Leaf hydraulic properties of Antarctic plants: effects of growth temperature and its coordination with photosynthesis

Author:

Sáez Patricia L12ORCID,Vallejos Valentina3,Sancho-Knapik Domingo4ORCID,Cavieres Lohengrin A25ORCID,Ramírez Constanza F3,Bravo León A1,Javier Peguero-Pina José4ORCID,Gil-Pelegrín Eustaquio4ORCID,Galmés Jeroni6ORCID

Affiliation:

1. Laboratorio de Fisiología y Biología Molecular Vegetal, Instituto de Agroindustria, Departamento de Ciencias Agronómicas y Recursos Naturales, Facultad de Ciencias Agropecuarias y Medioambiente, Universidad de La Frontera , Temuco , Chile

2. Instituto de Ecología y Biodiversidad-IEB , Concepción , Chile

3. Laboratorio Cultivo de Tejidos Vegetales, Centro de Biotecnología, y Facultad de Ciencias Forestales, Universidad de Concepción , Concepción , Chile

4. Departamento de Sistemas Agrícolas, Forestales y Medio Ambiente, Centro de Investigación y Tecnología Agroalimentaria, Gobierno de Aragón , Zaragoza, España

5. ECOBIOSIS, Departamento de Botánica, Facultad de Ciencias Naturales y Oceanográficas, Universidad de Concepción, Barrio Universitario s/n , Concepción , Chile

6. Research Group on Plant Biology under Mediterranean Conditions, INAGEA-Universitat de les Illes Balears , Palma de Mallorca, Balearic Islands , Spain

Abstract

Abstract One of the well-documented effects of regional warming in Antarctica is the impact on flora. Warmer conditions modify several leaf anatomical traits of Antarctic vascular plants, increasing photosynthesis and growth. Given that CO2 and water vapor partially share their diffusion pathways through the leaf, changes in leaf anatomy could also affect the hydraulic traits of Antarctic plants. We evaluated the effects of growth temperature on several anatomical and hydraulic parameters of Antarctic plants and assessed the trait co-variation between these parameters and photosynthetic performance. Warmer conditions promoted an increase in leaf and whole plant hydraulic conductivity, correlating with adjustments in carbon assimilation. These adjustments were consistent with changes in leaf vasculature, where Antarctic species displayed different strategies. At higher temperature, Colobanthus quitensis decreased the number of leaf xylem vessels, but increased their diameter. In contrast, in Deschampsia antarctica the diameter did not change, but the number of vessels increased. Despite this contrasting behavior, some traits such as a small leaf diameter of vessels and a high cell wall rigidity were maintained in both species, suggesting a water-conservation response associated with the ability of Antarctic plants to cope with harsh environments.

Funder

National Research and Development Agency

Chilean Antarctic Institute

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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