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Is coordination of leaf and root growth mediated by abscisic acid? Opinion

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Abstract

Leaf growth is more inhibited than root growth when the soil is nitrogen-deficient, dry, saline, compacted, or of restricted volume. Similar differential responses in leaf and root growth occur when ABA is applied to plants in well-watered and well-fertilised conditions, and opposite responses are often found in ABA-deficient mutants. ABA levels increase in plants in dry or saline soils, suggesting a regulating role in leaf and root growth in soils of low water potential. In nitrogen-deficient or compacted soils, or soils of restricted volume, ABA only sometimes increases, and in these situations its accumulation may be of secondary importance. Use of ABA-deficient mutants has so far indicated that ABA influences leaf and root growth in unstressed plants, and plants in dry soils, but not in soils that are compacted, of restricted volume, or are nitrogen-deficient.

For ABA to determine the relationship between the rate of leaf growth and the rate of root growth, there must be long-distance transport of either ABA itself or a compound that controls ABA synthesis in the growing cells of leaves and roots. ABA invariably increases in xylem sap as the soil becomes dry or saline, and sometimes when it becomes nitrogen-deficient or compacted, however the ABA is of too low a concentration to affect leaf growth. There may be a compound in xylem sap that controls the synthesis of ABA in the leaf, but no such compound has been identified. ABA accumulates in phloem sap of plants in dry or saline soil, but its function in controlling root or leaf growth is unknown.

We conclude that ABA affects the ratio of root growth to leaf growth via its independent effects on root and leaf growth, and may regulate the ratio of root to leaf growth via feedforward signals in xylem or phloem, but there is no satisfactory explanation of its mechanism of control.

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References

  • Andrade A, Wolfe D W and Fereres E 1993 Leaf expansion, photosynthesis and water relations of sunflower plants grown on compacted soil. Plant and Soil 149, 175–184.

    Google Scholar 

  • Bano A, Dorffling K, Bettin D and Hahn H 1993 Abscisic acid and cytokinins as possible root-to-shoot signals in xylem sap of rice plants in drying soil. Aust. J. Plant Physiol. 20, 109–115.

    Google Scholar 

  • Bano A, Hansen H, Dorffling K, Bettin D and Hahn H 1994 Changes in the contents of free and conjugated abscisic acid, phaseic acid and cytokinins in xylem sap of drought-stressed sunflower plants. Phytochem. 37, 345–347.

    Google Scholar 

  • Barlow P W and Pilet P-E 1984 The effect of abscisic acid on cell growth, cell division and DNA synthesis in the maize root meristem. Physiol. Plant. 62, 125–132.

    Google Scholar 

  • Bartholomew D M, Bartley G E and Scolnik P A 1991 Abscisic acid control ofrbcS andcab transcription in tomato leaves. Plant Physiol. 96, 291–296.

    Google Scholar 

  • Benson R J, Boyer J S and Mullet J E 1988 Water deficit-induced changes in abscisic acid, growth, polysomes, and translatable RNA in soybean hypocotyls. Plant Physiol. 88, 289–294.

    Google Scholar 

  • Berridge M J 1995 Calcium signalling and cell proliferation. Bioassays 17, 491–500.

    Google Scholar 

  • Biddington N L and Dearman A S 1982 The effect of abscisic acid on root and shoot growth of cauliflower plants. Plant Growth Regul. 1, 15–24.

    Google Scholar 

  • Blum A and Sinmena B 1995 Isolation and characterization of variant wheat cultivars for ABA sensitivity. Plant Cell Environ. 18, 77–83.

    Google Scholar 

  • Bradford, K 1983 Water relations and growth of theflacca tomato mutant in relation to abscisic acid. Plant Physiol. 72, 251–255.

    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 

  • Büssis D, Kauder F and Heineke D 1995 On the role of abscisic acid in the adaptation of tobacco and potato plants to water stress.In Photosynthesis: From Light to Biosphere. Ed. P Mathis. pp 649–652. Kluwer Academic Press, Dordrecht, the Netherlands.

    Google Scholar 

  • Campbell J A, Loveys B R, Lee V W K and Strother S 1995 Growth-inhibiting properties of xylem exudate fromVitis vinifera. Aust. J. Plant Physiol. 22, 7–13.

    Google Scholar 

  • Carmi A 1995 Growth, water transport and transpiration in root-restricted plants of bean, and their relation to abscisic acid accumulation. Plant Sci. 107, 69–76.

