Publication:
Life-long growth of Quercus ilex L. at natural CO2 springs acclimates sulphur, nitrogen and carbohydrate metabolism of the progeny to elevated pCO2

cris.virtual.author-orcid0000-0001-9649-2289
cris.virtualsource.author-orcide0c63152-9465-4d54-a5f3-0bd776213b4a
dc.contributor.authorSchulte, M.
dc.contributor.authorvon Ballmoos, Peter
dc.contributor.authorRennenberg, Heinz
dc.contributor.authorHerschbach, Cornelia
dc.date.accessioned2025-01-08T19:56:37Z
dc.date.available2025-01-08T19:56:37Z
dc.date.issued2002-12
dc.description.abstractThe aim of the present study was to analyse whether offspring of mature Quercus ilex trees grown under life-long elevated pCO2 show alterations in the physiological response to elevated pCO2 in comparison with those originating from mature trees grown at current ambient pCO2. To investigate changes in C- (for changes in photosynthesis, biomass and lignin see Polle, McKee & Blaschke Plant, Cell and Environment 24, 1075–1083, 2001), N-, and S-metabolism soluble sugar, soluble non-proteinogenic nitrogen compounds (TSNN), nitrate reductase (NR), thiols, adenosine 5′-phosphosulphate (APS) reductase, and anions were analysed. For this purpose Q. ilex seedlings were grown from acorns of mother tree stands at a natural spring site (elevated pCO2) and a control site (ambient pCO2) of the Laiatico spring, Central Italy. Short-term elevated pCO2 exposure of the offspring of control oaks lead to higher sugar contents in stem tissues, to a reduced TSNN content in leaves, and basipetal stem tissues, to diminished thiol contents in all tissues analysed, and to reduced APS reductase activity in both, leaves and roots. Most of the components of C-, N- and S-metabolism including APS reductase activity which were reduced due to short-term elevated pCO2 exposure were recovered by life-long growth under elevated pCO2 in the offspring of spring oaks. Still TSNN contents in phloem exudates increased, nitrate contents in lateral roots and glutathione in leaves and phloem exudates remained reduced in these plants. The present results demonstrated that metabolic adaptations of Q. ilex mother trees to elevated pCO2 can be passed to the next generation. Short- and long-term effects on source-to-sink relation and physiological and genetic acclimation to elevated pCO2 are discussed.
dc.description.numberOfPages13
dc.description.sponsorshipInstitut für Pflanzenwissenschaften (IPS)
dc.identifier.doi10.7892/boris.73976
dc.identifier.publisherDOI10.1046/j.1365-3040.2002.00948.x
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/198121
dc.language.isoen
dc.publisherBlackwell Science
dc.relation.ispartofPlant, Cell & Environment
dc.relation.issn0140-7791
dc.relation.organizationDCD5A442C579E17DE0405C82790C4DE2
dc.relation.organizationDCD5A442C579E17DE0405C82790C4DE2
dc.subject.ddc500 - Science::580 - Plants (Botany)
dc.titleLife-long growth of Quercus ilex L. at natural CO2 springs acclimates sulphur, nitrogen and carbohydrate metabolism of the progeny to elevated pCO2
dc.typearticle
dspace.entity.typePublication
dspace.file.typetext
oaire.citation.endPage1727
oaire.citation.issue12
oaire.citation.startPage1715
oaire.citation.volume25
oairecerif.author.affiliationInstitut für Pflanzenwissenschaften (IPS)
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.contributor.rolecreator
unibe.description.ispublishedpub
unibe.eprints.legacyId73976
unibe.journal.abbrevTitlePLANT CELL ENVIRON
unibe.refereedTRUE
unibe.subtype.articlejournal

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