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Biology subjects

BIDAUX, G.

Publications and source records attributed to BIDAUX, G..

3 recordsLinked to original sources

TRPM8 channels control Golgi morphology through an AR-dependent induction of the Scd1 gene and modulation of unsaturated lipid content

Transient receptor potential melastatin 8 (TRPM8), the cold and menthol receptor is essential to thermosensation, although its roles in organs within the body are still unclear. Besides TRPM8, we previously cloned several isoforms, like 4TM-TRPM8, which can be expressed with or without TRPM8. In this study, we characterize the human TRPM8(85) in ER membranes in the vicinity of Golgi apparatus (GA) and mitochondria in prostate epithelial cells. Silencing of TRPM8(85) induces lipid droplet accumulation, GA expansion and fragmentation associated with a drop in the vesicular trafficking to plasmalemma. Furthermore, lipidomic analysis reveals a strong shift in unsaturated fatty acids (UFAs), induced by TRPM8(85) silencing and to a lesser extent silencing of TRPM8. UFAs increase is caused by the induction of {Delta}9 stearoyl desaturase (Scd1) gene. Silencing SCD1 or palmitate incubation prevent GA expansion in TRPM8(85)-silenced cells. Finally, we demonstrated that TRPM8 regulates SCD1 via the androgen receptor.

cell biology↗

Oxidation-reduction imaging of myoglobin unveils two-phase oxidation in the reperfused myocardium.

Myocardial infarction (MI) is a serious cardiovascular problem that causes myocardial injury due to blood flow obstruction to a specific myocardial area. Under ischemic-reperfusion settings, a burst of reactive oxygen species is generated, leading to redox imbalance that could be attributed to several molecules, including myoglobin. Myoglobin is dynamic and exhibits various oxidation-reduction states that have been a subject of attention in the food industry, specifically for meat consumers. However, rarely if ever, have the myoglobin optical properties been used to understand the pathology of MI. In the current study, we develop a novel imaging pipeline that integrates tissue clearing, confocal and light sheet fluorescence microscopy, combined with imaging analysis, and processing tools to investigate and characterize the oxidation-reduction states of myoglobin in the ischemic area of the myocardium post-MI. Using spectral imaging, we have characterized the endogenous fluorescence of the myocardium and demonstrated that it aligns with the spectral profile of myoglobin. Under ischemia-reperfusion experimental settings, we report that the infarcted myocardium spectral signature is similar to that of oxidized myoglobin signal that peaks 3 hours post-reperfusion and decreases with cardioprotection. These results were correlated with MI measurements by Late Gadolinium Enhancement MRI. In conclusion, this seminal work suggests that the redox state of myoglobin can be used as a promising imaging biomarker for characterizing and estimating the size of the MI during early phases of reperfusion.

pathology↗

Combined SPT and FCS methods highlight a mechanism of RNAP II oversampling in cell nuclei

Gene expression orchestration is a key question in fundamental and applied research. Different models for transcription regulation were proposed, yet the dynamic regulation of RNA polymerase II (RNAP II) activity remains a matter of debate. To improve our knowledge of this topic, we investigated RNAP II motility in eukaryotic cells by combining Single Particle Tracking (SPT) and Fluorescence Correlation Spectroscopy (FCS) techniques, to take advantage of their different sensitivities in order to analyze together slow and fast molecular movements. Thanks to calibrated samples, we developed a benchmark for quantitative analysis of molecular dynamics, to eliminate the main potential instrumental biases. We applied this workflow to study the diffusion of RPB1, the catalytic subunit of RNAP II. By a cross-analysis of FCS and SPT, we could highlight different RPB1 motility states and identifyed a stationary state, a slow diffusion state, and two different modes of subdiffusion. Interestingly, our analysis also unveiled the oversampling by RPB1 of nuclear subdomains. Based on these data, we propose a novel model of spatio-temporal transcription regulation. Altogether, our results highlight the importance of combining microscopy approaches at different time scales to get a full insight into the real complexity of molecular diffusion kinetics in cells.

biophysics↗