    Google Scholar 

  • Chandler P M and Robertson M 1994 Gene expression regulated by abscisic acid and its relation to stress tolerance. Annu. Rev. Plant. Physiol. Plant. Mol. Biol. 45, 113–141.

    Google Scholar 

  • Chapin F S III 1990 Effects of nutrient deficiency on plant growth: evidence for a centralized stress-response system.In Importance of Root to Shot Communication in the Responses to Environmental Stress. Monograph 21. Eds. W J Davies and B Jeffcoat. pp 135–148. British Society for Plant Growth Regulation, Bristol, UK.

    Google Scholar 

  • Chapin F S III, Clarkson D T, Lenton J R and Walter C H S 1988a Effect of nitrogen stress and abscisic acid on nitrate absorption and transport in barley and tomato. Planta 173, 340–351.

    Google Scholar 

  • Chapin F S III, Walter C H S and Clarkson D T 1988b Growth response of barley and tomato to nitrogen stress and its control by abscisic acid, water relations and photosynthesis. Planta 173, 352–366.

    Google Scholar 

  • Clarkson D T and Touraine B 1994 Morphological responses of plants to nitrate-deprivation: A role for abscisic acid?In A Whole Plant Perspective on Carbon-Nitrogen Interactions. Eds. J Roy and E Garnier. pp. 187–196. SPB Academic Publishing, the Hague, the Netherlands.

    Google Scholar 

  • Cornish K and Zeevaart J A D 1988 Phenotypic expression of wild-type tomato and three wilty mutants in relation to abscisic acid accumulation in roots and leaflets of reciprocal grafts. Plant Physiol. 87, 190–194.

    Google Scholar 

  • Correia M J and Pereira J S 1994 Abscisic acid in apoplastic sap can account for the restriction in leaf conductance of white lupins during moderate soil drying and after rewatering. Plant Cell Environ. 17, 845–852.

    Google Scholar 

  • Cramer G R 1994 Is an increase in ABA concentration the cause of growth inhibition in salt-stressed plants? Plant Physiol. 105, S71.

  • Cramer G R and Jones R L 1996 Salinity and abscisic acid reduce calcium activities in roots ofArabidopsis thaliana. Plant Cell Environ. (In press).

  • Creelman R A, Mason H S, Bensen R J, Boyer J S and Mullet J E 1990 Water deficit and abscisic acid cause differential inhibition of shoot versus root growth in soybean seedlings. Plant Physiol. 92, 205–214.

    Google Scholar 

  • Creelman R A and Mullet J E 1991 Water deficit modulates gene expression in growing zones of soybean seedings. Analysis of differentially expressed cDNAs, a newβ-tubulin gene, and expression of genes encoding cell wall proteins. Plant Mol. Biol. 17, 591–608.

    Google Scholar 

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

    Google Scholar 

  • De Bruijn S M, Buddendorf Ch J J and Vreugdenhil D 1993 Characterization of the ABA-deficientPisum sativum ‘wilty’ mutant. Acta Bot. Neerl. 42, 491–503.

    Google Scholar 

  • Dodd I C and Davies W J 1996 The relationship between leaf growth and ABA accumulation in the grass leaf elongation zone. J. Exp. Bot. 45 (In press).

  • Esaka M and Hayakawa H 1995 Specific secretion of proline-rich proteins by salt-adapted winged bean cells. Plant Cell Physiol. 36, 441–446.

    Google Scholar 

  • Farrar J F 1996 Regulation of root weight ratio is mediated by sucrose: Opinion. Plant and Soil 185, 13.

    Google Scholar 

  • Fußeder A, Wartinger A, Hartung W, Schulze E-D and Heilmeier H 1992 Cytokinins in the xylem sap of desert-grown almond (Prunus dulcis) trees: daily courses and their possible interactions with abscisic acid and leaf conductance. New Phytol. 122, 45–52.

    Google Scholar 

  • Giraudat J, Parcy F, Bertauche N, Gosti F, Leung J, Morris P-C, Bouvier-Durand M and Vartanian N 1994 Current advances in abscisic acid action and signalling. Plant Mol. Biol. 26, 1557–1577.

    Google Scholar 

  • Gowing D J G, Davies W J and Jones H G 1990 A positive root-sourced signal as an indicator of soil drying in apple,Malus × domestica Borkh. J. Exp. Bot. 41, 1535–1540.

