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Root-shoot interactions in mineral nutrition

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Abstract

In this paper four classes of co-operative root-shoot interations are addressed. (I) Nitrogen concentrations in the xylem sap originating from the root and in the phloem sap as exported from source leaves are much lower than those required for growth by apices and developing organs. Enrichment of xylem sap N is achieved by xylem to xylem (X-X) transfer, by which reduced N, but not nitrate, is abstracted from the xylem of leaf traces and loaded into xylem vessels serving the shoot apex. Nitrogen enrichment of phloem sap from source leaves is enacted by transfer of reduced N from xylem to phloem (X-P transfer). Quantitative data for the extent of the contribution of X-X and X-P transfer to the nutrition of young organs of Ricinus communis L. and for their change with time are presented. (II) Shoot and root cooperate in nitrate reduction and assimilation. The partitioning of this process between shoot and root is shifted towards the root under conditions of nitrate- and K-deficiency and under salt stress, while P deficiency shifts nitrate reduction almost totally to the shoot. All four changes in partitioning can be attributed to the need for cation-anion balance during xylem transport and the change in electrical charge occurring with nitrate reduction. (III) Even maintenance of the specificity of ion uptake by the root may – in addition to its need for energy – require a shoot-root interaction. This is shown to be needed in the case of the maintenance of K/Na selectivity under the highly adverse condition of salt stress and absence of K supply from the soil. (IV) Hormonal root to shoot interactions are required in the whole plant for sensing mineral imbalances in the soil. This is shown and addressed for conditions of salt stress and of P deficiency, both of which lead to a strong ABA signalling from root to shoot but result in different patterns of response in the shoot.

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References

  • Allen G J, Wyn Jones R G and Leigh R A 1995 Sodium transport in plasma membrane vesicles isolated from wheat genotypes with different K+/Na+ discrimination traits. Plant Cell Environ. 18, 105–115.

    Google Scholar 

  • Amtmann A, Laurie S, Leigh R and Sanders D 1997 Multiple inward channels provide flexibility in Na+/K+ discrimination at the plasma membrane of barley suspension culture cells. J. Exp. Bot. 48, 481–497.

    Google Scholar 

  • Andrews M 1986. The partitioning of nitrate assimilation between root and shoot of higher plants. Plant Cell Environ. 9, 511–519.

    Google Scholar 

  • Barkla B J and Pantoja O 1996 Physiology of ion transport across the tonoplast of higher plants. Annu. Rev. Plant Physiol. Mol. Biol. 47, 159–184.

    Google Scholar 

  • Barlow P W 1994 The origin, diversity and biology of shoot-borne roots. In The biology of adventitious root formation. Eds. T D Davies and B E Haissig. pp 1–23. Plenum Press, New York.

    Google Scholar 

  • Brewitz E, Larsson C M and Larsson M 1995. Influence of nitrate supply on concentrations and translocation of abscisic acid in barley (Hordeum vulgare). Physiol. Plant. 95, 499–506.

    Google Scholar 

  • Cramer M D, Schierholt A, Wang Y Z and Lips S H 1995. The influence of salinity on the utilization of root anaplerotic carbon and nitrogen metabolism in tomato roots. J. Exp. Bot., 46, 1569–1577.

    Google Scholar 

  • Davies W J and Zhang J 1991 Root signals and the development of plants growing in drying soil. Annu. Rev. Plant Physiol. Mol. Biol. 42, 55–76.

    Google Scholar 

  • Dupont F M 1992 Salt-induced changes in ion transport: regulation of primary pumps and secondary transporters. In Transport and receptor proteins of plant membranes. Molecular structure and function. Eds. D T Clarkson and D T Cook. pp 91–100. Plenum Press, New York.

    Google Scholar 

  • Engels C and Marschner H 1992 Adaptation of potassium translocation into the shoot of maize (Zea mays) to shoot demand: Evidence for xylem loading as a regulating step. Pysiol. Plant. 86, 263–268.

    Google Scholar 

  • Engels C, Münkle L and Marschner H 1992 Effect of root zone temperature and shoot demand on uptake and xylem transport of macro nutrients in maize (Zea mays L.). J. Exp. Bot. 43, 537–547.

    Google Scholar 

  • Greenway H and Munns R 1980 Mechanisms of salt tolerance in non-halophytes. Annu Rev. Plant Phsysiol. 31, 149–190.

    Google Scholar 

  • Hartung W and Davies W J 1991 Drought induced changes in physiology and ABA. In Abscisic Acid. Physiology and Biochemistry. Eds. W J Davies and H G Jones. pp 63–79. Bios Scientific Publishers, Oxford.

