biologia plantarum

International journal on Plant Life established by Bohumil Nìmec in 1959

Biologia plantarum 52:674-680, 2008 | DOI: 10.1007/s10535-008-0130-4

Effect of different oxygen availability on the nitrate reductase activity in Cucumis sativus roots

M. Reda1,*, G. K³obus1
1 Plant Physiology Department, Institute of Plant Biology, Wroc³aw University, Wroc³aw, Poland

The effect of different oxygen availability on the nitrate reductase (NR, EC 1.6.6.1) activity in cucumber roots was studied. NR activity measured in the presence of Mg2+ (actual NR activity) as well as activity measured with EDTA (maximum NR activity) increased distinctly after 30 min of root incubation in a medium flushed with N2 (anaerobic conditions). In contrast, aeration of roots (aerobic conditions) decreased both enzyme activities. Such inactivation of NR was rapidly reversed after transferring the roots to anaerobic conditions. An air-induced decrease of the actual enzyme activity was prevented by staurosporin, a protein kinase inhibitor; whereas microcistin LR, an inhibitor of protein phosphatases, completely eliminated the reactivation of NR actual activity under limited oxygen availability. An increase of the NR actual activity in roots incubated in a nitrogen-flushed buffer was correlated with a lower content of ATP in root tissues. These data suggest that reversible protein phosphorylation is involved in the regulation of NR activity under limited oxygen. On the other hand, feeding roots with inhibitors of protein kinases as well as phosphatases did not affect the maximal activity of NR indicating that other modification(s) of enzyme activity could also function in cucumber roots. Since the changes in the expression level of gene encoding nitrate reductase (CsNR) under different oxygen availability were not correlated with the enzyme activity, the transcription level of oxygen action was excluded. On the other hand, it was demonstrated that oxygen-induced alteration of NR was dependent on the ratio of oxidized/reduced pyridine nucleotides in tissues. In aerobic conditions, when maximal NR activity was inhibited, a drop of the NAD(P)H level was also observed. These data point to hysteretic modifications of NR protein induced by NAD(P)H as the target of reversible and rapid changes in maximal enzyme activity under different oxygen availability.

Keywords: actual and maximum NR activities; cucumber; posttranslational regulation
Subjects: cucumber; Cucumis sativus; in vitro culture, rooting; nitrate reductase; oxygen consumption

Received: January 12, 2007; Accepted: July 9, 2007; Published: December 1, 2008  Show citation

ACS AIP APA ASA Harvard Chicago Chicago Notes IEEE ISO690 MLA NLM Turabian Vancouver
Reda, M., & K³obus, G. (2008). Effect of different oxygen availability on the nitrate reductase activity in Cucumis sativus roots. Biologia plantarum52(4), 674-680. doi: 10.1007/s10535-008-0130-4
Download citation

