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Medana, C.

Publications and source records attributed to Medana, C..

2 recordsLinked to original sources

An integrated biomaterials-centred approach of the ageing thymic microenvironment reveals design principles for regenerative biomaterials

Thymic involution is commonly addressed as a loss of epithelial and lymphoid tissue, yet the accompanying remodelling of the microenvironment remains poorly defined. This work applied a biomaterials-centered approach to compare young and aged bovine thymus by integrating histology, oscillatory rheology, untargeted lipidomics, ICP-MS and AP-MALDI mass spectrometry imaging. This holistic approach connects the mechanical, compositional, and spatial features of the native thymus with the development of thymus-inspired biomaterials. Ageing increased both storage and loss moduli by more than one order of magnitude and reduced the linear viscoelastic region approximately fivefold, defining a markedly stiffer and more strain-sensitive material state. This mechanical transition was accompanied by lipid remodelling, with double realtive contribution of triacylglycerols to the lipid pool doubled and loss of membrane-associated phospholipids. The elemental profile also contracted, with total metal content decreasing by one-third and zinc showing a reduction of 70%. At the architectural level, the corticomedullary ratio was more than halved, while AP-MALDI imaging revealed an approximately 40% reduction in the annotated molecular repertoire and a shift from homogeneous to fragmented distributions of choline and representative phosphatidylcholine species. These results show that thymic ageing emerges from the concomitant variations of viscoelastic behaviour, chemical composition, and molecular organization. By defining these interconnected alterations, this study establishes a materials-based foundation for the design of bioinspired systems aimed at reproducing features of the young thymic niche and supporting future thymic repair. HighlightsO_LIAgeing increased viscoelastic moduli and reduced deformation tolerance. C_LIO_LIThe lipid profile shifted from membrane lipids towards triacylglycerols. C_LIO_LIThe elemental pool contracted, with zinc showing the strongest depletion. C_LIO_LIHistology and AP-MALDI-MSI revealed loss of spatial organization. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=165 SRC="FIGDIR/small/740917v1_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@1baa8cdorg.highwire.dtl.DTLVardef@1a04649org.highwire.dtl.DTLVardef@1669ce6org.highwire.dtl.DTLVardef@1c6e9ca_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Gut3Gel: A High Throughput Mucus Model for Culturing Human Intestinal Microbiota

The human intestinal microbiota plays a crucial role in health and disease, yet recreating its complex interactions in vitro remains a significant challenge. Gut3Gel introduced herein as a novel in vitro mucus model, designed for culturing complex microbial communities without the need for anaerobic conditions. Intestinal microbiota samples from five donors were individually inoculated in Gut3Gel and cultured for 72 hours. Taxonomic composition assessment revealed that Gut3Gel sustains diverse microbial species and particularly promotes the growth of mucus-associated bacteria including Bifidobacterium, Lactobacillus, and Faecalibacterium. Microbial metabolic activity within Gut3Gel was confirmed by the increased production of acetate and butyrate, as well as of exopolysaccharides. Gut3Gel reproduces physiological features of intestinal mucus, providing a reproducible and scalable culturing platform. These features make Gut3Gel a promising tool for advancing microbiota research with potential applications in drug screening, microbiome mining, and high throughput testing of microbiome-modulating molecules.

microbiology↗