    Google Scholar 

  • Hartung W and Slovik S 1991 Physicochemical properties of plant growth regulators and plant tissues determine their distribution and redistribution: stomatal regulation by abscisic acid in leaves. New Phytol. 119, 361–382.

    Google Scholar 

  • Hartung W, Zhang J H and Davies W J 1994 Does abscisic acid play a stress physiological role in maize plants growing in heavily compacted soil? J. Exp. Bot. 45, 221–226.

    Google Scholar 

  • He T and Cramer G R 1996 Abscisic acid concentrations are correlated with leaf area reductions in two salt-stressed rapid-cyclingBrassica species. Plant and Soil 179, 25–33.

    Google Scholar 

  • Hemerly A S, Ferreira P, Almeida Engler J D, Van Montagu M, Engler G and Inzé D 1993cdc2a expression inArabidopsis is linked with competence for cell division. Plant Cell 5, 1711–1723.

    Google Scholar 

  • Hepler P K 1994 The role of calcium in cell division. Cell Calc. 16, 322–330.

    Google Scholar 

  • Hoad G V 1973 Effect of moisture stress on abscisic acid levels inRicinus communis L. with particular reference to pholem exudate. Planta 113, 367–372.

    Google Scholar 

  • Hoad G V 1975 Effect of osmotic stress on abscisic acid levels in xylem sap of sunflower (Helianthus annuus L.). Planta 124, 25–29.

    Google Scholar 

  • Hoad G V 1995 Transport of hormones in the phloem of higher plants. Plant Growth Regul. 16, 173–182.

    Google Scholar 

  • Incoll L D, Day J P and Jewer P C 1990 Do cytokinins act as root to shoot signals?In Importance of Root to Shoot Communication in the Responses to Environmental Stress. Monograph 21. Eds. W J Davies and B Jeffcoat. pp 185–197. British Society for Plant Growth Regulation, Bristol, UK.

    Google Scholar 

  • Itai C and Vaadia Y 1965 Kinetin-like activity in root exudate of water-stressed sunflower plants. Physiol. Plant. 18, 941–944.

    Google Scholar 

  • Jackson M B 1993 Are plant hormones involved in root to shoot communication? Adv. Bot. Res. 19, 104–187.

    Google Scholar 

  • Jackson M B and Hall K C 1987 Early stomatal closure in water-logged pea plants is mediated by abscisic acid in the absence of foliar water deficits. Plant Cell Environ. 10, 121–130.

    Google Scholar 

  • John P C L, Zhang K, Dong C, Diederich L and Wightman F 1993 p34cdc2-related proteins in control of cell cycle progression, the switch between division and differentiation in tissue development, and stimulation of division by auxin and cytokinin. Aust. J. Plant Physiol. 20, 503–526.

    Google Scholar 

  • Keller B 1993 Structural cell wall proteins. Plant Physiol. 101, 1127–1130.

    Google Scholar 

  • Krishnan M and Cramer G R 1992 Simulation of short term salinity effects on plant growth parameters affecting leaf elongation rate by exogenous addition of abscisic acid to the solution culture.In Current Topics in Plant Biochemistry and Physiology 11, 311. University of Missouri, Columbia, MO, USA.

    Google Scholar 

  • Loveys B R 1984 Abscisic acid transport and metabolism in grapevine (Vitis vinifera L.). New Phytol. 98, 575–582.

    Google Scholar 

  • MacRobbie E A C 1995 Effects of ABA on86Rb+ fluxes at plas-malemma and tonoplast of stomatal guard cells. Plant J. 7, 835–843.

    Google Scholar 

  • Masle J 1990 Growth and stomatal behaviour: response to soil resistance to root penetration.In Importance of Root to Shoot Communication in the Responses to Environmental Stress. Monograph 21. Eds. W J Davies and B Jeffcoat. pp 95–106. British Society for Plant Growth Regulation, Bristol, UK.

    Google Scholar 

  • Masle J and Passioura J B 1987 The effect of soil strength on the growth of young wheat plants. Aust. J. Plant Physiol. 14, 643–656.

    Google Scholar 

  • Masle J, Farquhar G D and Gifford R M 1990 Growth and carbon economy of wheat seedlings as affected by soil resistance to penetration and ambient partial pressure of CO2. Aust. J. Plant Physiol. 17, 465–487.

    Google Scholar 

  • McDonald A J S and Davies W J 1996 Keeping in touch: Responses of the whole plant to deficits in water and nitrogen supply. Adv. Bot. Res. 22, 230–300.

