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  3. Triple-Isotope Evidence for Distinct Physiological Strategies of Larch and Cembra Pine Across the Holocene.
 

Triple-Isotope Evidence for Distinct Physiological Strategies of Larch and Cembra Pine Across the Holocene.

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BORIS DOI
10.48620/93580
Publisher DOI
10.1093/treephys/tpaf166
PubMed ID
41452008
Description
Stable isotopes of carbon, oxygen and hydrogen in tree rings provide a record of plant physiological processes and environmental variability. Although an increasing number of studies now apply triple-isotope approaches, no investigation has yet tested their temporal stability over millennial timescales or assessed the relative impacts of physiology versus climate on long-term isotopic signals. Here, we used 9000 years of multi-isotope records from co-occurring deciduous larch (Larix decidua) and evergreen cembra pine (Pinus cembra) at the Alpine treeline. We found a high interspecies coherence for δ18O throughout the Holocene with a robust summer hydroclimate sensitivity, confirming its dominance by environmental drivers. In contrast, δ13C and δ2H show weaker and less stable coherence, reflecting species-specific physiology. Larch exhibits tight δ2H-δ18O and δ2H-δ13C correlations and stronger climate sensitivity, consistent with its reliance on freshly assimilated carbon. Pine, by contrast, shows weaker δ2H-climate relationships and frequent decoupling from δ13C and δ18O, reflecting potential storage use and metabolic fractionations. Thus, inter-isotope relationships reveal that δ18O is a robust long-term climate proxy, while δ13C and δ2H encode contrasting carbon-use strategies and metabolic processes across species that may vary over time. Together, these findings demonstrate that multi-isotope, multi-species approaches not only strengthen climate reconstructions but also provide a physiological dimension to long-term isotope records.
Date of Publication
2026-02-04
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Keyword(s)
Conifer
•
Pinus
•
Stable Isotopes
•
Treeline
•
larix
Language(s)
en
Contributor(s)
Arosio, Titoorcid-logo
Lehmann, Marco M
Leuenberger, Markusorcid-logo
Klima- und Umweltphysik (KUP) - Environmental Isotopes and Gases
Physics Institute, Climate and Environmental Physics
Oeschger Centre for Climate Change Research (OCCR)
Saurer, Matthias
Additional Credits
Klima- und Umweltphysik (KUP) - Environmental Isotopes and Gases
Physics Institute, Climate and Environmental Physics
Oeschger Centre for Climate Change Research (OCCR)
Series
Tree Physiology
Publisher
Oxford University Press
ISSN
1758-4469
0829-318X
Access(Rights)
open.access
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