DOES ILLUMINATION OF NON-MATURE CEREAL KERNELS DURING DRYING AFFECT THE GERMINATION ABILITY?

Elżbieta Małuszyńska


Plant Breeding and Acclimatization Institute - National Research Institute, Radzików, 05-870 Błonie, Poland (Poland)

Piotr Stefański


Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland (Poland)

Przemysław Matysik


Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland (Poland)

Zygmunt Nita


Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland (Poland)

Krystyna Rybka


Plant Breeding and Acclimatization Institute - National Research Institute, Radzików, 05-870 Błonie, Poland (Poland)


Abstrakt

The principle of the market competitiveness of breeding companies implicates a fast production of new varieties. One way to achieve this goal brings single seed descent (SSD) methodology, which requires kernels collection (18-23 days after pollination) , fast drying amd germination. Seed drying conditions influence the germination. In present work the influence of lightings: Sanyo LED and incandescent lamp vs. dark control during drying were studied. Kernels were harvested 18 and 23 days after pollination of wheat, triticale and barley cultivars grown in the same field experiment in 2015. It was found that: • the germination ability of non-mature kernels depends on all studied factors: lighting during drying, terms of harvesting and the interaction light * term; • non mature kernelsare more sensitive to drying conditions; • lighting during seeds drying can have a positive effect on ability to germination; • for breeding practice it would be better to harvest kernels at 23 DAF and dry them at room conditions under incandescent lamp.


Słowa kluczowe:

barley, H. vulgare, L., LED lighting, triticale (x Triticosecale), wheat (T. aestivum, L.)

Argyris, J., Dahal, P., Hayashi, E., Still, D.W., Bradford, K.J., 2008. Genetic Variation for Lettuce Seed Thermoinhibition Is Associated with Temperature-Sensitive Expression of Abscisic Acid, Gibberellin, and Ethylene Biosynthesis, Metabolism, and Response Genes. Plant Physiol. 148, 926-947.
Google Scholar

Balla, L., 1979.The germination of immature winter wheat seeds. II. Cereal Res. Com. 7, 103-111.
Google Scholar

Bentsink, L., Koornneef, M., 2008. Seed Dormancy and Germination. The Arabidopsis Book / American Society of Plant Biologists 6, e0119.
Google Scholar

Bewley, J.D., Black, M., 1994. Seeds; Physiology of development and germination. New York: Plenum Press.
Google Scholar

Ge, S., Smith, R.G., Jacovides, C.P., Kramer, M.G., Carruthers, R.I., 2011. Dynamics of photosynthetic photon flux density (PPFD) and estimates in coastal northern California. Theor. Appl. Climatol. 105, 107-118.
Google Scholar

Gong, X., Li, C., Zhou, M., Bonnardeaux, Y., Yan, G., 2014. Seed dormancy in barley is dictated by genetics, environments and their interactions. Euphytica 197, 355-368.
Google Scholar

Grzesiuk S. Kulka K. 1981. Kiełkowanie nasion o różnym stopniu dojrzałości. In: Fizjologia i biochemia nasion. PWRiL Warszawa pp. 400-402 (in Polish)
Google Scholar

Grzesiuk, S., Kulka, K., 1988. Zależność kiełkowania ziarniaków od ich właściwości i wpływu czynników środowiskowych. In: Biologia ziarniaków zbóż. Grzesiuk S. Kulka K. (ed.) PWN Warszawa. pp. 445-455 (in Polish)
Google Scholar

Gubler, F., Hughes, T., Waterhouse, P., Jacobsen, J., 2008. Regulation of Dormancy in Barley by Blue Light and After-Ripening: Effects on Abscisic Acid and Gibberellin Metabolism. Plant Physiol. 147, 886-896.
Google Scholar

ISTA. International Seed Testing Association. 2015. ISTA Rules. Polish edition. Małuszyńska, E., Wiewióra, B., Rybka, K., Drzewiecki, J., Boros, L., Szydłowska, A, (ed.), IHAR-PIB, Poland
Google Scholar

Kong, S., Okajima, K., 2016. Diverse photoreceptors and light responses in plants. J. Plant Res. 129, 111-114.
Google Scholar

