Disentangling leaf structural and material properties in relationship to their anatomical and chemical compositional traits in oaks (QuercusL.)

Author:

Alonso-Forn David1,Sancho-Knapik Domingo12,Fariñas María Dolores3,Nadal Miquel1,Martín-Sánchez Rubén1,Ferrio Juan Pedro14,de Dios Víctor Resco567,Peguero-Pina José Javier12,Onoda Yusuke8,Cavender-Bares Jeannine9ORCID,Arenas Tomás Gómez Álvarez3,Gil-Pelegrín Eustaquio1

Affiliation:

1. Department of Agricultural and Forest Systems and the Environment, Agrifood Research and Technology Centre of Aragon (CITA), Avda. Montañana 930 , 50059 Zaragoza , Spain

2. Instituto Agroalimentario de Aragón – IA2 (CITA-Universidad de Zaragoza) , Zaragoza , Spain

3. Sensors and Ultrasonic Technologies Department, Information and Physics Technologies Institute, Spanish National Research Council (CSIC) , Madrid , Spain

4. Aragon Agency for Research and Development (ARAID) , E-50018 Zaragoza , Spain

5. School of Life Science and Engineering, Southwest University of Science and Technology , Mianyang , China

6. Department of Crop and Forest Sciences, Universitat de Lleida , E-25198 Lleida , Spain

7. JRU CTFC-Agrotecnio-CERCA Center , E-25198 Lleida , Spain

8. Division of Forest and Biomaterials Science, Graduate School of Agriculture, Kyoto University, Oiwake , Kitashirakawa, Kyoto 606-8502 , Japan

9. Ecology, Evolution and Behavior, University of Minnesota , Saint Paul, MN 55108 , USA

Abstract

AbstractBackground and AimsThe existence of sclerophyllous plants has been considered an adaptive strategy against different environmental stresses. Given that it literally means ‘hard-leaved’, it is essential to quantify the leaf mechanical properties to understand sclerophylly. However, the relative importance of each leaf trait for mechanical properties is not yet well established.MethodsGenus Quercus is an excellent system to shed light on this because it minimizes phylogenetic variation while having a wide variation in sclerophylly. We measured leaf anatomical traits and cell wall composition, analysing their relationship with leaf mass per area and leaf mechanical properties in a set of 25 oak species.Key ResultsThe upper epidermis outer wall makes a strong and direct contribution to the leaf mechanical strength. Moreover, cellulose plays a crucial role in increasing leaf strength and toughness. The principal component analysis plot based on leaf trait values clearly separates Quercus species into two groups corresponding to evergreen and deciduous species.ConclusionsSclerophyllous Quercus species are tougher and stronger owing to their thicker epidermis outer wall and/or higher cellulose concentration. Furthermore, section Ilex species share common traits, although they occupy different climates. In addition, evergreen species living in mediterranean-type climates share common leaf traits irrespective of their different phylogenetic origin.

Funder

Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria

Ministerio de Ciencia e Innovación

Agencia Estatal de Investigación

Juan de la Cierva-Incorporación

Juan de la Cierva-Formación

Publisher

Oxford University Press (OUP)

Subject

Plant Science

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