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Redeker, K.

Publications and source records attributed to Redeker, K..

2 recordsLinked to original sources

Chloroform release from ageing cells and Drosophila DJ-1 mutants

Volatile Organic Compounds (VOCs) offer potential for non-invasive diagnosis as biomarkers of disease and metabolism. In complex biological matrices, such as breath however, identifying useful biomarkers from hundreds, or even thousands of VOCs can be challenging. Models of disease, such as cellular or animal models, offer a means to elucidate VOC metabolisms, for accurate targeted studies in patient samples. Neurodegenerative conditions, such as parkinsons have been associated with changed VOCs, offering a potential for early diagnostics and interventions improving treatments and outcomes for patients. Here, three separate models including; human HEK-293t cells, isolated primary rat glial cells, Drosophila flies (wild type and a mutant of the parkinsons associated gene, DJ-1) were grown for an extended period and levels of the VOC chloroform (CHCl3) investigated using custom static headspace sampling chambers. Samples were analysed using targeted gas chromatography mass spectroscopy over time to generate metabolic flux values and chloroform shown to dramatically increase in all models as they aged. HEK-293t cells revealed a 60-fold increase after 10 weeks, glial cells revealed a 10-fold increase after 3 to 4 weeks and DJ-1 mutant flies revealed significant increases compared to control flies at 4 weeks. These results, taken together, indicate that chloroform release is related to ageing in these models and may provide a target for neurodegenerative studies moving forward. We present here the first evidence of chloroform being actively produced by human and rat cells and the first observation of volatile metabolisms in Drosophila.

biochemistry↗

Hypoxic volatile metabolic markers in the MDA-MB-231 breast cancer cell line

Hypoxia in disease describes persistent low oxygen conditions, observed in a range of pathologies, including cancer. In the discovery of biomarkers in biological models, pathophysiological traits present a source of translatable metabolic products for the diagnosis of disease in humans. Part of the metabolome is represented by its volatile, gaseous fraction; the volatilome. Human volatile profiles, such as those found in breath, are able to diagnose disease, however accurate volatile biomarker discovery is required to target reliable biomarkers to develop new diagnostic tools. Using custom chambers to control oxygen levels and facilitate headspace sampling, the MDA-MB-231 breast cancer cell line was exposed to hypoxia (1% oxygen) for 24 hours. The maintenance of hypoxic conditions in the system was successfully validated over this time period. Targeting and non-targeting gas chromatography mass spectrometry approaches revealed four significantly altered volatile organic compounds when compared to control cells. Three compounds were actively consumed by cells: methyl chloride, acetone and n-Hexane. Cells under hypoxia also produced significant amounts of styrene. This work presents a novel methodology for identification of volatile metabolisms under controlled gas conditions with novel observations of volatile metabolisms by breast cancer cells.

cell biology↗