References

  1. Athwal, G.S., Huber, S.C.: Divalent cations and polyamines bind to loop8 of 14-3-3 proteins, modulating their interaction with phosphorylated nitrate reductase.-Plant J. 29: 119-129, 2002. Go to original source...
  2. Bachmann, M., McMichael, R.W., Jr., Huber, J.L., Kaiser, W.M., Huber, S.C.: Partial purification and characterization of a calcium-dependent protein kinase and an inhibitor protein required for inactivation of spinach leaf nitrate reductase.-Plant Physiol. 108: 1083-1091, 1995. Go to original source...
  3. Bachmann, M., Shiraishi, N., Campbell, W.H., Yoo, B.C., Harmon, A.C., Huber, S.C.: Identification of Ser-543 as a major regulatory phosphorylation site in spinach leaf nitrate reductase.-Plant Cell 8: 505-517, 1996a. Go to original source...
  4. Bachmann, M., Huber, J.L., Liao, P.C., Gage, D.A., Huber, S.C.: The inhibitor protein of phosphorylated nitrate reductase from spinach (Spinacia oleracea) leaves is a 14-3-3 protein.-FEBS Lett. 387: 127-131, 1996b. Go to original source...
  5. Bortel, A., Kaiser, W.M.: Nitrate reductase activation state in barley roots in relation to the energy and carbohydrate status.-Planta 201: 496-501, 1997. Go to original source...
  6. Campbell, W.H.: Nitrate reductase structure, function and regulation: bridging the gap between biochemistry and physiology.-Annu. Rev. Plant Physiol. Plant mol. Biol. 50: 277-303, 1999. Go to original source...
  7. Carrier, J.M., Neve, N.: Oxidation-reduction states of pyridine nucleotides measured by an adapted enzymatic cycling method in maize leaves submitted to anoxia.-Photosynthetica 13: 323-331, 1979.
  8. De la Haba, P., Agüera, E., Benítez, L., Maldonado, J.M.: Modulation of nitrate reductase activity in cucumber (Cucumis sativus) roots.-Plant Sci. 161: 231-237, 2001. Go to original source...
  9. Douglas, P., Morrice, N., MacKintosh, C.: Identification of a regulatory phosphorylation site in hinge 1 region of nitrate reductase from spinach (Spinacea oleracea) leaves.-FEBS Lett. 377: 113-117, 1995. Go to original source...
  10. Glaab, J., Kaiser, W.M.: Rapid modulation of nitrate reductase in pea roots.-Planta 191: 173-179, 1993. Go to original source...
  11. Glaab J., Kaiser, W.M.: Increased nitrate reductase activity in leaf tissue after application of the fungicide Kresoxim-methyl.-Planta 207: 442-448, 1999. Go to original source...
  12. Huber, J.L., Huber, S.C., Campbell, W.H., Redinbaugh, M.G.: Reversible light/dark modulation of spinach leaf nitrate reductase activity involves protein phosphorylation.-Arch. Biochem. Biophys. 296: 58-65, 1992. Go to original source...
  13. Huber, S.C., Huber, J.L.: Metabolic activators of spinach leaf nitrate reductase: effects on enzymatic activity and dephosphorylatioin by endogenus phosphatases.-Planta 196: 180-189, 1995. Go to original source...
  14. Juszczuk, I.M., Rychter, A.M.: Changes in pyridine nucleotide levels in leaves and roots of bean plants (Phaseolus vulgaris L.) during phosphate deficiency.-J. Plant Physiol. 151: 399-404, 1997. Go to original source...
  15. Kaiser, W.M., Huber, S.C.: Posttranslational regulation of nitrate reductase in higher plants.-Plant Physiol. 106: 817-821, 1994. Go to original source...
  16. Kaiser, W.M., Huber, S.C.: Correlation between apparent activation state of nitrate reductase (NR), NR hysteresis and degradation of NR.-J. exp. Bot. 48: 1367-1374, 1997. Go to original source...
  17. Kaiser, W.M., Huber, S.C.: Post-translational regulation of nitrate reductase: mechanism, physiological relevance and environmental triggers.-J. exp. Bot. 52: 1981-1989, 2001. Go to original source...
  18. Kaiser, W.M., Kandlbinder, A., Stoimenowa, M., Glaab J.: Discrepancy between nitrate reduction rates in intact leaves and nitrate reductase activity extracts. What limits nitrate reduction in situ?-Planta 210: 801-807, 2000. Go to original source...
  19. Kaiser, W.M., Weiner, H., Huber, S.C.: Nitrate reductase in higher plants: a case study for transduction of environmental stimuli into control of catalytic activity.-Physiol. Plant. 105: 385-390, 1999. Go to original source...
  20. Lea, U.S., Ten Hoopen, F., Provan, F., Kaiser, W.M., Meyer, C., Lillo, C.: Mutation of the regulatory phosphorylation site of tobacco nitrate reductase results in high nitrite excretion and NO emission from leaf and root tissue.-Planta 219: 59-65, 2004. Go to original source...
  21. Lechevallier, D., Vermeersch, J., Monéger, R.: Micro-analyse du NADP+ et du NAD+ réduits et oxydés dans les tissus foliaires et dans les plastes isolés de Spirodéle et de Blé. 2. Méthode d'analyse des nucléotides pyridiniques de tissus végétoux.-Physiol. vég. 15: 63-93, 1977.
  22. Li, X.Z., Oaks, A.: Induction and turnover of nitrate reductase in Zea mays. Influence of NO3 -.-Plant Physiol. 102: 1251-1257, 1993. Go to original source...
  23. Lillo, C.: Light/dark regulation of higher plant nitrate reductase related to hysteresis and calcium/magnesium inhibition.-Physiol. Plant. 91: 295-299, 1994. Go to original source...
  24. Lillo, C., Meyer, C., Lea, U.S., Provan, F., Oltedal, S.: Mechanism and importance of post-translational regulation of nitrate reductase.-J. exp. Bot. 55: 1275-1282, 2004. Go to original source...
  25. Lillo, C., Ruoff, P.: Hysteretic behavior of nitrate reductase. Evidence of an allosteric binding site for reduced pyridine nucleotides.-J. biol. Chem. 267: 13456-13459, 1992. Go to original source...
  26. Reda, M., K³obus, G.: Modifications of the activity of nitrate reductase from cucumber roots.-Biol. Plant. 50: 42-47, 2006. Go to original source...
  27. Ricard, B., Couee, I., Raymond, P., Saglio, P.H., Saint-Ges, V., Pradet, A.: Plant metabolism under hypoxia and anoxia.-Plant Physiol. Biochem. 32: 1-10, 1994.
  28. Saint-Ges, V., Roby, C., Blingy, R., Pradet, A., Douce, C.: Kinetic studies of the variations of cytoplasmic pH, nucleotide triphosphates(31P-NMR) and lactate transitions in maize roots tips.-Eur. J. Biochem. 200: 477-482, 1991. Go to original source...
  29. Su, W., Huber, S.C., Crawford, N.M.: Identification in vitro of a post-translational regulatory site in the hinge 1 region of Arabidopsis nitrate reductase.-Plant Cell 8: 519-527, 1996. Go to original source...