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Inorganic pyrophosphate content and metabolites in potato and tobacco plants expressing E. coli pyrophosphatase in their cytosol

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Abstract

Metabolite levels and carbohydrates were investigated in the leaves of tobacco (Nicotiana tabacum L.) and leaves and tubers of potato (Solanum tuberosum L.) plants which had been transformed with pyrophosphatase from Escherichia coli. In tobacco the leaves contained two- to threefold less pyrophosphate than controls and showed a large increase in UDP-glucose, relative to hexose phosphate. There was a large accumulation of sucrose, hexoses and starch, but the soluble sugars increased more than starch. Growth of the stem and roots was inhibited and starch, sucrose and hexoses accumulated. In potato, the leaves contained two- to threefold less pyrophosphate and an increased UDP-glucose/ hexose-phosphate ratio. Sucrose increased and starch decreased. The plants produced a larger number of smaller tubers which contained more sucrose and less starch. The tubers contained threefold higher UDP-glucose, threefold lower hexose-phosphates, glycerate-3-phosphate and phosphoenolpyruvate, and up to sixfold more fructose-2,6-bisphosphatase than the wild-type tubers. It is concluded that removal of pyrophosphate from the cytosol inhibits plant growth. It is discussed how these results provide evidence that sucrose mobilisation via sucrose synthase provides one key site at which pyrophosphate is needed for plant growth, but is certainly not the only site at which pyrophosphate plays a crucial role.

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Abbreviations

Fru2,6bisP:

fructose-2,6-bisphosphate

Fru6P:

fructose 6-phosphate

FW:

fresh weight

Glc1P:

glucose-1-phosphate

Glc6P:

glucose-6-phosphate

PEP:

phosphoenolpyruvate

3PGA:

glycerate-3-phosphate

PFK:

phosphofructokinase

PFP:

pyrophosphate: fructose-6-phosphate phosphotransferase

Pi:

inorganic phosphate

PPi:

inorganic pyrophosphate

UDPGlc:

UDP-glucose

References

  • ap Rees, T. (1984) Sucrose metabolism. In: Storage carbohydrates in vascular plants, pp. 53–73, Lewis D.H., ed., Cambridge University Press, Cambridge

    Google Scholar 

  • Dancer, J.E., ap Rees, T. (1989) Phosphoribosyl pyrophosphate and the measurement of inorganic pyrophosphate in plant tissues. Planta 177, 261–264

    Google Scholar 

  • Dennis, D.T., Greyson, M. (1987) Fructose 6 phosphate metabolism in plants. Physiol. Plant. 69, 395–404

    Google Scholar 

  • Doehlert, D.C., Chourey, P.S. (1991) Possible roles of sucrose synthesis in sink function. In: Recent advances in phloem transport and assimilate compartmentation, pp. 187–195, Bonnemain, J.-L., Delrot, S., Lucas, W.J., Dainty, J. eds., Ouest Editions, Nantes

    Google Scholar 

  • Gross, P., ap Rees, T. (1986) Alkaline inorganic pyrophosphatase and starch synthesis in plastids. Planta 167, 140–145

    Google Scholar 

  • Hajirezaei, M., Stitt, M. (1991) Contrasting roles for pyrophosphate:fructose-6-phosphate phosphotransferase during aging of tissue slices from potato tubers and carrot roots. Plant Sci. 77, 177–183

    Google Scholar 

  • Maas, C., Schaal, S., Werr, W. (1990) A feedback control element near the transcription start site of alkaline inorganic pyrophosphatase in maize seedlings EMBO J. 9, 3447–3452

    Google Scholar 

  • Murphy, J., Riley, J.P. (1962) A modified single solution method for determination of phosphate in natural waters. Anal. Chim. Acta 27, 31–36

    Google Scholar 

  • Neuhaus, H.E., Stitt, M. (1991) Inhibition of photosynthetic sucrose synthesis by imidodiphosphate, an analog of inorganic pyrophosphate. Plant Sci. 76, 49–55

