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Mazurczyk, M.

Publications and source records attributed to Mazurczyk, M..

2 recordsLinked to original sources

Cell-type specific iron content regulation revealed by single-cell iron quantification

Iron is crucial for cellular metabolism and cell growth. Nevertheless, in humans, both iron deficiency and disorders of iron overload are widespread. How cellular iron content varies depending upon iron availability, and how this influences cell function is poorly characterised. We developed a method to quantify metals in hundreds of cells per minute via single-cell inductively-coupled plasma mass spectrometry (sc-ICP-MS), and used this to explore iron usage by immune cells. Activated murine T-cells exposed to a 625-fold titration of extracellular iron maintained close homeostatic control, with iron content varying by [~]20%. However, these variations strongly correlated with activation characteristics and proliferation. Running sc-ICP-MS downstream of flow cytometric sorting showed that murine T-cells and B-cells ex vivo exhibit similar mean and heterogeneity of cellular iron while splenic macrophages contain twice as much iron and more heterogeneous iron content. Finally, activated human B-cells contain [~]10-fold more iron per cell than murine B-cells. We suggest that mechanisms of iron homeostasis impart particular ranges or set-points of iron content to different cell types and activation states, and that small changes in iron content have large effects on cell behaviour. Our methodological advance and consequent findings suggest new approaches to studying the biology of metals.

cell biology↗

Rapid and precise quantification of lymphocyte iron content by single cell inductively coupled plasma mass spectrometry

Metals facilitate catalysis during cellular metabolism, but heterogeneity of metal content at single-cell level within and between cell populations is poorly characterized. This is important because deficiencies of biometals, for example iron, are enormously prevalent worldwide. Here we quantify metal content of single-cells using inductively-coupled plasma mass spectrometry. To develop the method, we used rhodium and iridium-intercalated Jurkat cells, obtaining >0.96% r2 cross-analytical correlation with mass cytometry. We quantified iron and calcium mass/cell for murine T-lymphocytes with 3% and 8% 2-sigma intra-precision, respectively, when assessing thousands of cells/minute. T-lymphocytes exposed to a 625-fold difference in extracellular iron concentrations maintained close iron homeostatic control, varying [~]20% in iron content. Nevertheless, this relatively small variation strongly correlated with changes in cellular activation characteristics measured by flow cytometry. We also assessed human B-cell iron content, which was [~]10-fold higher than murine T-lymphocytes. Overall, we demonstrate rapid iron quantification at single-cell level in different cell types and relate cellular iron content to cell function. TeaserPrecise and rapid iron metallomics of lymphocytes by single cell ICP-MS is a powerful approach for accessing signatures of immunological status.

immunology↗