Phosphorus acquisition and use: critical adaptations by plants for securing a nonrenewable resource
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Open Access
- 3 March 2003
- journal article
- review article
- Published by Wiley in New Phytologist
- Vol. 157 (3) , 423-447
- https://doi.org/10.1046/j.1469-8137.2003.00695.x
Abstract
Summary: Phosphorus (P) is limiting for crop yield on > 30% of the world's arable land and, by some estimates, world resources of inexpensive P may be depleted by 2050. Improvement of P acquisition and use by plants is critical for economic, humanitarian and environmental reasons. Plants have evolved a diverse array of strategies to obtain adequate P under limiting conditions, including modifications to root architecture, carbon metabolism and membrane structure, exudation of low molecular weight organic acids, protons and enzymes, and enhanced expression of the numerous genes involved in low‐P adaptation. These adaptations may be less pronounced in mycorrhizal‐associated plants. The formation of cluster roots under P‐stress by the nonmycorrhizal species white lupin (Lupinus albus), and the accompanying biochemical changes exemplify many of the plant adaptations that enhance P acquisition and use. Physiological, biochemical, and molecular studies of white lupin and other species response to P‐deficiency have identified targets that may be useful for plant improvement. Genomic approaches involving identification of expressed sequence tags (ESTs) found under low‐P stress may also yield target sites for plant improvement. Interdisciplinary studies uniting plant breeding, biochemistry, soil science, and genetics under the large umbrella of genomics are prerequisite for rapid progress in improving nutrient acquisition and use in plants. Contents I. Introduction 424 II. The phosphorus conundrum 424 III. Adaptations to low P 424 IV. Uptake of P 424 V. P deficiency alters root development and function 426 VI. P deficiency modifies carbon metabolism 431 VII. Acid phosphatase 436 VIII. Genetic regulation of P responsive genes 437 IX. Improving P acquisition 439 X. Synopsis 440Keywords
This publication has 266 references indexed in Scilit:
- Two-component circuitry in Arabidopsis cytokinin signal transductionNature, 2001
- Ethylene hormone receptor action in ArabidopsisBioEssays, 2001
- Disruption of putative anion channel gene AtCLC‐a in Arabidopsis suggests a role in the regulation of nitrate contentThe Plant Journal, 2000
- Isolation of a Gene Encoding a Glycosylated Cytokinin Oxidase from MaizeBiochemical and Biophysical Research Communications, 1999
- Inhibition of Auxin Movement from the Shoot into the Root Inhibits Lateral Root Development in ArabidopsisPlant Physiology, 1998
- Dissolution of phosphate rock in the rhizosphere of five plant species grown in an acid, P-fixing mineral substrateGeoderma, 1997
- Ethylene is a positive regulator of root hair development in Arabidopsis thalianaThe Plant Journal, 1995
- Pyrophosphate‐dependent phosphofructokinase, an anaerobic glycolytic enzyme?FEBS Letters, 1991
- Root‐induced changes in the rhizosphere: Importance for the mineral nutrition of plantsJournal of Plant Nutrition and Soil Science, 1986
- Proteoid root morphology and function inLupinus albusPlant and Soil, 1981