    Google Scholar 

  • Quick, W.P., Neuhaus, H.E., Feil, R., Stitt, M. (1988) Fluoride leads to an increase of inorganic pyrophosphate and an inhibition of photosynthetic sucrose synthesis in spinach leaves. Biochim. Biophys. Acta 973, 263–271

    Google Scholar 

  • Quick, W.P., Siegl, G., Neuhaus, H.E., Feil, R., Stitt, M. (1991) Water stress leads to a stimulation of sucrose synthesis by activating sucrose-phosphate synthase. Planta 177, 535–546

    Google Scholar 

  • Rea, P., Sanders, D.A. (1987) Tonoplast energisation: two H+ pumps, one membrane. Physiol. Plant. 71, 131–141

    Google Scholar 

  • Roberts, J.K.M. (1990) Observation of uridine triphosphate: glucose-1-phosphate uridyltransferase activity in maize root tips by saturation transfer 31P-NMR. Estimation of cytoplasmic PPi. Biochim. Biophys. Acta 1051, 29–36

    Google Scholar 

  • Salanoubat, M., Belliard, G. (1989) The steady state level of potato sucrose synthase mRNA is dependent on wounding, anaerobiosis and sucrose concentration. Gene 84, 81–85

    Google Scholar 

  • Sonnewald, U., Brauer, M., von Schwaerer, A., Stitt, M., Willmitzer, L. (1991) Transgenic tobacco plants expressing yeastderived invertase in either the cytosol, vacuole or apoplast: a powerful tool for studying sucrose metabolism and sink/source interactions. Plant J. 1, 95–100

    Google Scholar 

  • Sonnewald, U. (1992) Expression of E. coli inorganic pyrophosphatase in transgenic plants alters photoassimilate partitioning in leaves of transgenic plants. Plant J., in press

  • Stitt, M. (1990) Fructose-2,6-bisphosphate as a regulatory metabolite in plants. Annu. Rev. Plant Physiol. Plant Mol. Biol. 41, 153–185

    Google Scholar 

  • Stitt, M., Lilley, R.Mc.C., Gerhardt, R., Heldt, M.W. (1989) Determination of metabolite levels in specific cells and subcellular compartments of plant leaves. Methods Enzymol. 174, 518–552

    Google Scholar 

  • Stitt, M., von Schaewen, A., Willmitzer, L. (1991) “Sink” regulation of photosynthetic metabolism in transgenic tobacco plants expressing yeast invertase in their cell wall involves a decrease of the Calvin-cycle enzymes and an increase of glycolytic enzymes. Planta 183, 40–50

    Google Scholar 

  • Stryer, L. (1990) Biochemie. Springer, Heidelberg

    Google Scholar 

  • Taliercio, E.W., Chourey, P.S. (1989) Post-transcriptional control of sucrose synthase in anaerobic seedlings of maize. Plant Physiol. 90, 1359–1364

    Google Scholar 

  • Von Schaewen, A., Sonnewald, U., Willmitzer, L. (1990) Expression of a yeast-derived invertase in the cell wall of tobacco and Arabodopsis plants lead to accumulation of carbohydrate and inhibition of photosynthesis, and strongly influences growth and phenotype of transgenic tobacco plants. EMBO J. 9, 3033–3044

    Google Scholar 

  • Weiner H., Stitt, M., Heldt, H.W. (1987) Subcellular compartmentation of pyrophosphate and alkaline pyrophosphatase in leaves. Biochem. Biophys. Acta 893, 18–21

    Google Scholar 

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This research was supported by the Deutsche Forschungsgemein-Schaft (SFB 137) and Sandoz AG (T.J., M.H., M.S.) and by the Bundesminister für Forschung und Technologie (U.S., L.W.).

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Jelitto, T., Sonnewald, U., Willmitzer, L. et al. Inorganic pyrophosphate content and metabolites in potato and tobacco plants expressing E. coli pyrophosphatase in their cytosol. Planta 188, 238–244 (1992). https://doi.org/10.1007/BF00216819

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