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Le Guennec, M.

Publications and source records attributed to Le Guennec, M..

2 recordsLinked to original sources

The inner scaffold protects from centriole fracture

Centrioles are characterized by a nine-fold arrangement of long-lived microtubule triplets that are held together by an inner protein scaffold. These structurally robust organelles experience strenuous cellular processes such as cell division or ciliary beating while performing their function. However, the molecular mechanisms underlying the stability of microtubule triplets, as well as centriole architectural integrity remain poorly understood. Here, using ultrastructure expansion microscopy (U-ExM) for nanoscale protein mapping, we reveal that POC16 and its human homolog WDR90 are components of the centriolar microtubule wall along the central core region of the centriole. We further found that WDR90 is an evolutionary microtubule associated protein with a predicted structurally homology with the ciliary inner junction protein FAP20. Finally, we demonstrate that WDR90 depletion impairs the localization of inner scaffold components, leading to centriole structural abnormalities in both human and Chlamydomonas cells. Altogether, this work highlights that POC16/WDR90 is a crucial evolutionary conserved molecular player participating in centriole architecture integrity.

cell biology

Homogeneous multifocal excitation for high-throughput super-resolution imaging

Super-resolution microscopies, which allow features below the diffraction limit to be resolved, have become an established tool in biological research. However, imaging throughput remains a major bottleneck in using them for quantitative biology, which requires large datasets to overcome the noise of the imaging itself and to capture the variability inherent to biological processes. Here, we develop a multi-focal flat illumination for field independent imaging (mfFIFI) module, and integrate it into an instant structured illumination microscope (iSIM). Our instrument extends the field of view (FOV) to >100x100 {micro}m2 without compromising image quality, and maintains high-speed (100 Hz), multi-color, volumetric imaging at double the diffraction-limited resolution. We further extend the effective FOV by stitching multiple adjacent images together to perform fast live-cell super-resolution imaging of dozens of cells. Finally, we combine our flat-fielded iSIM setup with ultrastructure expansion microscopy (U-ExM) to collect 3D images of hundreds of centrioles in human cells, as well as of thousands of purified Chlamydomonas reinhardtii centrioles per hour at an effective resolution of [~]35 nm. We apply classification and particle averaging to these large datasets, allowing us to map the 3D organization of post-translational modifications of centriolar microtubules, revealing differences in their coverage and positioning.

biophysics