Literature DB >> 33873400

Phosphorus acquisition and use: critical adaptations by plants for securing a nonrenewable resource.

Carroll P Vance1,2, Claudia Uhde-Stone2,3, Deborah L Allan3.   

Abstract

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 440.

Entities:  

Keywords:  expressed sequence tags (ESTs); genetics; nutrient acquisition; plant stress; roots; white lupin (Lupinus albus)

Year:  2003        PMID: 33873400     DOI: 10.1046/j.1469-8137.2003.00695.x

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  112 in total

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2.  A potential phosphate crisis.

Authors:  P H Abelson
Journal:  Science       Date:  1999-03-26       Impact factor: 47.728

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Authors:  M H Brown; I T Paulsen; R A Skurray
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Review 4.  Engineering crop plants: getting a handle on phosphate.

Authors:  Henrik Brinch-Pedersen; Lisbeth Dahl Sørensen; Preben Bach Holm
Journal:  Trends Plant Sci       Date:  2002-03       Impact factor: 18.313

5.  LEPS2, a phosphorus starvation-induced novel acid phosphatase from tomato.

Authors:  J C Baldwin; A S Karthikeyan; K G Raghothama
Journal:  Plant Physiol       Date:  2001-02       Impact factor: 8.340

6.  The response of the phosphate uptake system and the organic acid exudation system to phosphate starvation in Sesbania rostrata.

Authors:  T Aono; N Kanada; A Ijima; H Oyaizu
Journal:  Plant Cell Physiol       Date:  2001-11       Impact factor: 4.927

7.  The efficiency of Arabidopsis thaliana (Brassicaceae) root hairs in phosphorus acquisition.

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Review 8.  Molecular genetic approaches to plant development.

Authors:  W Boerjan; B den Boer; M van Montagu
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  68 in total

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4.  The role of strigolactones in P deficiency induced transcriptional changes in tomato roots.

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5.  Leaf phosphorus fractionation in rice to understand internal phosphorus-use efficiency.

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6.  TOR coordinates nucleotide availability with ribosome biogenesis in plants.

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7.  Epichloë gansuensis Increases the Tolerance of Achnatherum inebrians to Low-P Stress by Modulating Amino Acids Metabolism and Phosphorus Utilization Efficiency.

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8.  Morphological and Metabolite Responses of Potatoes under Various Phosphorus Levels and Their Amelioration by Plant Growth-Promoting Rhizobacteria.

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Review 9.  Ethylene and Nitric Oxide Involvement in the Regulation of Fe and P Deficiency Responses in Dicotyledonous Plants.

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10.  Characterization of contrasting rice (Oryza sativa L.) genotypes reveals the Pi-efficient schema for phosphate starvation tolerance.

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