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dc.contributorBatley, Jacquelineen_US
dc.contributorBentley, Alisonen_US
dc.contributorBryant, Johnen_US
dc.contributorCai, Hongweien_US
dc.contributorCockram, Jamesen_US
dc.contributorde Oliveira, Antonio Costaen_US
dc.contributorCseke, Lelanden_US
dc.contributorDe Pace, Ciroen_US
dc.contributorEdwards, Daviden_US
dc.contributorGepts, Paulen_US
dc.contributorGreenland, Andyen_US
dc.contributorHall, Anthony E.en_US
dc.contributorHenry, Roberten_US
dc.contributorHori, Kiyosumien_US
dc.contributorHowe, Glenn Thomasen_US
dc.contributorHughes, Stephenen_US
dc.contributorHumphreys, Mikeen_US
dc.contributorLightfoot, Daviden_US
dc.contributorMarshall, Atholeen_US
dc.contributorMayes, Seanen_US
dc.contributorNguyen, Henry T.en_US
dc.contributorOgbonnaya, Francis Chuksen_US
dc.contributorOrtiz, Rodomiroen_US
dc.contributorPaterson, Andrew H.en_US
dc.contributorTuberosa, Robertoen_US
dc.contributorValliyodan, Babuen_US
dc.contributorVarshney, Rajeeven_US
dc.contributorYano, Masahiroen_US
dc.creatorAbberton, Michaelen_US
dc.date.accessioned2017-04-01T21:20:45Z
dc.date.available2017-04-01T21:20:45Z
dc.identifierhttp://oar.icrisat.org/id/eprint/9008en_US
dc.identifierhttps://mel.cgiar.org/reporting/download/hash/iiIVpubfen_US
dc.identifier.citationMichael Abberton, Jacqueline Batley, Alison Bentley, John Bryant, Hongwei Cai, James Cockram, Antonio Costa de Oliveira, Leland Cseke, Ciro De Pace, David Edwards, Paul Gepts, Andy Greenland, Anthony E. Hall, Robert Henry, Kiyosumi Hori, Glenn Thomas Howe, Stephen Hughes, Mike Humphreys, David Lightfoot, Athole Marshall, Sean Mayes, Henry T. Nguyen, Francis Chuks Ogbonnaya, Rodomiro Ortiz, Andrew H. Paterson, Roberto Tuberosa, Babu Valliyodan, Rajeev Varshney, Masahiro Yano. (30/4/2016). Global agricultural intensification during climate change: a role for genomics. Plant Biotechnology Journal, 14 (4), pp. 1-4.en_US
dc.identifier.urihttps://hdl.handle.net/20.500.11766/6586
dc.description.abstractAgriculture is now facing the ‘perfect storm’ of climate change, increasing costs of fertilizer and rising food demands from a larger and wealthier human population. These factors point to a global food deficit unless the efficiency and resilience of crop production is increased. The intensification of agriculture has focused on improving production under optimized conditions, with significant agronomic inputs. Furthermore, the intensive cultivation of a limited number of crops has drastically narrowed the number of plant species humans rely on. A new agricultural paradigm is required, reducing dependence on high inputs and increasing crop diversity, yield stability and environmental resilience. Genomics offers unprecedented opportunities to increase crop yield, quality and stability of production through advanced breeding strategies, enhancing the resilience of major crops to climate variability, and increasing the productivity and range of minor crops to diversify the food supply. Here we review the state of the art of genomic-assisted breeding for the most important staples that feed the world, and how to use and adapt such genomic tools to accelerate development of both major and minor crops with desired traits that enhance adaptation to, or mitigate the effects of climate changeen_US
dc.formatPDFen_US
dc.languageenen_US
dc.publisherWiley Open Accessen_US
dc.rightsCC-BY-NC-4.0en_US
dc.sourcePlant Biotechnology Journal;14,(2016) Pagination 1-4en_US
dc.titleGlobal agricultural intensification during climate change: a role for genomicsen_US
dc.typeJournal Articleen_US
dcterms.available2016-04-30en_US
dcterms.extent1-4en_US
cg.creator.idAbberton, Michael: 0000-0003-2555-9591en_US
cg.subject.agrovocclimate changeen_US
cg.subject.agrovocfood securityen_US
cg.subject.agrovocsustainabilityen_US
cg.contributor.centerInternational Crops Research Institute for the Semi-Arid Tropics - ICRISATen_US
cg.contributor.centerInternational Institute of Tropical Agriculture - IITAen_US
cg.contributor.centerUniversity of California-Davis - UC Davisen_US
cg.contributor.centerOregon State University - OSU United Statesen_US
cg.contributor.centerSwedish University of Agricultural Sciences - SLUen_US
cg.contributor.centerThe University of Western Australia, Faculty of Science, School of Plant Biology - UWA - FoS - SoPBen_US
cg.contributor.centerGrains Research and Development Corporation - GRDCen_US
cg.contributor.centerNational Institute of Agricultural Botany - NIABen_US
cg.contributor.centerUniversity of Georgia - UGAen_US
cg.contributor.centerUniversity of Queensland, Queensland Alliance for Agriculture and Food Innovation - UQ - Qaafien_US
cg.contributor.centerTuscia University - UNITUSen_US
cg.contributor.centerUniversity of Exeteren_US
cg.contributor.centerAberystwyth Universityen_US
cg.contributor.centerUniversity of Missouri - MU USAen_US
cg.contributor.centerJapan Grassland Agriculture and Forage Seed Associationen_US
cg.contributor.centerFederal University of Pelotasen_US
cg.contributor.centerThe University of Alabama in Huntsville - UAHen_US
cg.contributor.centerUniversity of California-Riverside - UCRen_US
cg.contributor.centerNational Institute of Agrobiological Sciences** - NIAS Japanen_US
cg.contributor.centerSouthern Illinois University - SIUen_US
cg.contributor.centerCrops For the Futureen_US
cg.contributor.centerUniversity of Bologna - UNIBOen_US
cg.contributor.centerThe National Agriculture and Food Research Organization, Institute of Crop Science - NARO Japan-NICSen_US
cg.contributor.crpCGIAR Research Program on Grain Legumes - GLen_US
cg.contributor.funderNot Applicableen_US
cg.contributor.project-lead-instituteInternational Crops Research Institute for the Semi-Arid Tropics - ICRISATen_US
cg.contactpaterson@uga.eduen_US
cg.identifier.doihttps://dx.doi.org/10.1111/pbi.12467en_US
cg.isijournalISI Journalen_US
dc.identifier.statusOpen accessen_US
mel.impact-factor6.090en_US
cg.issn1467-7644en_US
cg.journalPlant Biotechnology Journalen_US
cg.issue4en_US
cg.volume14en_US


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