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- Brominated flame retardant (4)
- Chiral separation (3)
- Extraction (3)
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- HPLC-MS/MS (3)
- Analysis (2)
- Breath (2)
- Diastereomers (2)
- Flame retardant (2)
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Organisationseinheit der BAM
Ziel der vorliegenden Untersuchungen, die im Rahmen einer Diplomarbeit der Fachhochschule Lausitz/Senftenberg an der BAM durchgeführt wurden, war ein Vergleich unterschiedlicher Extraktionsverfahren für die Bestimmung von extrahierbarem organischem Halogen (EOX) in Bodenproben. EOX ist ein für die rasche Bewertung der Organochlor- Belastung kontaminationsverdächtiger Flächen wertvoller Summenparameter, der sämtliche mit organischen Lösungsmittel extrahierbare Organohalogenverbindungen erfasst. Gegenwärtig existiert jedoch kein für die Bodenanalytik genormtes Verfahren für die Durchführung von EOX-Bestimmungen. Daher wird in der Praxis auf das für Schlämme und Sedimente entwickelte Verfahren nach DIN 38414 S17 (1990) zurückgegriffen, so auch in der Bundesbodenschutz- und Altlasten-Verordung (BBodSchV). Literaturangaben und Erfahrungen mit der Wiederfindungsrate polarer Extraktionsmittel und moderner Extraktionsverfahren bei Organochlorpestiziden, die eine bedeutende Quelle für EOX in Schlämmen und Böden darstellen, lassen vermuten, dass das genannte Normverfahren systematisch zu Unterbefunden neigen könnte. Für die Untersuchungen wurden an der BAM entwickelte Boden-Referenzmaterialien mit "natürlicher", über jahrzehntelangen Eintrag entstandener DDT- und Lindan-Belastung verwendet. Neben den klassischen Extraktionsverfahren nach Soxhlet kamen die ultraschallunterstützte Extraktion, die Mikrowellen- und die beschleunigte Lösungsmittelextraktion (ASE) jeweils mit Lösungsmitteln unterschiedlicher Polarität zum Einsatz. Extraktionsausbeuten und Wiederholpräzision der einzelnen Varianten wurden verglichen und vor dem Hintergrund der Ergebnisse unabhängiger Verfahren wie der gaschromatographischen Bestimmung der einzelnen Organochlorverbindungen bewertet. Die Polarität des Extraktionsmittels weist auch bei trockenen Böden den größten Einfluss auf die Extraktionsausbeuten der in den untersuchten Proben enthaltenen Organochlorverbindungen auf. Die Mischung Hexan/Aceton (1:1), die sich für die Extraktion verschiedener organischer Parameter bewährt hat, ist hinsichtlich der EOX-Analytik der existierenden Norm überlegen.
This article describes a simple and quick in silico method for the prediction of cytochrome P450 (CYP)-mediated hydroxylation of drug-like compounds. Testosterone and progesterone, two known substrates of CYP3A4, are used to test the method. Further, we apply the procedure to predict sites of hydroxylation of isomers of the flame retardant hexabromocyclododecane by CYP3A4. Within the method, the compound is rotated in the binding pocket of the cytochrome, so that each hydrogen under consideration is placed near the active centre. Afterwards, short molecular dynamics simulations are provided for each step of the rotation. All steps of the simulation are compared concerning the distances between the hydrogens and the active centre and the corresponding energies. The computational results correlate well with experimental results.
In vitro cultured lung cancer cells are not suitable for animal-based breath biomarker detection
(2015)
In vitro cultured lung cancer cell lines were investigated regarding the possible identification of volatile organic compounds as potential biomarkers. Gas samples from the headspace of pure culture medium and from the cultures of human lung adenocarcinoma cell lines A549 and Lu7466 were exposed to polypropylene fleece in order to absorb odour components. Sniffer dogs were trained with loaded fleeces of both cell lines, and honey bees were trained with fleeces exposed to A549. Afterwards, their ability to distinguish between cell-free culture medium odour and lung cancer cell odour was tested. Neither bees nor dogs were able to discriminate between odours from the cancer cell cultures and the pure culture medium. Solid phase micro extraction followed by gas chromatography with mass selective detection produced profiles of volatiles from the headspace offered to the animals. The profiles from the cell lines were largely similar; distinct differences were based on the decrease of volatile culture medium components due to the cells' metabolic activity. In summary, cultured lung cancer cell lines do not produce any biomarkers recognizable by animals or gas chromatographic analysis.
The design and operation of an observational study on the profiles of volatile organic compounds (VOC) in the breath of 37 lung cancer patients and 23 healthy controls of similar age is outlined. The necessity to quantify each VOC considered as potential disease marker on basis of individual calibration is elaborated and the quality control measures required to maintain reproducibility in breath sampling and subsequent instrumental trace VOC analysis using SPME-GC-MS over a study period of 14 months are described. 24 VOC were quantified on basis of their previously suggested potential as cancer markers. The breath concentration levels of aromatic compounds was expectedly increased in smokers while lung cancer patients displayed significantly increased levels of oxygenated VOC such as aldehydes, 2-butanone and 1-butanol. Though sets of selected oxygenated VOC displayed sensitivities and specificities between 80 and 90% using linear discriminant analysis with leave-one-out cross validation the effective selectivity of the breath VOC approach with regard to cancer detection is clearly limited. Results were discussed against the background of the literature on volatile cancer marker investigations and the prospects to link increased VOC levels in patients’ breath with approaches to employ sniffer dogs. Experiences from this study and the literature suggest that the current state of breath VOC based discrimination between cancer patients and healthy controls is hardly improvable. Observational studies tend to observe significant differences mostly in levels of certain oxygenated VOC but without resolution required for practical application. Any step towards practicable exploitation of VOC profile differences for illness detection would have to solve current restrictions set by the low and variable VOC concentrations. Further challenges are the technical complexity of studies involving breath sampling and possibly the limited capability of current analytical procedures to detect instable marker candidates.