Artigo Revisado por pares

Limits to nutrient inflow rates in roots and root systems

1986; Wiley; Volume: 68; Issue: 3 Linguagem: Inglês

10.1111/j.1399-3054.1986.tb03395.x

ISSN

1399-3054

Autores

David Robinson,

Tópico(s)

Plant nutrient uptake and metabolism

Resumo

Physiologia PlantarumVolume 68, Issue 3 p. 551-559 Limits to nutrient inflow rates in roots and root systems David Robinson, David Robinson Dept of Soil Fertility, The Macaulay Inst. for Soil Research, Craigie-buckler, Aberdeen, AB9 2QJ, U.K.Search for more papers by this author David Robinson, David Robinson Dept of Soil Fertility, The Macaulay Inst. for Soil Research, Craigie-buckler, Aberdeen, AB9 2QJ, U.K.Search for more papers by this author First published: November 1986 https://doi.org/10.1111/j.1399-3054.1986.tb03395.xCitations: 56AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onEmailFacebookTwitterLinkedInRedditWechat References Asher, C. J. & Edwards, D. G. 1978. Critical external concentrations for nutrient deficiency and excess. – In Proceedings of the 8th International Colloquium on Plant Analysis and Fertilizer Problems ( A. R. Ferguson, R. L. Bieleski and I. B. Ferguson, eds), pp. 13–28. DSIR, Wellington , ISSN 007–7961-X. Google Scholar Baldwin, J. P. & Nye, P. H. 1974. A model to calculate the uptake by a developing root system or root hair system of solutes with concentration variable diffusion coefficients. Plant Soil 40: 703–706. 10.1007/BF00010528 CASWeb of Science®Google Scholar Baldwin, J. P., Nye, P. H. & Tinker, P. B. 1973. Uptake of solutes by multiple root systems from soil. III. A model for calculating the solute uptake by a randomly dispersed root system developing in a finite volume of soil. Plant Soil 38: 621–635. 10.1007/BF00010701 CASWeb of Science®Google Scholar Barley, K. P. 1970. The configuration of the root system in relation to nutrient uptake. Adv. Agron. 22: 159–201. 10.1016/S0065-2113(08)60268-0 Google Scholar Bhat, K. K. S. 1982. Nutrient inflows in apple roots. Plant Soil 71: 371–380. 10.1007/BF02182678 Web of Science®Google Scholar Bhat, K. K. S., Brereton, A. J. & Nye, P. H. 1979a. The possibility of predicting solute uptake and plant growth response from independently measured soil and plant characteristics. VII. The growth and nitrate uptake of rape in soil at two nitrate concentrations and a comparison of the results with model predictions. Plant Soil 53: 169–191. 10.1007/BF02181889 CASWeb of Science®Google Scholar Bhat, K. K. S., Brereton, A. J. & Nye, P. H. 1979b. The possibility of predicting solute uptake and plant growth response from independently measured soil and plant characteristics. VIII. A comparison of growth and nitrate uptake of rape grown in similar nitrate concentrations in solution or in soil solution. Plant Soil 53: 193–201. 10.1007/BF02181890 CASWeb of Science®Google Scholar Brewster, J. L. & Tinker, P. B. H. 1970. Nutrient cation flows in soil around plant roots. Soil Sci. Soc. Am. Proc. 34: 421–426. 10.2136/sssaj1970.03615995003400030022x CASWeb of Science®Google Scholar Brewster, J. L. & Tinker, P. B. H. 1972. Nutrient flow rates into roots. Soils Fert. 35: 355–359. Google Scholar Brewster, J. L., Bhat, K. K. S. & Nye, P. H. 1976. The possibility of predicting solute uptake and plant growth response from independently measured soil and plant characteristics. V. The growth and phosphorus uptake of rape in soil at a range of phosphorus concentrations and a comparison of results with the predictions of a simulation model. Plant Soil 44: 295–328. 10.1007/BF00015884 CASWeb of Science®Google Scholar Burns, I. G. 1980. Influence of the spatial distribution of nitrate on the uptake of N by plants: a review and a model for rooting depth. J. Soil Sci. 31: 155–173. 10.1111/j.1365-2389.1980.tb02073.x CASWeb of Science®Google Scholar Claassen. N. & Barber, S. A. 1974. A method for characterizing the relation between nutrient concentration and flux in roots of intact plants. Plant Physiol. 54: 564–568. 10.1104/pp.54.4.564 CASPubMedWeb of Science®Google Scholar Clarke, A. L. & Barley, K. P. 1968. The uptake of nitrogen from soils in relation to solute diffusion. Aust. J. Soil Res. 6: 75–92. 