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Plants of Pinus taeda L. from each of four families were fertilized with nitrogen (N), phosphorus (P) or N + P at planting. The H family had the highest growth in dry mass while the L family had the lowest growth. Measurements of plant hydraulic architecture traits were performed during the first year after planting. Stomatal conductance (gs), water potential at predawn (Ψpredawn) and at midday (Ψmidday), branch hydraulic conductivity (ks and kl) and [ver mas...]
dc.contributor.authorFaustino, Laura Ines
dc.contributor.authorBulfe, Nardia María
dc.contributor.authorPinazo, Martin Alcides
dc.contributor.authorMonteoliva, Silvia Estela
dc.contributor.authorGraciano, Corina
dc.date.accessioned2018-05-29T12:36:53Z
dc.date.available2018-05-29T12:36:53Z
dc.date.issued2013-03
dc.identifier.issn0829-318X
dc.identifier.issn1758-4469
dc.identifier.otherhttps://doi.org/10.1093/treephys/tps129
dc.identifier.urihttps://academic.oup.com/treephys/article/33/3/241/1643651
dc.identifier.urihttp://hdl.handle.net/20.500.12123/2504
dc.description.abstractPlants of Pinus taeda L. from each of four families were fertilized with nitrogen (N), phosphorus (P) or N + P at planting. The H family had the highest growth in dry mass while the L family had the lowest growth. Measurements of plant hydraulic architecture traits were performed during the first year after planting. Stomatal conductance (gs), water potential at predawn (Ψpredawn) and at midday (Ψmidday), branch hydraulic conductivity (ks and kl) and shoot hydraulic conductance (K) were measured. One year after planting, dry weight partitioning of all aboveground organs was performed. Phosphorus fertilization increased growth in all four families, while N fertilization had a negative effect on growth. L family plants were more negatively affected than H family plants. This negative effect was not due to limitations in N or P uptake because plants from all the families and treatments had the same N and P concentration in the needles. Phosphorus fertilization changed some hydraulic parameters, but those changes did not affect growth. However, the negative effect of N can be explained by changes in hydraulic traits. L family plants had a high leaf dry weight per branch, which was increased by N fertilization. This change occurred together with a decrease in shoot conductance. Therefore, the reduction in gs was not enough to avoid the drop in Ψmidday. Consequently, stomatal closure and the deficient water status of the needles resulted in a reduction in growth. In H family plants, the increase in the number of needles per branch due to N fertilization was counteracted by a reduction in gs and also by a reduction in tracheid lumen size and length. Because of these two changes, Ψmidday did not drop and water availability in the needles was adequate for sustained growth. In conclusion, fertilization affects the hydraulic architecture of plants, and different families develop different strategies. Some of the hydraulic changes can explain the negative effect of N fertilization on growth.eng
dc.formatapplication/pdfes_AR
dc.language.isoenges_AR
dc.rightsinfo:eu-repo/semantics/restrictedAccesses_AR
dc.sourceTree physiology 33 (3) : 241–251. (March 2013)es_AR
dc.subjectPinus Taedaes_AR
dc.subjectAplicación de Abonoses_AR
dc.subjectFertilizer Applicationeng
dc.subjectNitrógenoes_AR
dc.subjectNitrogeneng
dc.subjectFósforoes_AR
dc.subjectPhosphoruseng
dc.subjectZona Subtropicales_AR
dc.subjectSubtropical Zoneseng
dc.subjectContenido de Materia Secaes_AR
dc.subjectDry Matter Contenteng
dc.subject.otherPino Taedaes_AR
dc.titleDry weight partitioning and hydraulic traits in young Pinus taeda trees fertilized with nitrogen and phosphorus in a subtropical areaeng
dc.typeinfo:ar-repo/semantics/artículoes_AR
dc.typeinfo:eu-repo/semantics/articlees_AR
dc.typeinfo:eu-repo/semantics/publishedVersiones_AR
dc.description.origenEEA Montecarloes_AR
dc.description.filFil: Faustino, Laura Inés. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - La Plata. Instituto de Fisiología Vegetal. Universidad Nacional de La Plata. Facultad de Ciencias Naturales y Museo. Instituto de Fisiología Vegetal; Argentinaes_AR
dc.description.filFil: Bulfe, Nardia María. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Montecarlo; Argentinaes_AR
dc.description.filFil: Pinazo, Martin Alcides. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Montecarlo; Argentinaes_AR
dc.description.filFil: Monteoliva, Silvia Estela. Universidad Nacional de La Plata. Facultad de Ciencias Agrarias y Forestales; Argentinaes_AR
dc.description.filFil: Graciano, Corina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - La Plata. Instituto de Fisiología Vegetal. Universidad Nacional de La Plata. Facultad de Ciencias Naturales y Museo. Instituto de Fisiología Vegetal; Argentina. Universidad Nacional de La Plata. Facultad de Ciencias Agrarias y Forestales; Argentinaes_AR
dc.subtypecientifico


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