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hal.structure.identifierUniversidad de Talca
dc.contributor.authorHERRERA, Raul
hal.structure.identifierBiodiversité, Gènes & Communautés [BioGeCo]
dc.contributor.authorKRIER, Catherine
hal.structure.identifierBiodiversité, Gènes & Communautés [BioGeCo]
dc.contributor.authorLALANNE, Céline
hal.structure.identifierInspection Régionale des Eaux et Forêts
dc.contributor.authorBA, El Hadji Maodo
hal.structure.identifierBotAnique et BioinforMatique de l'Architecture des Plantes [UMR AMAP]
dc.contributor.authorSTOKES, Alexia
hal.structure.identifierBiodiversité, Gènes & Communautés [BioGeCo]
dc.contributor.authorSALIN, Franck
hal.structure.identifierBotAnique et BioinforMatique de l'Architecture des Plantes [UMR AMAP]
hal.structure.identifierBotanique et Modélisation de l'Architecture des Plantes et des Végétations [UMR AMAP]
dc.contributor.authorFOURCAUD, Thierry
hal.structure.identifierUniversité de Bordeaux Ségalen [Bordeaux 2]
dc.contributor.authorCLAVEROL, Stéphane
hal.structure.identifierBiodiversité, Gènes & Communautés [BioGeCo]
dc.contributor.authorPLOMION, Christophe
dc.date.issued2010
dc.identifier.issn1471-2229
dc.description.abstractEnBackground Plants are subjected to continuous stimuli from the environment and have evolved an ability to respond through various growth and development processes. Phototropism and gravitropism responses enable the plant to reorient with regard to light and gravity. Results We quantified the speed of maritime pine seedlings to reorient with regard to light and gravity over 22 days. Seedlings were inclined at 15, 30 and 45 degrees with vertical plants as controls. A lateral light source illuminated the plants and stem movement over time was recorded. Depending on the initial angle of stem lean, the apical response to the lateral light source differed. In control and 15° inclined plants, the apex turned directly towards the light source after only 2 h. In plants inclined at 30° and 45°, the apex first reoriented in the vertical plane after 2 h, then turned towards the light source after 24 h. Two-dimensional gel electrophoresis coupled with mass spectrometry was then used to describe the molecular response of stem bending involved in photo- and gravi-tropism after 22 hr and 8 days of treatment. A total of 486 spots were quantitatively analyzed using image analysis software. Significant changes were determined in the protein accumulation of 68 protein spots. Early response gravitropic associated proteins were identified, which are known to function in energy related and primary metabolism. A group of thirty eight proteins were found to be involved in primary metabolism and energy related metabolic pathways. Degradation of Rubisco was implicated in some protein shifts. Conclusions Our study demonstrates a rapid gravitropic response in apices of maritime pine seedlings inclined >30°. Little or no response was observed at the stem bases of the same plants. The primary gravitropic response is concomitant with a modification of the proteome, consisting of an over accumulation of energy and metabolism associated proteins, which may allow the stem to reorient rapidly after bending.
dc.language.isoen
dc.publisherBioMed Central
dc.subjectANALYSE PROTEOMIQUE
dc.subjectLUMIERE
dc.subject.enPHOTOTROPISME
dc.subject.enRUBISCO
dc.subject.enROOT GRAVITROPISM
dc.subject.enMICROGRAVITY CONDITIONS
dc.subject.enSTRESS
dc.subject.enPIN MARITIME
dc.title.en(Not) Keeping the stem straight: a proteomic analysis of maritime pine seedlings undergoing phototropism and gravitropism
dc.typeArticle de revue
dc.identifier.doi10.1186/1471-2229-10-217
dc.subject.halSciences du Vivant [q-bio]/Biologie végétale
bordeaux.journalBMC Plant Biology
bordeaux.page217
bordeaux.volume10
bordeaux.peerReviewedoui
hal.identifierhal-02664731
hal.version1
hal.popularnon
hal.audienceInternationale
hal.origin.linkhttps://hal.archives-ouvertes.fr//hal-02664731v1
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