Increasing Sucrose Uptake Capacity of Wheat Grains Stimulates Storage Protein Synthesis

Author:

Weichert Nicola1,Saalbach Isolde1,Weichert Heiko1,Kohl Stefan1,Erban Alexander1,Kopka Joachim1,Hause Bettina1,Varshney Alok1,Sreenivasulu Nese1,Strickert Marc1,Kumlehn Jochen1,Weschke Winfriede1,Weber Hans1

Affiliation:

1. Leibniz-Institut fuݶr Pflanzengenetik und Kulturpflanzenforschung, D–06466 Gatersleben, Germany (N.W., I.S., H.W., S.K., A.V., N.S., M.S., J.K., W.W., H.W.); Max-Planck-Institut fuݶr Molekulare Pflanzenphysiologie, D–14476 Potsdam-Golm, Germany (A.E., J.K.); and Leibniz-Institut fuݶr Pflanzenbiochemie, D–06120 Halle (Saale), Germany (B.H.)

Abstract

Abstract Increasing grain sink strength by improving assimilate uptake capacity could be a promising approach toward getting higher yield. The barley (Hordeum vulgare) sucrose transporter HvSUT1 (SUT) was expressed under control of the endosperm-specific Hordein B1 promoter (HO). Compared with the wild type, transgenic HOSUT grains take up more sucrose (Suc) in vitro, showing that the transgene is functional. Grain Suc levels are not altered, indicating that Suc fluxes are influenced rather than steady-state levels. HOSUT grains have increased percentages of total nitrogen and prolamins, which is reflected in increased levels of phenylalanine, tyrosine, tryptophan, isoleucine, and leucine at late grain development. Transcript profiling indicates specific stimulation of prolamin gene expression at the onset of storage phase. Changes in gene expression and metabolite levels related to carbon metabolism and amino acid biosynthesis suggest deregulated carbon-nitrogen balance, which together indicate carbon sufficiency and relative depletion of nitrogen. Genes, deregulated together with prolamin genes, might represent candidates, which respond positively to assimilate supply and are related to sugar-starch metabolism, cytokinin and brassinosteroid functions, cell proliferation, and sugar/abscisic acid signaling. Genes showing inverse expression patterns represent potential negative regulators. It is concluded that HvSUT1 overexpression increases grain protein content but also deregulates the metabolic status of wheat (Triticum aestivum) grains, accompanied by up-regulated gene expression of positive and negative regulators related to sugar signaling and assimilate supply. In HOSUT grains, alternating stimulation of positive and negative regulators causes oscillatory patterns of gene expression and highlights the capacity and great flexibility to adjust wheat grain storage metabolism in response to metabolic alterations.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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