PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2003 | 45 | 2 |

Tytuł artykułu

Qualitative and quantitative changes in proteins in Acer platanoides L. seeds during maturation

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Maturation of Norway maple (Acer platanoides L.) seeds produces deep physiological dormancy and resistance to desiccation. This study used two-dimensional electrophoresis to investigate the protein products of genes activated during the complex developmental process of maturation. Qualitative and quantitative changes in protein composition during maturation were tracked in this species. The most intensive changes in protein content appeared at the end of seed maturation, in embryo axes and cotyledons. During this time their protein content increased significantly and new proteins appeared. Presumably the proteins Q (15 kDa, pI 8) and X (16 kDa, pI 5) separated from cotyledons are associated with maturation of seeds.

Wydawca

-

Rocznik

Tom

45

Numer

2

Opis fizyczny

p.139-144,fig.

Twórcy

autor
  • Polish Academy of Sciences, Parkowa 5, 62-035 Kornik, Poland

Bibliografia

  • Baker EH, Bradford KJ, Bryant JA, and Rost TL. 1995. A comparison of desiccation-related proteins (dehydrin and QP47) in peas (Pisum sativum). Seed Science Research 5: 185-193.
  • Blackman SA, Obendorf RL, and Leopold AC. 1995. Desiccation tolerance in developing soybean seeds - the role of stress proteins. Physiologia Plantarum 93: 630-638.
  • Bradford MM. 1976. A rapid and sensitive method for the quantification of microgram quantities of protein utilizing the principle of protein-dye binding. Annals of Biochemistry 72: 248-254.
  • Chiatante D, and Onelli E. 1993. Nuclear proteins and the onset of cell proliferation in root meristems of Pisum sativum: QP47 a novel acidic protein. Seed Science Research 3:35-42.
  • Colorado P, Nicolas C, Nicolas, G and Rodriguez D. 1995. Expression of three ABA-regulated clones and their relationship to maturation processes during the embryogenesis of chick-pea seeds. Physiologia Plantarum 94: 1-6.
  • Cost J, Ashford DA, and Ricardo CPP. 1996. Characterisation of developmentally related polypeptide with glutelin solubility characteristics from Lupinus albus L. Planta 198: 221-229.
  • Croissant-Synch Y, and Okita TW. 1996. Identification of positive and negative regulatory cis-elements ofthe rice glutelin Gt3 promoter. Plant Science 116: 27-35.
  • Dehaye L, Duval M, Viguier D, Yaxley J, and Job D. 1997. Cloning and expression of the pea gene encoding SBP65, a seed-specific biotinylated protein. Plant Molecular Biology 35: 605-621.
  • Dodeman VL, Le Guilloux M, Ducreux G, and De Vienne D. 1998. Characterisation of storage proteins in Daucus carota L.: two novel proteins display zygotic embryo specificity. Plant Cell Physiology 39: 49-56.
  • Dure LI. 1985. Embryogenesis and gene expression during seed formation. Plant Molecular and Cell Biology 2: 179-197.
  • Dure L, Crouch M, Harada J, Ho T-H. D, Mundy J, Quatrano R, Thomas T, and Sung Z. R. 1989. Common amino acid sequence domains among the LEA proteins of higher plants. Plant Molecular Biology 12: 475-486.
  • Finch-Savage WE, Pramanik SK, and Bewley JD. 1994. The expression of dehydrin proteins in desiccation-sensitive (recalcitrant) seeds of temperate trees. Planta 193: 478-485.
  • Gallardo K, Job C, Groot SPC, Puype M, Demol H, Vandekerckhove J, and Job D. 2001. Proteomic analysis of Arabidopsis seed germination and priming. Plant Physiology 126: 835-848.
  • Gee HO, Propert RJ, and Coomber SA. 1994. Dehydrin-like proteins and desiccation tolerance in seeds. Seed Science Research 4: 135-141.
  • Goldberg RB, Barker SJ, and Perez-Grau L. 1989. Regulation of gene expression during plant embryogenesis. Cell 56: 149-160.
  • Hance BA, and Bevington JM. 1992. Changes in protein synthesis during stratification and dormancy release in embryos of sugar maple (Acer saccharum). Physiologia Plantarum 86: 365-371.
