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Reduced mesophyll conductance under chronic O3 exposure in poplar reflects thicker cell walls and increased subcellular diffusion pathway lengths according to the anatomical model.
Joffe, Ricardo; Tosens, Tiina; Berthe, Audrey; Jolivet, Yves; Niinemets, Ülo; Gandin, Anthony.
Afiliação
  • Joffe R; Faculté des Sciences et Technologies, Université de Lorraine, AgroParisTech, INRAE, SILVA, Nancy, France.
  • Tosens T; Department of Crop Science and Plant Biology, Institute of Agricultural and Environmental Sciences, Estonian University of Life Sciences, Tartu, Estonia.
  • Berthe A; Faculté des Sciences et Technologies, Université de Lorraine, AgroParisTech, INRAE, SILVA, Nancy, France.
  • Jolivet Y; Faculté des Sciences et Technologies, Université de Lorraine, AgroParisTech, INRAE, SILVA, Nancy, France.
  • Niinemets Ü; Department of Crop Science and Plant Biology, Institute of Agricultural and Environmental Sciences, Estonian University of Life Sciences, Tartu, Estonia.
  • Gandin A; Estonian Academy of Sciences, Tallinn, Estonia.
Plant Cell Environ ; 2024 Aug 05.
Article em En | MEDLINE | ID: mdl-39101376
ABSTRACT
Ozone (O3) is one of the most harmful and widespread air pollutants, affecting crop yield and plant health worldwide. There is evidence that O3 reduces the major limiting factor of photosynthesis, namely CO2 mesophyll conductance (gm), but there is little quantitative information of O3-caused changes in key leaf anatomical traits and their impact on gm. We exposed two O3-responsive clones of the economically important tree species Populus × canadensis Moench to 120 ppb O3 for 21 days. An anatomical diffusion model within the leaf was used to analyse the entire CO2 diffusion pathway from substomatal cavities to carboxylation sites and determine the importance of each structural and subcellular component as a limiting factor. gm decreased substantially under O3 and was found to be the most important limitation of photosynthesis. This decrease was mostly driven by an increased cell wall thickness and length of subcellular diffusion pathway caused by altered interchloroplast spacing and chloroplast positioning. By contrast, the prominent leaf integrative trait leaf dry mass per area was neither affected nor related to gm under O3. The observed relationship between gm and anatomy, however, was clone-dependent, suggesting that mechanisms regulating gm may differ considerably between closely related plant lines. Our results confirm the need for further studies on factors constraining gm under stress conditions.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Plant Cell Environ Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Plant Cell Environ Ano de publicação: 2024 Tipo de documento: Article