Synchrotron XFM tomography for elucidating metals and metalloids in hyperaccumulator plants

Author:

Spiers Kathryn M1ORCID,Brueckner Dennis123,Garrevoet Jan1,Falkenberg Gerald1,van der Ent Antony4ORCID

Affiliation:

1. Deutsches Elektronen-Synchrotron DESY , Hamburg, Germany

2. Department of Physics, University of Hamburg , Hamburg, Germany

3. Faculty of Chemistry and Biochemistry, Ruhr-University Bochum , Bochum, Germany

4. Centre for Mined Land Rehabilitation, Sustainable Minerals Institute, The University of Queensland , St Lucia, Australia

Abstract

Abstract Visualizing the endogenous distribution of elements within plant organs affords key insights in the regulation of trace elements in plants. Hyperaccumulators have extreme metal(loid) concentrations in their tissues, which make them useful models for studying metal(loid) homeostasis in plants. X-ray-based methods allow for the nondestructive analysis of most macro and trace elements with low limits of detection. However, observing the internal distributions of elements within plant organs still typically requires destructive sample preparation methods, including sectioning, for synchrotron X-ray fluorescence microscopy (XFM). X-ray fluorescence microscopy-computed tomography (XFM–CT) enables “virtual sectioning” of a sample thereby entirely avoiding artefacts arising from destructive sample preparation. The method can be used on frozen-hydrated samples, as such preserving “life-like” conditions. Absorption and Compton scattering maps obtained from synchrotron XFM–CT offer exquisite detail on structural features that can be used in concert with elemental data to interpret the results. In this article we introduce the technique and use it to reveal the internal distribution of hyperaccumulated elements in hyperaccumulator plant species. XFM–CT can be used to effectively probe the distribution of a range of different elements in plant tissues/organs, which has wide ranging applications across the plant sciences.

Funder

DESY

Helmholtz Association

EU Framework Programme for Research and Innovation H2020

National Computational Infrastructure

French National Research Agency

Publisher

Oxford University Press (OUP)

Subject

Metals and Alloys,Biochemistry,Biomaterials,Biophysics,Chemistry (miscellaneous)

Reference77 articles.

1. Synchrotron-Based X-Ray Fluorescence Microscopy as a Technique for Imaging of Elements in Plants;Kopittke;Plant Physiol.,2018

2. Methods to Visualize Elements in Plants;Kopittke;Plant Physiol.,2020

3. Application of Quantitative Fluorescence and Absorption-Edge Computed Microtomography to Image Metal Compartmentalization in Alyssum murale;McNear;Environ. Sci. Technol.,2005

4. MicroX-Ray Absorption Near Edge Structure Tomography Reveals Cell-Specific Changes of Zn Ligands in Leaves of Turnip Yellow Mosaic Virus Infected Plants;Mijovilovich;Spectrochim. Acta Part B,2019

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