Literature DB >> 23821619

Matching roots to their environment.

Philip J White1, Timothy S George, Peter J Gregory, A Glyn Bengough, Paul D Hallett, Blair M McKenzie.   

Abstract

BACKGROUND: Plants form the base of the terrestrial food chain and provide medicines, fuel, fibre and industrial materials to humans. Vascular land plants rely on their roots to acquire the water and mineral elements necessary for their survival in nature or their yield and nutritional quality in agriculture. Major biogeochemical fluxes of all elements occur through plant roots, and the roots of agricultural crops have a significant role to play in soil sustainability, carbon sequestration, reducing emissions of greenhouse gasses, and in preventing the eutrophication of water bodies associated with the application of mineral fertilizers. SCOPE: This article provides the context for a Special Issue of Annals of Botany on 'Matching Roots to Their Environment'. It first examines how land plants and their roots evolved, describes how the ecology of roots and their rhizospheres contributes to the acquisition of soil resources, and discusses the influence of plant roots on biogeochemical cycles. It then describes the role of roots in overcoming the constraints to crop production imposed by hostile or infertile soils, illustrates root phenotypes that improve the acquisition of mineral elements and water, and discusses high-throughput methods to screen for these traits in the laboratory, glasshouse and field. Finally, it considers whether knowledge of adaptations improving the acquisition of resources in natural environments can be used to develop root systems for sustainable agriculture in the future.

Entities:  

Keywords:  Anatomy; arabidopsis; cereal; evergreen revolution; fertilizer use efficiency; legume; morphology; nitrogen; phosphorus; physiology; potassium; roots; water

Mesh:

Substances:

Year:  2013        PMID: 23821619      PMCID: PMC3698393          DOI: 10.1093/aob/mct123

Source DB:  PubMed          Journal:  Ann Bot        ISSN: 0305-7364            Impact factor:   4.357


  104 in total

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Review 8.  A paradigm shift towards low-nitrifying production systems: the role of biological nitrification inhibition (BNI).

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Review 3.  Root hair development in the grasses: what we already know and what we still need to know.

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6.  OsSPL3, an SBP-Domain Protein, Regulates Crown Root Development in Rice.

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Review 7.  Phenotypic plasticity of the maize root system in response to heterogeneous nitrogen availability.

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8.  Heterogeneous phosphate supply influences maize lateral root proliferation by regulating auxin redistribution.

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10.  Root traits benefitting crop production in environments with limited water and nutrient availability.

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