Millimetre-resolution mapping of citrate exuded from soil-grown roots using a novel, low-invasive sampling technique

Author:

Tiziani Raphael12,Puschenreiter Markus2,Smolders Erik3,Mimmo Tanja1,Herrera José Carlos4ORCID,Cesco Stefano1,Santner Jakob5

Affiliation:

1. Faculty of Science and Technology, Free University of Bozen-Bolzano, Bolzano, Italy

2. Institute of Soil Research, Department of Forest and Soil Sciences, University of Natural Resources and Life Science, Vienna, Austria

3. Division of Soil and Water Management, Katholieke Universiteit Leuven, Leuven, Belgium

4. Institute of Viticulture and Pomology, Department of Crop Sciences, University of Natural Resources and Life Science, Vienna, Austria

5. Institute of Agronomy, Department of Crop Sciences, University of Natural Resources and Life Science, Vienna, Austria

Abstract

Abstract The reliable sampling of root exudates in soil-grown plants is experimentally challenging. This study aimed at developing a citrate sampling and mapping technique with millimetre-resolution using DGT (diffusive gradients in thin films) ZrOH-binding gels. Citrate adsorption kinetics, DGT capacity, and stability of ZrOH gels were evaluated. ZrOH gels were applied to generate 2D maps of citrate exuded by white lupin roots grown in a rhizotron in a phosphorus-deficient soil. Citrate was adsorbed quantitatively and rapidly by the ZrOH gels; these gels can be stored after sampling for several weeks prior to analysis. The DGT capacity of the ZrOH gel for citrate depends on the ionic strength and the pH of the soil solution, but was suitable for citrate sampling. We generated for the first time 2D citrate maps of rhizotron-grown plants at a millimetre resolution to measure an illustrated plant response to phosphorus fertilization, demonstrating that DGT-based citrate sampling is suitable for studying root exudation in soil environments, at high spatial resolution. The change of binding material would also allow sampling of other exudate classes and exudation profiles of entire root systems. These aspects are crucial in cultivar breeding and selection.

Funder

Austrian Science Fund

Federal State of Lower Austria

Free University of Bolzano

University of Natural Resources and Life Sciences

Vienna

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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