    Google Scholar 

  • Minchin P E H, Thorpe M R and Farrar J F 1993 A simple mechanistic model of phloem transport which explains sink priority. J. Exp. Bot. 44, 947–955.

    Google Scholar 

  • Moss G I, Hall K C and Jackson M B 1988 Ethylene and the response of roots of maize (Zea mays L.) to physical impedance. New Phytol. 109, 303–311.

    Google Scholar 

  • Mullholland B J, Black C R, Taylor I B, Roberts J A and Lenton J R 1996a Effect of soil compaction on barley (Hordeum vulgare L.) growth. I. Possible role for ABA as a root-sourced chemical signal. J. Exp. Bot. 47, 539–549.

    Google Scholar 

  • Mullholland B J, Taylor I B, Black C R and Roberts J A 1996b Effect of soil compaction on barley (Hordeum vulgare L.) growth. II. Are increased xylem sap ABA concentrations involved in maintaining leaf expansion in compacted soils? J. Exp. Bot. 47, 551–556.

    Google Scholar 

  • Munns R 1990 Chemical signals moving from roots to shoots: the case against ABA.In Importance of Root to Shoot Communication in the Responses to Environmental Stress. Monograph 21. Eds. W J Davies and B Jeftcoat. pp 175–183. British Society for Plant Growth Regulation, Bristol, UK.

    Google Scholar 

  • Munns R 1992 A leaf elongation assay detects an unknown growth inhibitor in xylem sap from wheat and barley. Aust. J. Plant Physiol. 19, 127–135.

    Google Scholar 

  • Munns R 1993 Physiological processes limiting plant growth in saline soil: some dogmas and hypotheses. Plant Cell Environ. 16, 15–24.

    Google Scholar 

  • Munns R and King R W 1988 Abscisic acid is not the only stomatal inhibitor in the transpiration stream of wheat plants. Plant Physiol. 88, 703–708.

    Google Scholar 

  • Munns R, Passioura J B, Milborrow B V, James R and Close T J 1993 Stored xylem sap from wheat and barley contains a transpiration inhibitor that is retained by high molecular weight exclusion filters. Plant Cell Environ. 16, 867–872.

    Google Scholar 

  • Munns R and Sharp R E 1993 Involvement of abscisic acid in controlling plant growth in soils of low water potential. Aust. J. Plant Physiol. 20, 425–437.

    Google Scholar 

  • Nagel O W, Konings H and Lambers H 1994 Growth rate, plant development and water relations of the ABA-deficient tomato mutantsitiens. Physiol. Plant. 92, 102–108.

    Google Scholar 

  • Neales T F, Masia A, Zhang J and Davies W J 1989 The effects of partially drying part of the root system ofHelianthus annuus on the abscisic acid content of the roots, xylem sap and leaves. J. Exp. Bot. 40, 1113–1120.

    Google Scholar 

  • Netting A G and Milborrow B V 1994 Endogenous biosynthetic precursors of (+)-abscisic acid. II. Incorporation of isotopes from (±)-[2H]abscisic aldehyde,18O2 and H 182 O. Aust. J. Plant Physiol. 21, 345–357.

    Google Scholar 

  • Nonami H and Boyer J S 1990a Primary events regulating stem growth at low water potentials. Plant Physiol. 93, 1601–1609.

    Google Scholar 

  • Nonami H and Boyer J S 1990b Wall extensibility and cell hydraulic conductivity decrease in enlarging stem tissues at low water potentials. Plant Physiol. 93, 1610–1619.

    Google Scholar 

  • Nonhebel H M and Milborrow B V 1986 Incorporation of2H from2H2O into ABA in tomato shoots: evidence for a large pool of precursors. J. Exp. Bot. 37, 1533–1541.

    Google Scholar 

  • Ober E S and Sharp R E 1994 Proline accumulation in maize (Zea mays L.) primary roots at low water potentials. I. Requirement for increased levels of abscisic acid. Plant Physiol. 105, 981–987.

    Google Scholar 

  • Palmer S J, Berridge D M, McDonald A J S and Davies W J 1996 Control of leaf expansion in sunflower (Helianthus annuus L.) by nitrogen nutrition. J. Exp. Bot. 47, 359–368.

    Google Scholar 

  • Parry A D, Griffiths A and Horgan R 1992 Abscisic acid biosyn-thesis in roots. II. The effects of water-stress in wild-type and abscisic-acid-deficient mutant (notabilis) plants ofLycopersicon esculentum Mill. Planta 187, 192–197.

