Advanced Micronutrient Imaging in Plants: The POLYX Beamline at the NSRC SOLARIS JU |
| M. Pypkaa, A. Barabasza, K. Sowab, P. Wróbelb,c, T. Kołodziejb, P. Koreckid, O. Siemianowskia
aUniversity of Warsaw, Faculty of Biology, Institute of Experimental Plant Biology and Biotechnology, Department of Plant Metal Homeostasis, Miecznikowa 1, 02-096 Warsaw, Poland bNational Synchrotron Radiation Centre SOLARIS, Jagiellonian University, Czerwone Maki 98, 30-392 Kraków, Poland cAGH University of Krakow, Faculty of Physics and Applied Computer Science, Mickiewicza 30, 30-059 Kraków, Poland dJagiellonian University, Institute of Physics, Łojasiewicza 11, 30-348 Kraków, Poland |
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| Micronutrients such as Zn, Cu, Fe, and Mn play essential roles in plant physiology, yet their low concentrations and tissue-specific distributions pose significant analytical challenges. While various imaging techniques exist, most either sacrifice resolution for throughput or lack the ability to quantify elemental co-localization across scales. In this study, using the POLYX beamline at the National Synchrotron Radiation Centre SOLARIS, we applied micro X-ray fluorescence (µXRF) mapping to investigate the spatial distribution and co-localization of Zn, Cu, Fe, Mn, and Ca in the root system. Whole-root scans at 100 µm resolution provided an overview of elemental architecture, while selected regions imaged at 5 µm resolution revealed tissue-level heterogeneity. To interpret elemental relationships, we generated overlap matrices using both loose (92%) and strict (97%) intensity thresholds and calculated Pearson and Spearman correlation coefficients alongside Manders' overlap metrics. Our results show that coarse resolution inflates apparent co-localization, particularly for Zn, which appears broadly distributed at 100 µm but is confined to outer tissues at 5 µm. In contrast, Ca-based overlaps remained stable across scales, while Fe–Mn pairs showed intermediate resolution sensitivity. This study demonstrates that the whole plant root may be analysed using the POLYX beamline setup with a multiresolution range (from 5 µm). We show a methodological framework for micronutrient localization in roots of relatively large (beyond seedling) plants and offer first insights into potential differences in element heterogeneity that may result from the spatial regulation of nutrient uptake and transport, giving a preliminary framework for future studies. |
DOI:10.12693/APhysPolA.149.S218 topics: micro X-ray uorescence (µXRF), synchrotron, micronutrients co-localization, plant metal homeostasis |