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PMID: 23071218 Published · ppublish English Journal Article Review

Enhancing phosphorus and zinc acquisition efficiency in rice: a critical review of root traits and their potential utility in rice breeding.

Annals of botany ·Vol. 112 ·No. 2 ·2013-07-00 ·Pages 331-45

Rose TJ, Impa SM, Rose MT, Pariasca-Tanaka J, Mori A, Heuer S, Johnson-Beebout SE, Wissuwa M

Abstract

Rice is the world's most important cereal crop and phosphorus (P) and zinc (Zn) deficiency are major constraints to its production. Where fertilizer is applied to overcome these nutritional constraints it comes at substantial cost to farmers and the efficiency of fertilizer use is low. Breeding crops that are efficient at acquiring P and Zn from native soil reserves or fertilizer sources has been advocated as a cost-effective solution, but would benefit from knowledge of genes and mechanisms that confer enhanced uptake of these nutrients by roots. This review discusses root traits that have been linked to P and Zn uptake in rice, including traits that increase mobilization of P/Zn from soils, increase the volume of soil explored by roots or root surface area to recapture solubilized nutrients, enhance the rate of P/Zn uptake across the root membrane, and whole-plant traits that affect root growth and nutrient capture. In particular, this review focuses on the potential for these traits to be exploited through breeding programmes to produce nutrient-efficient crop cultivars. Few root traits have so far been used successfully in plant breeding for enhanced P and Zn uptake in rice or any other crop. Insufficient genotypic variation for traits or the failure to enhance nutrient uptake under realistic field conditions are likely reasons for the limited success. More emphasis is needed on field studies in mapping populations or association panels to identify those traits and underlying genes that are able to enhance nutrient acquisition beyond the level already present in most cultivars.

Keywords
Adventitious roots QTL deoxymugineic acid low-molecular-weight organic acids marker-assisted selection nutrient-use efficiency phosphorus transporters phosphorus uptake quantitative trait loci radial oxygen loss radical oxygen stress root hairs zinc uptake
MeSH Terms
Biological Transport Breeding Carboxylic Acids/metabolism Genotype Oryza/genetics,metabolism Oxidative Stress Phenotype Phosphorus/metabolism Plant Roots/genetics,metabolism Plant Shoots/genetics,metabolism Quantitative Trait Loci Rhizosphere Soil/chemistry Zinc/metabolism
Chemicals
Carboxylic Acids Soil Phosphorus Zinc
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Rose T J
Southern Cross Plant Science, Southern Cross University, Lismore, NSW 2480, Australia.
Impa S M
Rose M T
Pariasca-Tanaka J
Mori A
Heuer S
Johnson-Beebout S E
Wissuwa M
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Article Info
Journal
Annals of botany
Abbr.
Ann Bot
ISSN
1095-8290
Published
2013-07-00
Epub
2012-00-15
Pages
331-45
Language
English
Region
England
NLM ID
0372347
PMCID
PMC3698374
Subset
IM
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