    Google Scholar 

  • Passioura J B 1988 Root signals control leaf expansion in wheat seedlings growing in drying soil. Aust. J. Plant Physiol. 15, 687–693.

    Google Scholar 

  • Passioura J B and Gardner P A 1990 Control of leaf expansion in wheat seedlings growing in drying soil. Aust. J. Plant Physiol. 17, 149–157.

    Google Scholar 

  • Passioura J B and Stirzaker R J 1993 Feedforward responses of plants to physically inhospitable soil. Int. Crop Sci. I, pp 715–719. Crop Science Society of America, Madison, WI, USA.

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

    Google Scholar 

  • Pierce M and Raschke K 1980 Correlation between loss of turgor and accumulation of abscisic acid in detached leaves. Planta 148, 174–182.

    Google Scholar 

  • Robertson J M, Hubick K T, Yeung E C and Reid D M 1990 Developmental responses to drought and abscisic acid in sunflower roots. 1. Root growth, apical anatomy, and osmotic adjustment. J. Exp. Bot. 41, 325–37.

    Google Scholar 

  • Saab I N and Sharp R E 1989 Non-hydraulic signals from maize roots in drying soil: inhibition of leaf elongation but not stomatal conductance. Planta 179, 466–474.

    Google Scholar 

  • Saab I N, Sharp R E, Pritchard J and Voetberg G S 1990 Increased endogenous abscisic acid maintains primary root growth and inhibits shoot growth of maize seedlings at low water potentials. Plant Physiol. 93, 1329–1336.

    Google Scholar 

  • Schroeder J I 1995 Anion channels as central mechanisms for signal transduction in guard cells and putative functions in roots for plant-soil interactions. Plant Mol. Biol. 28, 353–361.

    Google Scholar 

  • Schurr U, Gollan T and Schulze E-D 1992 Stomatal response to drying soil in relation to changes in the xylem sap composition ofHelianthus annuus. II. Stomatal sensitivity to abscisic acid imported from the xylem sap. Plant Cell Environ. 15, 561–567.

    Google Scholar 

  • Schurr U and Schulze E-D 1995 The concentration of xylem sap constituents in root exudate, and in sap from intact, transpiring castor bean plants (Ricinus communis L.). Plant Cell Environ. 18, 409–420.

    Google Scholar 

  • Schwartz A, Wu WH, Tucker E B and Assmann S M 1994 Inhibition of inward K+ channels and stomatal response by abscisic acid — An intracellular locus of phytohormone action. Proc. Natl. Acad. Sci. USA 91, 4019–4023.

    Google Scholar 

  • Sharp R E, Voetberg G S, Saab I N and Bernstein N 1993 Role of abscisic acid in the regulation of cell expansion in roots at low water potentials.In Plant Responses to Cellular Dehydration During Environmental Stress. Eds. T L Close and E A Bray. pp 57–66. American Society of Plant Physiologists, Rockville, MD, USA.

    Google Scholar 

  • Sharp R E, Wu Y, Voetberg G S, Saab I N and LeNoble M E 1994 Confirmation that abscisic acid accumulation is required for maize primary root elongation at low water potentials. J. Exp. Bot. 45, 1743–1751.

    Google Scholar 

  • Spollen W G and Sharp R E 1991 Spatial distribution of turgor and root growth at low water potentials. Plant Physiol. 96, 438–443.

    Google Scholar 

  • Spollen W G and Sharp R E 1994 Role of ABA in root growth maintenance at low water potentials involves regulation of ethylene synthesis or responsiveness. Plant Physiol. 105, S25.

  • Steer M W 1988 The role of calcium in exocytosis and endocytosis in plant cells. Physiol. Plant. 72, 213–220.

    Google Scholar 

  • Tardieu F, Lafarge T and Simonneau T 1996 Stomatal control by fed or endogenous xylem ABA in sunflower: interpretation of correlations between leaf water potential and stomatal conductance in anisohydric species. Plant Cell Environ. 19, 75–84.

    Google Scholar 

  • Tardieu F, Zhang J, Katerji N, Bethenod O, Palmer S and Davies W J 1992 Xylem ABA controls the stomatal conductance of field-grown maize subjected to soil compaction or soil drying. Plant Cell Environ. 15, 193–197.

    Google Scholar 

  • Taylor I B 1991 Genetics of ABA synthesis.In Abscisic Acid: Physiology and Biochemistry. Eds. W J Davies and H G Jones. pp 23–37. Bios Scientific Publishers Limited, Oxford, UK.

