Phenotyping root system architecture of cotton (gossypium barbadense L.) grown under salinity

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dc.contributor.author Mottaleb S.A.
dc.contributor.author Darwish E.
dc.contributor.author Mostafa M.
dc.contributor.author Safwat G.
dc.contributor.other Cairo University
dc.contributor.other Egypt; October University for Modern Sciences and Arts
dc.contributor.other Egypt; Agricultural Botany Department
dc.contributor.other Plant Physiology Division
dc.contributor.other Faculty of Agriculture
dc.contributor.other Cairo University
dc.contributor.other Egypt; Faculty of Biotechnology
dc.contributor.other October University for Modern Sciences and Arts
dc.contributor.other Egypt
dc.date.accessioned 2020-01-09T20:41:10Z
dc.date.available 2020-01-09T20:41:10Z
dc.date.issued 2017
dc.identifier.issn 5513677
dc.identifier.other https://doi.org/10.1515/agri-2017-0014
dc.identifier.other PubMedID
dc.identifier.uri https://t.ly/pywjE
dc.description Scopus
dc.description MSA Google Scholar
dc.description.abstract Soil salinity causes an annual deep negative impact to the global agricultural economy. In this study, the effects of salinity on early seedling physiology of two Egyptian cotton (Gossypium barbadense L.) cultivars differing in their salinity tolerance were examined. Also the potential use of a low cost mini-rhizotron system to measure variation in root system architecture (RSA) traits existing in both cultivars was assessed. Salt tolerant cotton cultivar Giza 90 produced significantly higher root and shoot biomass, accumulated lower Na+/K+ ratio through a higher Na+ exclusion from both roots and leaves as well as synthesized higher proline contents compared to salt sensitive Giza 45 cultivar. Measuring RSA in mini-rhizotrons containing solid MS nutrient medium as substrate proved to be more precise and efficient than peat moss/sand mixture. We report superior values of main root growth rate, total root system size, main root length, higher number of lateral roots and average lateral root length in Giza 90 under salinity. Higher lateral root density and length together with higher root tissue tolerance of Na+ ions in Giza 90 give it an advantage to be used as donor genotype for desirable root traits to other elite cultivars. 2017 Walter de Gruyter GmbH. All rights reserved. en_US
dc.language.iso English en_US
dc.publisher Walter de Gruyter GmbH en_US
dc.relation.ispartofseries Agriculture
dc.relation.ispartofseries 63
dc.subject October University for Modern Sciences and Arts
dc.subject جامعة أكتوبر للعلوم الحديثة والآداب
dc.subject University of Modern Sciences and Arts
dc.subject MSA University
dc.subject Gossypium barbadense L en_US
dc.subject Phenotyping en_US
dc.subject Root system architecture en_US
dc.subject Salinity stress en_US
dc.subject cotton en_US
dc.subject cultivar en_US
dc.subject genotype en_US
dc.subject growth rate en_US
dc.subject phenotype en_US
dc.subject root architecture en_US
dc.subject root system en_US
dc.subject salinity en_US
dc.subject salinity tolerance en_US
dc.subject seedling en_US
dc.subject Gossypium barbadense en_US
dc.subject Gossypium hirsutum en_US
dc.title Phenotyping root system architecture of cotton (gossypium barbadense L.) grown under salinity en_US
dc.type Article en_US
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dcterms.source Scopus
dc.identifier.doi https://doi.org/10.1515/agri-2017-0014
dc.identifier.doi PubMedID
dc.Affiliation October University for modern sciences and Arts (MSA)


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