241
Views
39
CrossRef citations to date
0
Altmetric
Original Articles

Organic Acid Metabolism in Roots of Various Grapevine (Vitis) Rootstocks Submitted to Iron Deficiency and Bicarbonate Nutrition

, , , , &
Pages 2165-2176 | Published online: 14 Feb 2007

References

  • Varanini , Z. and Maggioni , A. 1982 . Iron reduction and uptake by grapevine roots . J. Plant Nutr. , 5 : 521 – 529 .
  • Brancadoro , L. , Rabotti , G. , Scienza , A. and Zocchi , G. 1995 . Mechanisms of Fe‐efficiency in roots of Vitis spp. in response to iron deficiency stress . Plant Soil , 171 : 229 – 234 .
  • Brancadoro , L. , Mastromauro , F. , Valenti , L. and Scienza , A. 1992 . Physiological bases of iron chlorosis resistance applied to grape rootstock breeding . Proceedings of the IVth International Symposium on Grapevine Physiology . 1992 , Torino , Italy. Edited by: Dalmasso , Fondazione Giovanni . pp. 335 – 338 .
  • Dell'Orto , M. , Brancadoro , L. , Scienza , A. and Zocchi , G. 2000 . Use of biochemical parameters to select grapevine genotypes resistant to iron chlorosis . J. Plant Nutr. , 23 : 1767 – 1775 .
  • Nikolic , M. , Römheld , V. and Merkt , N. 2000 . Effect of bicarbonate on uptake and translocation of 59Fe in two grapevine rootstocks differing in their resistance to Fe deficiency chlorosis . Vitis , 39 : 145 – 149 .
  • Landsberg , E. C. 1981 . Organic acid synthesis and release of hydrogen ions in response to Fe‐deficiency stress of mono‐ and dicotyledonous plant species . J. Plant Nutr. , 3 : 579 – 591 .
  • Abadía , J. , López‐Millán , A‐F. , Rombolà , A. and Abadía , A. 2002 . Organics acids and Fe deficiency: a review . Plant Soil , 241 : 75 – 86 .
  • Bienfait , H. F. 1996 . Is there a metabolic link between H+ excretion and ferric reduction by roots of Fe‐deficient plants?—A viewpoint . J. Plant Nutr. , 19 : 1211 – 1222 .
  • Rabotti , G. , De Nisi , P. and Zocchi , G. 1995 . Metabolic implications in the biochemical responses to iron deficiency in cucumber (Cucumis sativus L.) roots . Plant Physiol. , 107 : 1195 – 1199 .
  • De Nisi , P. and Zocchi , G. 2000 . Phosphoenolpyruvate carboxylase in cucumber (Cucumis sativus L.) roots under iron deficiency: activity and kinetic characterization . J. Exp. Bot. , 51 : 1903 – 1909 .
  • Rombolà , A. D. , Brüggemann , W. , López‐Millán , A. F. , Tagliavini , M. , Abadía , J. , Marangoni , B. and Moog , P. R. 2002 . Biochemical responses to iron deficiency in kiwifruit (Actinidia deliciosa) . Tree Physiol. , 22 : 869 – 875 .
  • López‐Millán , A. F. , Morales , F. , Andaluz , S. , Gogorcena , Y. , Abadía , A. , De Las Rivas , J. and Abadía , J. 2000 . Responses of sugar beet roots to iron deficiency. Changes in carbon assimilation and oxygen use . Plant Physiol. , 124 : 885 – 897 .
  • Moing , A. , Carbonne , F. , Rashad , M. H. and Gaudillère , J. P. 1992 . Carbon fluxes in mature peach leaves . Plant Physiol. , 100 : 1878 – 1884 .
  • Diakou , P. , Svanella , L. , Raymond , P. , Gaudillère , J. P. and Moing , A. 2000 . Phospho‐ enol‐pyruvate carboxylase during grape berry development, protein level, enzyme activity and regulation . Aust. J. Plant Physiol. , 27 : 221 – 229 .
  • Bradford , M. 1976 . A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein‐dye binding . Anal. Biochem. , 72 : 248 – 254 .
  • Ruffner , H. P. 1982 . Metabolism of tartaric and malic acids in Vitis: a review . Vitis , 2 : 247 – 259 .
  • Brancadoro , L. , Vanoli , M. and Zocchi , G. 1996 . Adaptative responses to high concentration of HCO3 − in “Cabernet Sauvignon.” . Acta Horticulturae , 427 : 75 – 81 .
  • Pouget , R. and Ottenwalter , M. 1978 . Etude de l'adaptation de nouvelles variétés de porte‐greffes à des sols très chlorosants . Connaissance de la Vigne et du Vin , : 167 – 175 .
  • Mengel , K. , Breininger , M. T. and Bübl , W. 1984 . Bicarbonate, the most important factor inducing iron chlorosis in vine grapes on calcareous soil . Plant Soil , 81 : 333 – 344 .
  • Chollet , R. , Vidal , J. and O'Leary , M. H. 1996 . Phosphoenolpyruvate carboxylase: an ubiquitous, highly regulated enzyme in plants . Ann. Rev. Plant Physiol. Plant Mol. Biol. , 47 : 273 – 298 .

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.