    Google Scholar 

  • Terashima I, Wong S-C, Osmond C B and Farquhar G D 1988 Characterisation of non-uniform photosynthesis induced by abscisic acid in leaves having different mesophyll anatomies. Plant Cell Physiol. 29, 385–394.

    Google Scholar 

  • Termaat A, Passioura J B and Munns R 1985 Shoot turgor does not limit shoot growth of NaCl-affected wheat and barley. Aust. J. Plant Physiol. 77, 869–872.

    Google Scholar 

  • Ternesi M, Andrade A P, Jorrin J and Benlloch M 1994 Root-shoot signalling in sunflower plants with confined root systems. Plant and Soil 166, 31–36.

    Google Scholar 

  • Touraine B, Clarkson D T and Muller B 1994 Regulation of nitrate uptake at the whole plant level.In A Whole Plant Perspective on Carbon-Nitrogen Interactions. Eds. J Roy and E Garnier. pp 11–30. SPB Academic Publications, The Hague, the Netherlands.

    Google Scholar 

  • Van der Werf A and Nagel O W 1996 Carbon allocation to shoots and roots in relation to nitrogen supply is mediated by cytokinins and sucrose: Opinion. Plant and Soil 185, 21.

    Google Scholar 

  • Wakabayashi K, Sakurai N and Kuraishi S 1989 Effects of ABA on synthesis of cell-wall polysaccharides in segments of etiolated squash hypocotyl. I. Changes in incorporation of glucose and myo-inositol into cell-wall components. Plant Cell Physiol. 30, 99–105.

    Google Scholar 

  • Wakabayashi K, Sakurai N and Kuraishi S 1991 Effects of abscisic acid on the synthesis of cell-wall polysaccharides in segments of etiolated squash hypocotyl. II. Levels of UDP-neutral sugars. Plant Cell Physiol. 32, 427–432.

    Google Scholar 

  • Wang T L, Donkin M E and Martin E S 1984 The physiology of a wilty pea: abscisic acid production under water stress. J. Exp. Bot. 35, 1222–1232.

    Google Scholar 

  • Ward J M, Pei Z-M and Schroeder J I 1995 Roles of ion channels in initiaton of signal transduction in higher plants. Plant Cell 7, 833–844.

    Google Scholar 

  • Watts S, Rodriguez J L, Evans S E and Davies W J 1981 Root and shoot growth of plants treated with abscisic acid. Ann. Bot. 47, 595–602.

    Google Scholar 

  • Winicov I and Deutch C E 1994 Characterization of a cDNA clone from salt-tolerant alfalfa cells that identifies salt-inducible root-specific transcripts. J. Plant Physiol. 144, 222–228.

    Google Scholar 

  • Wolf O, Jeschke W D and Hartung W 1990 Long distance transport of abscisic acid in NaCl-treated intact plants ofLupinus albus. J. Exp. Bot. 41, 593–600.

    Google Scholar 

  • Wolniak S M 1991 Patterns of regulation during mitosis.In The Cytoskeletal Basis of Plant Growth and Form. Ed. C W Lloyd. pp 209–226. Academic Press, London, UK.

    Google Scholar 

  • Wu, Y, Sharp R E, Durachko D M and Cosgrove D J 1996 Growth maintenance of the maize primary root at low water potentials involves increases in cell wall extension properties, expansin activity, and wall susceptibility to expansins. Plant Physiol. (In press).

  • Wu Y, Spollen W G, Sharp R E, Hetherington P R and Fry S C 1994 Root growth maintenance at low water potentials. Increased activity of xyloglucan endotransglycosylase and its possible regulation by abscisic acid. Plant Physiol. 106, 607–615.

    Google Scholar 

  • Zhang J and Davies W J 1990 Changes in the concentration of ABA in xylem sap as a function of changing soil water status can account for changes in leaf conductance and growth. Plant Cell Environ. 13, 277–285.

    Google Scholar 

  • Zhao K, Munns R and King R W 1991 Abscisic acid levels in NaCl-treated barley, cotton and saltbush. Aust. J. Plant Physiol. 18, 17–24.

    Google Scholar 

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Munns, R., Cramer, G.R. Is coordination of leaf and root growth mediated by abscisic acid? Opinion. Plant Soil 185, 33–49 (1996). https://doi.org/10.1007/BF02257563

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