    Google Scholar 

  • Hartung W and Jeschke W D 1999 Abscisic acid: A long distance stress signal in salt-stressed plants. In Plant response to environmental stresses. Ed. H R Lerner. pp 333–348 Marcel Dekker, New York. (In press).

    Google Scholar 

  • Heuwinkel H, Kirkby E A, Le Bot J and Marschner H 1992 Phosphorus deficiency enhances molybdenum uptake by tomato plants. J. Plant Nutr. 15, 549–568.

    Google Scholar 

  • Imsande J and Touraine B 1994 N demand and the regulation of nitrate uptake. Plant Physiol. 105, 3–7.

    Google Scholar 

  • Jeschke W D 1973 K+-stimulated Na+ efflux and selective transport in barley roots. In Ion transport in plants. Ed.WP Anderson. pp 285–296. Academic Press, New York.

    Google Scholar 

  • Jeschke W D 1980 Involvement of proton fluxes in K+-Na+ selectivity at the plasmalemma; K+-dependent net extrusion of sodium in barley roots and the effect of anions and pH on sodium fluxes. Z. Pflanzenphysiol. 98, 155-175.

    Google Scholar 

  • Jeschke W D 1984 K+- Na+ exchange at cellular membranes, intracellular compartmentation of cations, and salt tolerance. In Salinity tolerance in plants: Strategies for crop improvement. Eds. J D Staples and G H Toenniessen. pp. 37–66. Wiley, New York.

    Google Scholar 

  • Jeschke W D, Klagges S, Hilpert A, Bhatti A S and Sarvar G 1995 Partitioning and flows of ions and nutrients in salt-treated plants of Leptochloa fusca L. Kunth. New Phytol. 130, 23–35.

    Google Scholar 

  • Jeschke W D, Pate J S and Atkins C A 1986 Effects of NaCl salinity on growth, development, ion transport and ion storage in white lupin (Lupinus albus L., cv. Ultra). J. Plant Physiol. 124, 257–274.

    Google Scholar 

  • Jeschke W D and Pate J S 1991a Modelling the uptake, flow and utilization of C, N and H2O within whole plants of Ricinus communis L. based on empirical data. J. Exp. Bot. 137, 488–498.

    Google Scholar 

  • Jeschke W D and Pate J S 1991b Modelling the partitioning, assimilation and storage of nitrate within the root and shoot organs of castor bean (Ricinus communis L.). J. Exp. Bot. 42, 1091–1103.

    Google Scholar 

  • Jeschke W D and Pate J S 1991c Cation and chloride partitioning through xylem and phloem within whole plants of Ricinus communis L. under conditions of salt stress. J. Exp. Bot. 42, 1105–1116.

    Google Scholar 

  • Jeschke W D and Pate J S 1992 Temporal patterns of uptake, flow and utilization of nitrate, reduced nitrogen and carbon in a leaf of salt-treated castor bean (Ricinus communis L.). J. Exp. Bot. 43, 392–402.

    Google Scholar 

  • Jeschke W D, Kirkby E A, Peuke A, Pate J S and Hartung W 1997a Assimilation and transport of nitrate and of phosphate in whole plants of castor bean (Ricinus communis L.) as affected by P deficiency. J. Exp. Bot. 48, 75–91.

    Google Scholar 

  • Jeschke W D, Peuke A, Pate J S and Hartung W 1997b Synthesis, Transport and Catabolism of Abscisic Acid in a single leaf and whole plant of castor bean (Ricinus communis L.) under moderate salinity and phosphate deficiency. J. Exp. Bot. 48, 1737–1747.

    Google Scholar 

  • Jeschke W D and Wolf O 1988 External potassium supply is not required for root growth in saline conditions: Experiments with Ricinus communis L. grown in a reciprocal split-root system. J. Exp. Bot. 39, 1149–1167.

    Google Scholar 

  • Layzell D B, Pate J S, Atkins C A and Canvin D T 1981 Partitioning of carbon and nitrogen and the nutrition of root and shoot apex in a nodulated legume. Plant Physiol. 67, 30–36.

    Google Scholar 

  • Maathuis F J M and Sanders D 1997 Regulation of K+ absorption in plant root cells by external K+: interplay of different plasma membrane K+ transporters. J. Exp. Bot. 48, 451–458.

    Google Scholar 

  • Marschner H 1995 Mineral nutrition of higher plants. Second Edition. Academic Press, London. pp 101–105.

