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dc.contributor.authorJemo, M.en_US
dc.contributor.authorAbaidoo, Robert C.en_US
dc.contributor.authorNolte, C.en_US
dc.contributor.authorHorst, Walter J.en_US
dc.date.accessioned2018-03-07T11:25:59Zen_US
dc.date.available2018-03-07T11:25:59Zen_US
dc.identifier.urihttps://hdl.handle.net/10568/91465en_US
dc.titleAluminum resistance of cowpea as affected by phosphorusdeficiency stressen_US
cg.authorship.typesCGIAR and advanced research instituteen_US
cg.subject.iitaCOWPEAen_US
cg.subject.iitaGENETIC IMPROVEMENTen_US
cg.subject.iitaNUTRITIONen_US
cg.subject.iitaPLANT HEALTHen_US
dcterms.abstractPlants growing in acid soils suffer both phosphorus (P) deficiency and aluminum (Al) toxicity stresses. Selection of genotypes for adaptation to either P deficiency or Al toxicity has sometimes been unsuccessful because these two soil factors often interact. Two experiments were conducted to evaluate eight cowpea genotypes for Al resistance and to study the combined effect of P deficiency and Al toxicity stress on growth, P uptake, and organic acid anion exudation of two genotypes of contrasting Al resistance selected from the first experiment. Relative root inhibition by 30 microM Al ranged from 14% to 60% and differed significantly among the genotypes. Al significantly induced callose formation, particularly in Al-sensitive genotypes. P accumulation was significantly reduced (28% and 95%) by Al application for both the Al-resistant and the Al-sensitive genotypes. Al supply significantly enhanced malate release of root apices of both genotypes. However, the exudation rate was significantly higher in the Al-resistant genotype. P deprivation induced an enhanced malate exudation in the presence of Al only in the Al-resistant genotype IT89KD-391. Citrate exudation rate of the root apices was lower than malate exudation by a factor of about 10, and was primarily enhanced by P deficiency in both genotypes. Al treatment further enhanced citrate exudation in P-sufficient, but not in P-deficient plants. The level of citrate exudation was consistently higher in the Al-resistant genotype IT89KD-391 particularly in presence of Al. It is concluded that the Al-resistant genotype is better adapted to acid Al-toxic and P-deficient soils than the Al-sensitive genotype since both malate and citrate exudation were more enhanced by combined Al and P-deficiency stresses.en_US
dcterms.accessRightsLimited Accessen_US
dcterms.bibliographicCitationJemo, M., Abaidoo, R.C., Nolte, C. & Horst, W.J. (2007). Aluminum resistance of cowpea as affected by phosphorus-deficiency stress. Journal of Plant Physiology, 164(4), 442-451.en_US
dcterms.extentp. 442-451en_US
dcterms.issued2007-04en_US
dcterms.languageenen_US
dcterms.publisherElsevier BVen_US
dcterms.subjectaluminum – al×p interactionen_US
dcterms.subjectorganic acid exudationen_US
dcterms.subjectphosphorusen_US
dcterms.subjectvigna unguiculataen_US
dcterms.typeJournal Articleen_US
cg.contributor.affiliationInternational Institute of Tropical Agricultureen_US
cg.contributor.affiliationUniversität Hannoveren_US
cg.identifier.doihttps://doi.org/10.1016/j.jplph.2005.12.010en_US
cg.isijournalISI Journalen_US
cg.coverage.regionAfricaen_US
cg.coverage.regionWestern Africaen_US
cg.coverage.countryNigeriaen_US
cg.coverage.iso3166-alpha2NGen_US
cg.reviewStatusPeer Reviewen_US
cg.issn0176-1617en_US
cg.volume164en_US
cg.issue4en_US


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