  • Hong TD, and Ellis RH. 1992. Development of desiccation tolerance in Norway maple (Acer platanoides L.) seeds during maturation drying. Seed Science Research 2: 169-172.
  • Heukeshoven J, and Dernick R. 1985. Simplified method for silver staining of proteins in polyacrylamide gels and the mechanism of silver staining. Electrophoresis 6: 103-112.
  • Kermode AR, and Bewley JD. 1985. The role of maturation drying in the transition from seed development to germination. I. Acquisition of desiccation-tolerance and germination ability during development of Ricinus communis L. seeds. Journal of Experimental Botany 36: 1906-1915.
  • Kermode AR, Pramanik SK, and Bewley JD. 1989. The role of maturation drying in the transition from seed development to germination. VI. Desiccation-induced changes in messenger RNA populations within the endosperm of Ricinus communis L. seeds. Journal of Experimental Botany 36: 1928-1936.
  • Klose J. 1983. In: Tschesche H [ed.], Modern methods in protein chemistry, 49-78. Walter de Gruyter Verlag.
  • Laemmli UK. 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227: 680-685.
  • Misra S. 1994. Conifer zygotic embryogenesis, somatic embryogenesis, and seed germination: Biochemical and molecular advances. Seed Science Research 4: 357-384.
  • Misra S, and Bewley JD. 1985. Reprogramming of protein synthesis from a developmental to a germinative mode induced by desiccation of the axes of Phaseolus vulgaris. Plant Physiology 78: 876-882.
  • Nicolas C, Nicolas G, and Rodriguez D. 1996. Antagonistic effects of abscisic acid and gibberellic acid on the breaking of dormancy of Fagus sylvatica seeds. Physiologia Plantarum 96: 244-250.
  • Nicolas C, Rodriguez D, Poulsen F, Eriksen EN, and Nicolas G. 1997. The expression of an abscisic acid-responsive glycine-rich protein coincided with the level of seed dormancy in Fagus sylvatica. Plant Cell Physiology 38: 1303-1310.
  • Pawłowski T, and Szczotka Z. 1997. Qualitative changes in protein content during cold and warm stratification of Norway maple (Acer platanoides L.) seeds. Seed Science Research 7: 385-390.
  • Pawłowski T, and Szczotka Z. 2001. Qualitative changes in the proteins of cotyledons during cold and warm stratification of Acer platanoides seeds. Acta Societatis Botanicorum Poloniae 70: 17-23.
  • Pawłowski T, Szczotka Z, and Krawiarz K. 1997. Qualitative changes and dynamics of protein synthesis during cold and warm stratification of Norway maple (Acer platanoides L.) seeds. Acta Societatis Botanicorum Poloniae 66: 333-341.
  • Pelah D, Shoseyov O, Altman A, and Bartels D. 1997. Water-stress response in aspen (Populus tremula): differential accumulation of dehydrin, sucrose synthase, GAPDH homologues, and soluble sugars. Journal of Plant Physiology 151: 96-100.
  • Pukacka S. 1998. Charakterystyka rozwoju nasion klonu zwyczajnego (Acer platanoides L.) i jaworu (Acer pseudoplatanus L.). Arboretum Kórnickie 43: 97-104.
  • Pukacka S, and Wojkiewicz E. 2002. Carbohydrate metabolism in Norway maple and sycamore seeds in relation to desiccation tolerance. Journal of Plant Physiology 159: 273-279.
  • Schneider WL, and Gifford DJ. 1994. Loblolly pines seed dormancy. I. The relationship between protein synthesis and the loss of dormancy. Physiologia Plantarum 90: 246-252.
  • Thomas TL. 1993. Gene expression during plant embryogenesis and germination: an overview. Plant Cell 5: 1401-1410.
  • Walker-Simmons M. 1987. ABA levels and sensitivity in developing wheat embryos of sprouting resistant and susceptible cultivars. Plant Physiology 84: 61-66.
  • Yeoung YR, Wilson DO, and Murray GA. 1989. Germination performance and loss of late-embryogenesis-abundant (LEA) proteins during muskmelon seed priming. Seed Science and Technology 24: 429-439.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-article-185b5f45-d41a-4e7a-b8b8-db9b9196ffbe
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.