Kopcewicz, J., 1980. Rola fitochormonu we wzroście i rozwoju roślin. Wiad. Bot. 24 /1, 67-84 (in Polish).
Google Scholar

Koornneef, M., Bentsink, L., Hilhorst, H., 2002. Seed dormancy and germination. Curr. Opin. Plant Biol. 5, 33-36.
Google Scholar

Lau, O.S., Deng, X.W., 2010. Plant hormone signaling lightens up: integrators of light and hormones. Curr. Opin. Plant Biol. 13, 571-577.
Google Scholar

Lityński, M., 1982. Dojrzewanie i spoczynek nasion In: Biologiczne podstawy nasiennictwa. Wyd. 2 popr. Lityński, M., (ed.) PWN Warszawa. pp:36-64 (in Polish).
Google Scholar

Lityński, M., Urbaniak, Z., 1958. Obserwacje nad wpływem światła na nasiona niektórych gatunków roślin w czasie ich przechowywania. Plant Beed. Seed Sci . (formerly: Hod. Roś. Aklim. Nas. ) 2(1), 21-66.
Google Scholar

Masojć, P., Milczarski, P., 2009. Relationship between QTLs for preharvest sprouting and alphaamylase activity in rye grain. Mol. Breed. 23, 75-84.
Google Scholar

Munkvold, J.D., Tanaka, J., Benscher, D., Sorrells, M.E., 2009. Mapping quantitative trait loci for preharvest sprouting resistance in white wheat. TAG 119, 1223-1235.
Google Scholar

Piskurewicz, U., Turečková, V., Lacombe, E., Lopez-Molina, L., 2009. Far-red light inhibits germination through DELLA-dependent stimulation of ABA synthesis and ABI3 activity. The EMBO J. 28, 2259-2271.
Google Scholar

Pokojska, H., Grzelak, K., 1994. Development of dormancy in triticale seeds under field conditions. Plant Beed. Seed Sci . (formerly: Hod. Roś. Aklim. Nas. ) 38 (1/2), 127-135.
Google Scholar

Rybka, K., 1994. The structure and properties of grain non-starch polysaccharides. Post. Nauk Roln. 94, 77-87 (in Polish).
Google Scholar

Rybka, K., Boros, D., Raczyńska-Bojanowska, K., Rakowska, M., Sawicka-Żukowska, R., Jędrychowska, B., 1988. Viscosity of Rye Grain Components. Mol. Nutr. Food Res. (formerly Nahrung )32, 795-800.
Google Scholar

Saulnier, L., Guillon, F., Chateigner-Boutin, A.L., 2012. Cell wall deposition and metabolism in wheat grain. J. Cereal Sci. 56, 91-108.
Google Scholar

Tibbitts, T., Morgan, D., Warrington, I., 1983. Growth of lettuce, spinach, mustard and wheat plants under four combinations of high-pressure sodium, metal halide and Tungsten Halogen Lamps at equal PPFD. J. Am. Soc. Hor. Sci. 108, 622-630.
Google Scholar

Warpeha, K.M., Montgomery, B.L., 2016. Light and hormone interactions in the seed-to-seedling transition. Env. Exp. Bot. 121, 56-65.
Google Scholar


Opublikowane
2016-06-20

Cited By / Share

Małuszyńska, E., Stefański, P., Matysik, P., Nita, Z., & Rybka, K. (2016). DOES ILLUMINATION OF NON-MATURE CEREAL KERNELS DURING DRYING AFFECT THE GERMINATION ABILITY?. Plant Breeding and Seed Science, 73, 13–23. Pobrano z http://ojs.ihar.edu.pl/index.php/pbss/article/view/229

Autorzy

Elżbieta Małuszyńska 

Plant Breeding and Acclimatization Institute - National Research Institute, Radzików, 05-870 Błonie, Poland Poland

Autorzy

Piotr Stefański 

Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland Poland

Autorzy

Przemysław Matysik 

Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland Poland

Autorzy

Zygmunt Nita 

Plant Breeding Strzelce Ltd. Co., ul. Główna 20, 99-307 Strzelce, Poland Poland

Autorzy

Krystyna Rybka 

Plant Breeding and Acclimatization Institute - National Research Institute, Radzików, 05-870 Błonie, Poland Poland

Statystyki

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