10.1071/SR9680075 CASWeb of Science®Google Scholar Clarkson, D. T. 1974. Ion Transport and Cell Structure in Plants. – McGraw-Hill, London , pp. 103, 225. ISBN 0470–115985-5. Google Scholar Clarkson, D. T. 1985. Factors affecting mineral nutrient acquisition by plants. Annu. Rev. Plant Physiol. 36: 77–115. 10.1146/annurev.pp.36.060185.000453 CASWeb of Science®Google Scholar Dalton, F. N. 1984. Dual pattern of potassium transport in plant cells: a physical artefact of a single uptake mechanism. J. Exp. Bot. 35: 1723–1732. 10.1093/jxb/35.12.1723 CASWeb of Science®Google Scholar Drew, M. C. & Nye, P. H. 1969. The supply of nutrient ions by diffusion to plant roots in soil. II. The effect of root hairs on the uptake of potassium by roots of ryegrass (Lolium multi-florum). Plant Soil 31: 407–424. 10.1007/BF01373813 CASWeb of Science®Google Scholar Drew, M. C. & Nye, P. H. 1970. The supply of nutrient ions by diffusion to plant roots in soil. III. Uptake of phosphate by roots of onion, leek and ryegrass. Plant Soil 33: 545–563. 10.1007/BF01378245 CASGoogle Scholar Drew, M. C., Vaidyanathan, L. V. & Nye, P. H. 1969. The supply of nutrient ions by diffusion to plant roots in soil. I. Absorption of potassium by cylindrical roots of onion and leek. Plant Soil 30: 253–270. 10.1007/BF01349514 CASWeb of Science®Google Scholar Drew, M. C., Saker, L., Barber, S. A. & Jenkins, W. A. 1984. Changes in the kinetics of phosphate and potassium absorption in nutrient deficient barley crops measured by a solution depletion technique. Planta 160: 490–499. 10.1007/BF00411136 CASPubMedWeb of Science®Google Scholar Edwards, J. H. & Barber, S. A. 1976. Nitrogen flux into cornroots as influenced by shoot requirement. Agron. J. 68: 471–473. 10.2134/agronj1976.00021962006800030009x CASWeb of Science®Google Scholar Fitter, A. H. & Hay, R. K. M. 1981. Environmental Physiology of plants. – Academic Press, London , pp. 73, 83. ISBN-012-257760-4. Google Scholar Gardner, W. R. 1965. Movement of nitrogen in soil. – In Soil Nitrogen ( W. V. Bartholemew and F. E. Clark, eds). pp. 550–572. American Society of Agronomy, Madison . Google Scholar Gile, P. L. & Carrero, J. O. 1917. Absorption of nutrients as affected by the number of roots supplied with the nutrient. J. Agric. Res. 9: 73–95. CASGoogle Scholar Glass, A. D. M. & Siddiqi, M. Y. 1984. The control of nutrient uptake rate in relation to the inorganic composition of plants. Adv. Plant Nutr. 1: 103–147. CASGoogle Scholar Grasmanis, V. O. & Barley, K. P. 1969. The uptake of nitrate and ammonium by successive zones of the pea radicle. Aust. J. Biol. Sci. 22: 1313–1320. 10.1071/BI9691313 CASWeb of Science®Google Scholar Grinsted, M. J., Hedley, M. J., White, R. E. & Nye, P. H. 1982. Plant-induced changes in the rhizosphere of rape (Brassica napus var. Emerald) seedlings. I. pH change and the increase in P concentration in the soil solution. New Phytol. 91: 19–29. 10.1111/j.1469-8137.1982.tb03289.x CASWeb of Science®Google Scholar Hellferich, F. 1962. Ion Exchange. – McGraw-Hill, New York . p. 253. Google Scholar Hunt, R. 1973. A method of estimating root efficiency. J. Appl. Ecol. – 10: 157–164. 10.2307/2404723 Web of Science®Google Scholar Hunt, R. 1982. Plant Growth Curves: the Functional Approach to Plant Growth Analysis. – Edward Arnold, London . pp. 16–33, 52, ISBN 0-7131-28445. Google Scholar Jungk, A. & Barber, S. A. 1975. Plant age and the phosphorus uptake characteristics of trimmed and untrimmed corn root systems. Plant Soil 42: 227–239. 10.1007/BF02186985 CASWeb of Science®Google Scholar Lee, R. B. 1982. Selectivity and kinetics of ion uptake by barley plants following nutrient deficiency. Ann. Bot. 50: 424–449. Google Scholar Mackay, A. D. & Barber, S. A. 1984. Soil temperature effects on root growth and phosphorus uptake by corn. Soil Sci. Soc. Am. J. 48: 818–823. 10.2136/sssaj1984.03615995004800040024x CASWeb of Science®Google Scholar Macklon, A. E. S. & Sim, A. 1981. Cortical cell fluxes and transport to the stele in excised root segments of Allium cepa L. IV. Calcium as affected by its external concentration. Planta 152: 381–387. 