First evidence of nanoparticle uptake through leaves and roots in beech (Fagus sylvatica L.) and pine (Pinus sylvestris L.)

Author:

Ballikaya Paula12ORCID,Brunner Ivano1,Cocozza Claudia34,Grolimund Daniel5,Kaegi Ralf6,Murazzi Maria Elvira1,Schaub Marcus1ORCID,Schönbeck Leonie C17,Sinnet Brian6,Cherubini Paolo1289

Affiliation:

1. WSL Swiss Federal Institute for Forest, Snow and Landscape Research , Zürcherstrasse 111, CH-8903 Birmensdorf , Switzerland

2. Department of Geography, University of Zurich , Winterthurerstrasse 190, CH-8057 Zurich , Switzerland

3. Department of Agriculture , Food, Environment and Forestry (DAGRI), , Via delle Cascine, 5, I-50145 Florence , Italy

4. University of Florence , Food, Environment and Forestry (DAGRI), , Via delle Cascine, 5, I-50145 Florence , Italy

5. Swiss Light Source, PSI Paul Scherrer Institute , Forschungsstrasse 111, CH-5232 Villigen PSI , Switzerland

6. Eawag Swiss Federal Institute of Aquatic Science and Technology , Department Process Engineering, Überlandstrasse 133, CH-8600 Dübendorf , Switzerland

7. Department of Botany & Plant Sciences, University of California Riverside , 2150 Batchelor Hall, Riverside, CA 92521-0124 USA

8. Department of Forest and Conservation Sciences , Faculty of Forestry, , 2004-2424 Main Mall, Vancouver, BC V6T 1Z4 , Canada

9. University of British Columbia , Faculty of Forestry, , 2004-2424 Main Mall, Vancouver, BC V6T 1Z4 , Canada

Abstract

Abstract Trees have been used for phytoremediation and as biomonitors of air pollution. However, the mechanisms by which trees mitigate nanoparticle pollution in the environment are still unclear. We investigated whether two important tree species, European beech (Fagus sylvatica L.) and Scots pine (Pinus sylvestris L.), are able to take up and transport differently charged gold nanoparticles (Au-NPs) into their stem by comparing leaf-to-root and root-to-leaf pathways. Au-NPs were taken up by roots and leaves, and a small fraction was transported to the stem in both species. Au-NPs were transported from leaves to roots but not vice versa. Leaf Au uptake was higher in beech than in pine, probably because of the higher stomatal density and wood characteristics of beech. Confocal (3D) analysis confirmed the presence of Au-NPs in trichomes and leaf blade, about 20–30 μm below the leaf surface in beech. Most Au-NPs likely penetrated into the stomatal openings through diffusion of Au-NPs as suggested by the 3D XRF scanning analysis. However, trichomes were probably involved in the uptake and internal immobilization of NPs, besides their ability to retain them on the leaf surface. The surface charge of Au-NPs may have played a role in their adhesion and uptake, but not in their transport to different tree compartments. Stomatal conductance did not influence the uptake of Au-NPs. This is the first study that shows nanoparticle uptake and transport in beech and pine, contributing to a better understanding of the interactions of NPs with different tree species.

Funder

Swiss National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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