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Lequeu, T.

Publications and source records attributed to Lequeu, T..

2 recordsLinked to original sources

Fluorescence based microviscosity mapping in membraneless organelles

Membraneless organelles (MLOs) are cellular biomolecular condensates formed by liquid-liquid phase separation. Their biological functions are intimately linked to their material properties including viscosity. Condensate viscosity is determined by the size, shape, concentration and molecular interactions between MLOs components. It impacts the diffusion of MLOs constituents and the selective permeability of the condensate, thereby regulating the rate of biochemical reactions. Viscosity modifications associated with liquid-to-gel transition of the condensates are related to pathologies. Current experimental approaches for characterizing the material properties of cellular condensates remain limited. In this study, we report the use of BODIPY-based molecular rotors, in combination with fluorescence lifetime imaging microscopy (FLIM), to monitor the microviscosity of cellular MLOs directly in living cells. The fluorescence lifetime of BODIPY derivatives increases with the viscosity of their microenvironment, enabling quantitative assessment of microviscosity within condensates. HaloTag technology was employed to specifically label MLO components. Our findings reveal that the nucleolus exhibits higher viscosity than the surrounding nucleoplasm and that microviscosity varies across nucleolar sub-compartments. Furthermore, nucleolar reorganization induced by inhibition of rRNA synthesis results in a measurable increase in microviscosity. Finally, we demonstrate that the microviscosity of stress granules is lower than that of the nucleolus. Overall, presented results demonstrate the strong potential of the BODIPY based molecular rotors as a versatile and powerful tools for probing the material properties of cellular MLOs.

biophysics↗

Targeted Photoconvertible BODIPYs Based on Directed Photooxidation Induced Conversion for Applications in Photoconversion and Live Super Resolution Imaging

Photomodulable fluorescent probes are drawing an increasing attention due to their applications in advanced bioimaging. Whereas photoconvertible probes can be advantageously used in tracking, photoswitchable probes constitute key tools for single molecule localization microscopy to perform super resolution imaging. Herein we shed light on a red and far-red BODIPY, namely BDP-576 and BDP-650 possessing both properties of conversion and switching. Our study demonstrates that theses pyrrolyl-BODIPYs respectively convert towards typical green- and red-emitting BODIPYs that are perfectly adapted to microscopy. We also showed that these pyrrolyl-BODIPYs undergo Directed Photooxidation Induced Conversion, a photoconversion mechanism that we recently introduced and where the pyrrole moiety plays a central role. These unique features were used to develop targeted photoconvertible probes towards different organelles or subcellular units (plasma membrane, mitochondria, nucleus, actin, Golgi apparatus, etc.) using chemical targeting moieties and Halo tag. We notably showed that BDP-650 could be used to track intracellular vesicles over more than 20 minutes in two color imaging with laser scanning confocal microscopy demonstrating its robustness. The switching properties of these photoconverters were studied at the single molecule level and were then successfully used in live Single Molecule Localization Microscopy in epithelial cells and neurons. Both membrane and mitochondria targeted probes could be used to decipher membrane 3D architecture and mitochondria dynamics at the nanoscale. This study builds a bridge between the photoconversion and photoswitching properties of probes undergoing directed photooxidation and shows the versatility and efficacy of this mechanism in live advanced imaging.

cell biology↗