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The metabolic fingerprint of Scots pine-root and needle metabolites show different patterns in dying trees.
Hunziker, Stefan; Nazarova, Tatiana; Kather, Michel; Hartmann, Martin; Brunner, Ivano; Schaub, Marcus; Rigling, Andreas; Hug, Christian; Schönbeck, Leonie; Bose, Arun K; Kammerer, Bernd; Gessler, Arthur.
Afiliação
  • Hunziker S; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Nazarova T; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Kather M; Core Facility Metabolomics, Albert-Ludwigs-University Freiburg, Freiburg 79014, Germany.
  • Hartmann M; Department of Environmental Systems Science, Institute of Agricultural Sciences, ETH Zurich, Zurich 8092, Switzerland.
  • Brunner I; Forest Soils and Biogeochemistry, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Schaub M; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Rigling A; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Hug C; Department of Environmental Systems Science, Institute of Terrestrial Ecosystems, ETH Zurich, Zurich 8092, Switzerland.
  • Schönbeck L; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Bose AK; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
  • Kammerer B; Department of Botany and Plant Sciences, University of California, Riverside, CA 9252, USA.
  • Gessler A; Forest Dynamics, Swiss Federal Research Institute WSL, Birmensdorf 8903, Switzerland.
Tree Physiol ; 44(4)2024 Apr 03.
Article em En | MEDLINE | ID: mdl-38526975
ABSTRACT
The loss of leaves and needles in tree crowns and tree mortality are increasing worldwide, mostly as a result of more frequent and severe drought stress. Scots pine (Pinus sylvestris L.) is a tree species that is strongly affected by these developments in many regions of Europe and Asia. So far, changes in metabolic pathways and metabolite profiles in needles and roots on the trajectory toward mortality are unknown, although they could contribute to a better understanding of the mortality mechanisms. Therefore, we linked long-term observations of canopy defoliation and tree mortality with the characterization of the primary metabolite profile in needles and fine roots of Scots pines from a forest site in the Swiss Rhone valley. Our results show that Scots pines are able to maintain metabolic homeostasis in needles over a wide range of canopy defoliation levels. However, there is a metabolic tipping point at around 80-85% needle loss. Above this threshold, many stress-related metabolites (particularly osmoprotectants, defense compounds and antioxidants) increase in the needles, whereas they decrease in the fine roots. If this defoliation tipping point is exceeded, the trees are very likely to die within a few years. The different patterns between needles and roots indicate that mainly belowground carbon starvation impairs key functions for tree survival and suggest that this is an important factor explaining the increasing mortality of Scots pines.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Árvores / Raízes de Plantas / Folhas de Planta / Pinus sylvestris Idioma: En Revista: Tree Physiol Assunto da revista: BOTANICA / FISIOLOGIA Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Suíça

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Árvores / Raízes de Plantas / Folhas de Planta / Pinus sylvestris Idioma: En Revista: Tree Physiol Assunto da revista: BOTANICA / FISIOLOGIA Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Suíça