Planta

, Volume 149, Issue 2, pp 170–175 | Cite as

The role of monovalent cations for photosynthesis of isolated intact chloroplasts

  • Werner M. Kaiser
  • Wolfgang Urbach
  • Hartmut Gimmler
Article

Abstract

The role of monovalent cations in the photosynthesis of isolated intact spinach chloroplasts was investigated. When intact chloroplasts were assayed in a medium containing only low concentrations of mono- and divalent cations (about 3 mval l-1), CO2-fixation was strongly inhibited although the intactness of chloroplasts remained unchanged. Addition of K+, Rb+, or Na+ (50–100 mM) fully restored photosynthesis. Both the degree of inhibition and restoration varied with the plant material and the storage time of the chloroplasts in “low-salt” medium. In most experiments the various monovalent cations showed a different effectiveness in restoring photosynthesis of low-salt chloroplasts (K+>Rb+>Na+). Of the divalent cations tested, Mg2+ also restored photosynthesis, but to a lesser extent than the monovalent cations.

In contrast to CO2-fixation, reduction of 3-phosphoglycerate was not ihibited under low-salt conditions. In the dark, CO2-fixation of lysed chloroplasts supplied with ATP, NADPH, and 3-phosphoglycerate strictly required the presence of Mg2+ but was independent of monovalent cations. This finding excludes a direct inactivation of Calvin cycle enzymes as a possible basis for the inhibition of photosynthesis under low-salt conditions.

Light-induced alkalization of the stroma and an increase in the concentration of freely exchangeable Mg2+ in the stroma, which can be observed in normal chloroplasts, did not occur under low-salt conditions but were strongly enhanced after addition of monovalent cations (50–100 mM) or Mg2+ (20–50 mM).

The relevance of a light-triggered K+/H+ exchange at the chloroplast envelope is discussed with regard to the light-induced increase in the pH and the Mg2+ concentration in the stroma, which are thought to be obligatory for light activation of Calvincycle enzymes.

Key words

Cations and photosynthesis Chloroplast (low-salt effects) Light activation (photosynthesis enzymes) Photosynthesis Spinacia 

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References

  1. Arnon, D.J. (1949) Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris. Plant Physiol. 24, 1–15Google Scholar
  2. Bennoun, P. (1974) Correlation between states I and II in algae and the effect of magnesium on chloroplasts. Biochim. Biophys. Acta 368, 141–147Google Scholar
  3. Cockburn, W., Walker, D.A., Baldry, C.W.: The isolation of spinach chloroplasts in pyrophosphate media. Plant Physiol. 43, 1415–1418 (1968)Google Scholar
  4. Demmig, B., Gimmler, H. (1979) Effect of divalent cation fluxes across the chloroplast envelope and on photosynthesis of intact chloroplasts. Z. Naturforsch. 34c, 233–241Google Scholar
  5. Gimmler, H., Schäfer, G., Heber, U. (1974) Low permeability of the chloroplast envelope towards cations. In: Proceedings of the third International Congress on Photosynthesis, vol. III, pp. 1381–1392, Avron, M., ed. Elsevier, AmsterdamGoogle Scholar
  6. Gross, E. (1972) Divalent cation binding to chloroplast membranes and its relationship to reversal of quaternary ammonium salt uncoupling of photophosphorylation. Arch. Biochem. Biophys. 150, 324–329Google Scholar
  7. Heber, U., Santarius, K.A. (1970) Direct and indirect transfer of ATP and ADP across the chloroplast envelope. Z. Naturforsch. 25b, 718–28Google Scholar
  8. Heilmann, B., Hartung, W., Gimmler, H. (1980) The distribution of abscicic acid between chloroplasts and cytoplasm of leaf cells and the permeability of the chloroplast envelope for abscicic acid. Z. Pflanzenphysiol. 97, 67–78Google Scholar
  9. Heldt, H.W. (1979) Light-dependent changes of stromal H+ and Mg2+ concentrations controlling CO2 fixation. In: Encyclopedia of plant physiology, Vol. 6, pp. 202–207, Pirson, A., Zimmermann, M.H., eds. Springer, Berlin Heidelberg New YorkGoogle Scholar
  10. Heldt, H.W., Sauer, F. (1971) The inner membrane of the chloroplast envelope as the site of specific metabolite transport. Biochim. Biophys. Acta 234, 83–91Google Scholar
  11. Huber, S.C. (1978a) Effect of pH on chloroplast photosynthesis. Inhibition of O2-evolution by inorganic phosphate and magnesium. Biochim. Biophys. Acta 545, 131–140Google Scholar
  12. Huber, S.C. (1978b) Regulation of chloroplast photosynthetic activity by exogenous magnesium. Plant Physiol. 62, 321–325Google Scholar
  13. Huber, S.C. (1979) Effect of photosynthetic intermediates on the magnesium inhibition of oxygen evolution by barley chloroplasts. Plant Physiol. 63, 754–757Google Scholar
  14. Huber, S.C., Maury, W. (1980) Effect of Mg2+ on intact chloroplasts. I. Evidence for activation of (Na+) K+/H+ exchange across the chloroplast envelope. Plant Physiol. 65, 350–354Google Scholar
  15. Kelly, G.J., Latzko, E. (1976) Regulatory aspects of photosynthetic carbon metabolism. Ann. Rev. Plant Physiol. 27, 181–202Google Scholar
  16. Marsho, T.V., Kok, B. (1974) Photosynthetic regulation by cations in spinach chloroplasts. Biochim. Biophys. Acta 333, 353–365Google Scholar
  17. Murata, M., Tashiro, H., Takamiya, A. (1970) Effects of divalent metal ions on chlorophyll a fluorescence in isolated spinach chloroplasts. Biochim. Biophys. Acta 197, 250–256PubMedGoogle Scholar
  18. Murata, N. (1971) Effects of monovalent cations on light energy distribution between two pigment systems of photosynthesis in isolated spinach chloroplasts. Biochim. Biophys. Acta 226, 422–432Google Scholar
  19. Nakatani, H.Y., Barber, J., Forester, J.A. (1978) Surface charges on chloroplast membranes as studied by particle electrophoresis. Biochim. Biophys. Acta. 504, 215–225Google Scholar
  20. Portis, A.R., Heldt, H.W. (1976) Light-dependent changes of the Mg2+ concentration in the stroma in relation to the Mg2+ dependency of CO2 fixation in intact chloroplasts. Biochim. Biophys. Acta 449, 434–446Google Scholar

Copyright information

© Springer-Verlag 1980

Authors and Affiliations

  • Werner M. Kaiser
    • 1
  • Wolfgang Urbach
    • 1
  • Hartmut Gimmler
    • 1
  1. 1.Lehrstuhl Botanik IBotanisches Institut der UniversitätWürzburgGermany

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