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Xelhuantzi, M. S. C.

Publications and source records attributed to Xelhuantzi, M. S. C..

2 recordsLinked to original sources

Dynamic diffusion analysis of the yeast plasma membrane using Airyscan based microscopic techniques

The yeast plasma membrane (PM) is highly compartmentalised into distinct nanoscale domains. The mechanisms by which this organisation regulates surface proteins are not fully understood, and it remains unclear how different biophysical modalities capture diffusion kinetics across varying spatial scales. Using confocal microscopy and an Airyscan2 detector, we benchmarked two prominent techniques: Fluorescence Correlation Spectroscopy (FCS) via the Zeiss Dynamics Profiler and Fluorescence Recovery After Photobleaching (FRAP). We quantified the lateral diffusion of three functionally diverse GFP-tagged model proteins: the exocytic t-SNARE Sso2, the lipid-binding protein Pmp3, and the eisosome-associated protein Ycp4. While diffusion coefficients aligned tightly between both modalities for Pmp3 and Ycp4, Sso2 exhibited a stark 14-fold discrepancy, displaying drastically faster local mobility by FCS compared to macroscopic recovery by FRAP. High-resolution 3D Structured Illumination Microscopy (3D-SIM) shows that Sso2 is partitioned into regional subdomains, that occupy less PM area than the network-like localisation of Pmp3. Our findings suggest that FCS captures rapid, localised diffusion within these microenvironments, whereas FRAP measures highly restricted transit across domain boundaries. Ultimately, this work demonstrates that membrane diffusion coefficients cannot be interpreted in isolation and capturing true lateral mobility requires pairing kinetic measurements with super-resolution spatial mapping to decode complex membrane compartmentalisation.

cell biology↗

High resolution live cell imaging to define ultrastructural and dynamic features of the halotolerant yeast Debaryomyces hansenii

Although some budding yeasts have proved tractable and intensely studied models, others are more recalcitrant. Debaryomyces hansenii, an important yeast species in food and biotechnological industries with curious physiological characteristics, has proved difficult to manipulate genetically and remains poorly defined. To remedy this, we have combined live cell fluorescent dyes with high resolution imaging techniques to define the sub-cellular features of D. hansenii, such as the mitochondria, nuclei, vacuoles and the cell wall. Using these tools, we define biological processes like the cell cycle, organelle inheritance and different membrane trafficking pathways of D. hansenii for the first time. Beyond this, reagents designed to study Saccharomyces cerevisiae proteins were used to access proteomic information about D. hansenii. Finally, we optimised the use of label free holotomography to image yeast, defining the physical parameters and visualising sub-cellular features like membranes and vacuoles. Not only does this work shed light on D. hansenii but this combinatorial approach serves as a template for how other cell biological systems, which are not amenable to standard genetic procedures, can be studied.

cell biology↗