    Google Scholar 

  • Pate J S 1973 Uptake, assimilation and transport of nitrogen compounds by plants. Soil Biol. Biochem. 5, 109–119.

    Google Scholar 

  • Pate J S and Jeschke W D 1995 Role of stems in transport, storage, and circulation of ions and metabolites by the whole plant. In Plant stems, physiology and functional morphology. Ed. B L Gardner. pp 177–204. Academic Press, San Diego.

    Google Scholar 

  • Pate J S, Layzell D B and McNeil D L 1979 Modelling the transport and utilization of carbon in an nodulated legume. Plant Physiol. 62, 730–738.

    Google Scholar 

  • Pate J S, Sharkey P J and Lewis O A M 1975 Xylem to phloem transfer of solutes in fruiting shoots of legumes, studied by a phloem bleeding technique. Planta 122, 11–26.

    Google Scholar 

  • Peuke A D and Jeschke W D 1995 Effect of nitrogen source, nitrate concentration and salt stress on element and ion concentration in transport fluids on C and N flows in Ricinus communis L. In Structure and function of roots: Eds. Baluska F, Ciamporová M, Gasparíková O M and Barlow P W. pp 229–236. Kluwer Academic Publishers, Dordrecht.

    Google Scholar 

  • Peuke A D, Jeschke W D and Hartung W 1994 The uptake and flow of C, N and ions between roots and shoots in Ricinus communis L. III. Long distance transport of abscisic acid depending on nitrogen nutrition and salt stress. J. Exp. Bot. 45, 741–747.

    Google Scholar 

  • Peuke A D, Jeschke W D and Hartung W 1998 Foliar application of nitrate or ammonium as the sole nitrogen supply in Ricinus communis. II. The flow of cations, chloride and abscisic acid. New Phytol. 140, 625–636.

    Google Scholar 

  • Peuke A D, Glaab J, Kaiser W M and Jeschke W D 1996 The uptake and flow of C, N and ions between roots and shoots in Ricinus communis L. IV. Flow and metabolism of inorganic nitrogen and malate depending on nitrogen nutrition and salt treatment. J. Exp. Bot. 47, 377–385.

    Google Scholar 

  • Pilbeam D J, Cakmak I, Marschner H and Kirkby E A 1993 Effect of withdrawal of phosphorus on nitrate assimilation and PEP carboxylase activity in tomato. Plant Soil 154, 111–117.

    Google Scholar 

  • Radin J W 1984 Stomatal responses to water stress and to abscisic acid in phosphorus deficient cotton plants. Plant Physiol. 76, 392–394.

    Google Scholar 

  • Rains D W and Epstein E 1967 Sodium absorption by barley roots: role of dual mechanisms of alkali cation transport. Plant Physiol. 42, 314–318.

    Google Scholar 

  • Rains D W1972 Salt transport by plants in relation to salinity. Annu. Rev. Plant Physiol. 23, 367–388l.

    Google Scholar 

  • Ratner A and Jacoby B 1976 Effect of K+, its counter anion, and pH on sodium efflux from barley root tips. J. Exp. Bot. 27, 843–852.

    Google Scholar 

  • Rufty T W Jr, MacKown C and Volk R J 1989 Effects of altered carbohydrate availability on whole-plant assimilation of 15NO -3 . Plant Physiol. 89, 457–463.

    Google Scholar 

  • Schroeder J I, Ward J M and Gassmann W 1994 Perspectives on the physiology and structure of inward rectifying K+ channels in higher plants: biophysical implications for K+ uptake. Annu. Rev. Biophys. Biomol. Struct. 23, 441–471.

    Google Scholar 

  • Tyermann S D, Skerrett M, Garrill A, Findlay G P and Leigh R A 1997 Pathways for the permeation of Na+ and Cl- into protoplasts derived from the cortex of wheat roots. J. Exp. Bot. 48, 459–480.

    Google Scholar 

  • Wolf O, Jeschke W D and Hartung W 1990 Long distance transport of abscisic acid in salt stressed Lupinus albus plants. J. Exp. Bot. 41, 593–600.

    Google Scholar 

  • Wolf O, Munns R, Tonnet M L and Jeschke W D 1991 The role of the stem in the partitioning of Na+C and K+ in salt-treated barley. J. Exp. Bot. 42, 697–704.

    Google Scholar 

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Dieter Jeschke, W., Hartung, W. Root-shoot interactions in mineral nutrition. Plant and Soil 226, 57–69 (2000). https://doi.org/10.1023/A:1026431408238

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