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ICP-MS is a well-established analytical method which excels by high accuracy, high dynamic range and extremely low limits of detection for most metals. Furthermore ICP-MS offers a very high multi-element coverage so that many elements of the periodic table can be detected simultaneously. In this series of lectures, we want to focus on the historical developments, fundamentals, instrumentation and novel applications of ICP-MS in the life and material sciences.
Biological systems exhibit a very high complexity, because they consist of various cell populations showing heterogenic characteristics. Therefore the individual analysis of single cells is important to understand cellular processes as well as their function in a cell system. Especially investigation in the question about what is biological variability and what is a substantial difference between two cells of the same type (which might lead to dysfunction or disease) is of high interest. Today improved spatial and temporal resolution enable the use of laser ablation inductively coupled mass spectrometry (LA-ICP-MS) for element microscopy of single cells. Next to the characterization of natural trace elements the introduction of artificial metal labels into cells is of high interest. Element labeling of cell compartments and/or proteins allows its simultaneous analysis and localization within a cell via element microscopy. Two fast and simple metal staining procedures of adherent cells for identification of single cells via LA-ICP-MS at sub micrometer resolution are presented. An Iridium-intercalator is utilized to stain the cell nuclei whereas the whole cell is stained by maleimido-mono-amide-DOTA-complexes (mDOTA) loaded with lanthanide(III) isotope ions. The metal staining procedures allow the visualization of single cells by element microscopy independent of a superposition of analyte’s 2D element intensity profile with a prior taken bright field image of the sample.
The present study investigates the in vitro phase I metabolism of cis-zearalenone (cis-ZEN) in rat liver microsomes and human liver microsomes. cis-ZEN is an often ignored isomer of the trans-configured Fusarium mycotoxin zearalenone (trans-ZEN). Upon the influence of (UV-) light, trans-ZEN isomerizes to cis-ZEN. Therefore, cis-ZEN is also present in food and feed. The aim of our study was to evaluate the in vitro phase I metabolism of cis-ZEN in comparison to that of trans-ZEN. As a result, an extensive metabolization of cis-ZEN is observed for rat and human liver microsomes as analyzed by HPLC-MS/MS and high-resolution MS. Kinetic investigations based on the substrate depletion approach showed no significant difference in rate constants and half-lives for cis- and trans-ZEN in rat microsomes. In contrast, cis-ZEN was depleted about 1.4-fold faster than trans-ZEN in human microsomes. The metabolite pattern of cis-ZEN revealed a total of 10 phase I metabolites. Its reduction products, α- and β-cis-zearalenol (α- and β-cis-ZEL), were found as metabolites in both species, with α-cis-ZEL being a major metabolite in rat liver microsomes. Both compounds were identified by co-chromatography with synthesized authentic standards. A further major metabolite in rat microsomes was monohydroxylated cis-ZEN. In human microsomes, monohydroxylated cis-ZEN is the single dominant peak of the metabolite profile. Our study discloses three metabolic pathways for cis-ZEN: reduction of the keto-group, monohydroxylation, and a combination of both. Because these routes have been reported for trans-ZEN, we conclude that the phase I metabolism of cis-ZEN is essentially similar to that of its trans isomer. As trans-ZEN is prone to metabolic activation, leading to the formation of more estrogenic metabolites, the novel metabolites of cis-ZEN reported in this study, in particular α-cis-ZEL, might also show higher estrogenicity.