2005) Fisiologia de sementes de plantas cultivadas. Fundação de Estudos Agrários Luiz de Queiroz, FEALQ, Piracicaba
  • Martim SA (2003) Pulverização do cafeeiro com açúcar: potencial de uso em mudas submetidas à deficiência hídrica e na recuperação de plantas atingidas por Glyphosate. Dissertation, Federal University of Lavras
  • Miller GL (1959) Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Biochem 31:426–428
  • Mishra BS, Singh M, Aggrawal P, Laxmi A (2009) Glucose and auxin signaling interaction in controlling Arabidopsis thaliana seedlings root growth and development. PLoS ONE 4(2):e4502. Doi: 10.1371/journal.pone.0004502
  • Ohto M, Fischer RL, Goldberg RB, Nakamura K, Harada JJ (2005) Control of seed mass by APETALA2. Proc Natl Acad Sci USA 102:3123–3128. doi:10.1073/pnas.0409858102
  • Pridham JB, Walter MW (1964) α-Galactosidase and alkaline β-fructofuranidase activity in Vicia faba seeds. Biochem J 92:20
  • Rogers WJ, Bezard G, Deshayes A, Meyer I, Petiard V, Marraccini P (1999) Biochemical and molecular characterization and expression of the 11S-type storage protein from Coffea arabica endosperm. Plant Physiol Biochem 37:261–272
  • Rolland F, Baena-Gonzales E, Sheen J (2006) Sugar sensing and signaling in plants: conserved and novel mechanisms. Annu Rev Plant Biol 57:675–709. doi:10.1146/annurev.arplant.57.032905. 105441
  • Silva MP, Passarinho JAP, Ricardo CPP (1988) Alkaline invertase as a marker enzyme of in vitro somatic embryogenesis. Proceedings of the 6th Congress of the Federation of the European Society of Plant Physiology 15:19
  • Taiz L, Zeiger E (2004) Fisiologia Vegetal, 3rd edn. Artmed, Porto Alegre
  • Tymowska-Lalanne Z, Kreis M (1998) The plant invertases: physiology, biochemistry, and molecular biol. Adv Bot Res 28:71–117
  • Weber H, Borisjuk L, Heim U, Buchner P, Wobus U (1995) Seed coat-associated invertases of fava bean control both unloading and storage functions: cloning of cDNAs and cell type-specific expression. Plant Cell 7:1835–1846
  • Weber H, Borisjuk L, Wobus U (1996) Controlling seed development and seed size in Vicia faba: a role for seed coat associated invertases and carbohydrate state. Plant J 10:823–830. doi: 10.1046/j.1365-313X.1996.10050823.x
  • Weber H, Heim U, Golombek S, Borisjuk L, Manteuffel R, Wobus U (1998) Expression of a yeast-derived invertase in developing cotyledons of Vicia narbonensis alters the carbohydrate state and affects storage functions. Plant J 16:163–172
  • Weber H, Borisjuk L, Wobus U (2005) Molecular physiology of legume seed development. Annu Rev Plant Biol 56:253–279. doi:10.1146/annurev.arplant.56.032604.144201
  • Weschke W, Panitz R, Sauer N, Wang Q, Neubohn B, Weber H, Wobus U (2000) Sucrose transport into barley seeds: molecular characterisation of two transporters and implications for seed development and starch accumulation. Plant J 21: 455–467
  • Weschke W, Panitz R, Gubatz S, Wang Q, Radchuk R, Weber H, Wobus U (2003) The role of invertases and hexose transporters in controlling sugar ratios in maternal and filial tissues of barley caryopses during early development. Plant J 33:395–411
  • Winter H, Huber SC (2000) Regulation of sucrose metabolism in higher plants: localization and regulation of activity of key enzymes. Crit Rev Biochem Mol Biol 35:253–289. doi: 10.1080/07352680091139178
  • Wobus U, Weber H (1999) Sugars as signal molecules in plant seed development. J Biol Chem 380:937–944
  • Wobus U, Sreenivasulu N, Borisjuk L, Rolletschek H, Panitz R, Gubatz S, Weschke W (2005) Molecular physiology and genomics of developing barley grains. In: Pandalai SG (ed) Recent Research Developments in Plant Molecular Biology, vol 2. Research Signpost, Trivandrum, pp 1–29
  • Yemm EW, Coccking EC (1954) The stimulation of carbohydrates in plant extracts by anthrone. Biochem J 57:508–514
  • Zamski E (1995) Transport and accumulation of carbohydrates in developing seeds: the seed as a sink. In: Kigel J, Galili G (eds) Seed development and germination. Marcel Dekker, New York, pp 237–271

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-f887864a-997a-494a-b75f-3689baa7e5da
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.