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Updated: Aug 26, 2026

Two-Dimensional Visualization and Quantification of Labile, Inorganic Plant Nutrients and Contaminants in Soil
Published on: September 1, 2020
Spatially resolved elemental imaging reveals microdomain-specific trace element accumulation in Patella vulgata under
Eleonora Matić1, Claudio Adriano Piechnik2, Sara Escudero-Cernuda3
1TESLA-Analytical Chemistry, Institute of Chemistry, University of Graz, Graz, Austria.
Abstract:
Coastal ecosystems are increasingly impacted by anthropogenic contamination, yet conventional biomonitoring approaches based on bulk tissue analysis provide limited insight into the biological distribution and localisation of pollutants. Here, Patella vulgata was evaluated as a bioindicator using quantitative, spatially resolved multi-element imaging by laser ablation inductively coupled plasma time-of-flight mass spectrometry (LA-ICP-TOFMS). Distinct accumulation patterns were observed across organs, with the digestive gland identified as the primary compartment for long-term storage of both essential and potentially toxic elements, while gills reflected more direct interaction with the surrounding seawater. High-resolution multi-element mapping revealed pronounced spatial heterogeneity within the digestive gland, indicating functional compartmentalisation associated with elemental uptake, distribution, and potential sequestration processes. Data-driven analysis further resolved microdomains characterised by distinct elemental signatures consistent with tissue microanatomy. Using controlled exposure to antimony (Sb, 2 μg/L) as a model contaminant, representing a high-end but environmentally plausible coastal contamination scenario, selective accumulation was observed exclusively in the digestive gland, with mean concentrations increasing to 0.42 μg/g and localised hotspots reaching 5.3 μg/g. This tissue-specific response demonstrates the ability of P. vulgata to record and spatially resolve elevated Sb exposure patterns and highlights the importance of sub-organismal resolution for interpreting contaminant dynamics. Overall, this work demonstrates that spatially resolved elemental analysis can provide complementary information on pollutant uptake and storage, advancing marine biomonitoring beyond bulk measurements. LA-ICP-TOFMS provides a high-resolution tool for investigating contaminant localisation and biological responses at the microanatomical scale, supporting the use of P. vulgata as a valuable sentinel species for investigating trace metal behaviour in coastal environments.