10.1007/BF00385353 CASPubMedWeb of Science®Google Scholar Melillo, J. M. 1981. Nitrogen cycling in deciduous forests. – In Terrestrial Nitrogen Cycles ( F. E. Clark and T. Rosswall, eds) pp. 427–442. Swedish Natural Science Research Council, Stockholm . ISBN 91-546-0290-4. Google Scholar Mengel, D. B. & Barber, S. A. 1974a. Development and distribution of the corn root system under field conditions. Agron. J. 66: 341–344. 10.2134/agronj1974.00021962006600030002x Web of Science®Google Scholar Mengel, D. B. & Barber, S. A. 1974b. Rate of nutrient uptake per unit of corn root under field conditions. Agron. J. 66: 399–402. 10.2134/agronj1974.00021962006600030019x CASWeb of Science®Google Scholar Milchunas, D. G., Lauenroth, W. K., Singh, J. S., Cole, C. V. & Hunt, H. W. 1985. Root turnover and production by 14C dilution: implications of carbon partitioning in plants. Plant Soil 88: 353–365. 10.1007/BF02197492 CASWeb of Science®Google Scholar Nye, P. H. 1973. The relation between the radius of a root and its nutrient absorbing power (α). J. Exp. Bot. 24: 783–786. 10.1093/jxb/24.5.783 Web of Science®Google Scholar Nye, P. H. 1977. The rate-limiting step in plant nutrient absorption from soil. Soil Sci. 123: 292–297. 10.1097/00010694-197705000-00004 CASWeb of Science®Google Scholar Nye, P. H. 1984. On estimating the uptake of nutrients solublized near roots or other surfaces. J. Soil Sci. 35: 439–446. 10.1111/j.1365-2389.1984.tb00300.x CASWeb of Science®Google Scholar Nye, P. H. & Marriott, F. H. C. 1969. A theoretical study of the distribution of substances around roots resulting from simultaneous diffusion and mass flow. Plant Soil 30: 459–472. 10.1007/BF01881971 Web of Science®Google Scholar Nye, P. H. & Tinker, P. B. 1977. Solute Movement in the Soil-Root System. – Blackwell Scientific Publications, Oxford , pp. 9–288. ISBN 0-632-097302. Google Scholar Pearson, C. J. & Jacobs, B. C. 1985. Root distribution in space and time in Trifolium subterraneum. Aust. J. Agric. Res. 36: 601–614. 10.1071/AR9850601 Web of Science®Google Scholar Raven, J. A., Osborne, B. A. & Johnston, A. M. 1985. Uptake of CO2 by aquatic plants. Plant Cell Environ. 8: 417–425. 10.1111/j.1365-3040.1985.tb01677.x CASWeb of Science®Google Scholar Robinson, D. & Rorison, I. H. 1983. A comparison of the responses of Lolium perenne L., Holcus lanatus L. and Deschampsia flexuosa (L). Trin. to a localized supply of nitrogen. New Phytol. 94: 263–273. 10.1111/j.1469-8137.1983.tb04499.x PubMedWeb of Science®Google Scholar Robinson, R. A. & Stokes, R. H. 1965. Electrolyte Solutions ( 2nd Ed. revised). – Butterworths, London , p. 513. Google Scholar Rorison, I. H. & Robinson, D. 1984. Calcium as an environmental variable. Plant Cell Environ. 7: 381–390. 10.1111/j.1365-3040.1984.tb01427.x CASWeb of Science®Google Scholar Russell, R. S. 1977. Plant Root Systems: Their Function and Interaction with the Soil. – McGraw-Hill, London , pp. 62–89. ISBN 0-07-084068-7. Google Scholar Russell, R. S. & Clarkson, D. T. 1975. Ion transport in root systems. – In Perspectives in Experimental Biology ( N. Sunderland, ed.). Vol. 2, pp. 401–411. Pergamon, Oxford . ISBN 0080-1993–99. Google Scholar Russell, R. S. & Sanderson, J. 1967. Nutrient uptake by different parts of the intact roots of plants. J. Exp. Bot. 18: 491–508. 10.1093/jxb/18.3.491 Web of Science®Google Scholar Sanders, F. E. & Tinker, P. B. 1973. Phosphate flow into mycorrhizal roots. Pestic. Sci. 4: 385–395. 10.1002/ps.2780040316 CASGoogle Scholar Smith, F. A. & Walker, N. A. 1980. Photosynthesis by aquatic plants: effects of unstirred layers in relation to assimilation of CO2 and HCO-3 and to carbon isotope discrimination. New Phytol. 86: 245–259. 10.1111/j.1469-8137.1980.tb00785.x CASGoogle Scholar Tinker, P. B. 1969. The transport of ions in soil around plant roots. – In Ecological Aspects of the Mineral Nutrition of Plants ( I. H. Rorison, ed.), pp. 135–147. Blackwell Scientific Publications, Oxford . Google Scholar Wild, A., Woodhouse, P. J. & Hopper, M. J. 1979. A comparison between the uptake of potassium by plants from solutions of constant potassium concentration and during depletion. J. Exp. Bot. 30: 697–704. 10.1093/jxb/30.4.697 CASWeb of Science®Google Scholar Citing Literature Volume68, Issue3November 1986Pages 551-559 ReferencesRelatedInformation

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