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Di Russo, J.

Publications and source records attributed to Di Russo, J..

3 recordsLinked to original sources

Laminin alpha 5 - induced mechanical homeostasis modulates retinal epithelium functionality

Epithelial cells are highly interconnected, whereby they acquire mesoscale mechanical properties to accomplish specific tissue functions. In homeostasis, this mechanical status can be summarised as mechanical homeostasis, regulated by the balance of intercellular tension and extracellular matrix adhesion forces. In the outer retina, the significance of this force balance and its consequences for vision remains poorly understood. We found that the density of basement membrane laminins modulates the level of retinal pigmented epithelium contractility, which directly controls its efficiency in phagocytosing photoreceptor outer segments. In vivo, the density gradient of laminins follows retinal functional demand, supporting the physiological role of laminins in controlling epithelial mechanical homeostasis. Our data suggest that laminin density and isoform heterogeneity can differentially engage integrins {beta}1 and {beta}4, the ratio of which determines the contribution of actin vs keratin cytoskeleton in balancing tissue mechanics. With this work, we suggest that the extracellular matrix-defined mechanical status of retinal pigmented epithelium is a novel parameter for visual function. SignificanceIn the retina, the retinal pigmented epithelium (RPE) is responsible for the daily phagocytosis of photoreceptor cell fragments, a process vital for visual function. Along the visual axis, there is a natural decrease in the ratio of photoreceptors to RPE cells, indicating a decrease in RPE functional demand. This study reveals that the density of laminins in RPE basement membrane also diminishes along this axis, critically influencing RPE function by regulating its contractility. For the first time, we demonstrate the presence of a laminin- defined mechanical gradient within the RPE, which determines its capacity to support photoreceptor cells. Our findings highlight the importance of mechanical properties as a key factor in visual function, offering new insights into retinal health and disease.

biophysics↗

Quantitative Mapping of Keratin Networks in 3D

Mechanobiology requires precise quantitative information on processes taking place in specific 3D microenvironments. Connecting the abundance of microscopical, molecular, biochemical and cell mechanical data with defined topologies has turned out to be extremely difficult. Establishing such structural and functional 3D maps needed for biophysical modeling is a particular challenge for the cytoskeleton, which consists of long and interwoven filamentous polymers coordinating subcellular processes and interactions of cells with their environment. To date, useful tools are available for the segmentation and modeling of actin filaments and microtubules but comprehensive tools for the mapping of intermediate filament organization are still lacking. In this work, we describe a workflow to model and examine the complete 3D arrangement of the keratin intermediate filament cytoskeleton in epithelial cells both in vitro and in vivo. Numerical models are derived from super resolution 3D imaging of fluorescence-tagged keratin filaments. They are interrogated and annotated at different length scales using different modes of visualization including immersive virtual reality. In this way, information is provided on network organization at the subcellular level including mesh arrangement, density and isotropic configuration as well as details on filament morphology such as bundling, curvature and orientation. We show that the comparison of these parameters helps to identify, in quantitative terms, similarities and differences of keratin network organization in epithelial cell types defining subcellular domains, notably basal, apical, lateral and perinuclear systems. The described approach and the presented data are pivotal for generating mechanobiological models that can be experimentally tested.

cell biology↗

Integrin α5β1 nano-presentation regulates collective keratinocyte migration independent of substrate rigidity

Nanometer-scale properties of the extracellular matrix influence many biological processes, including cell motility. While much information is available for single cell migration, to date, no knowledge exists on how the nanoscale presentation of extracellular matrix receptors influences collective cell migration. In wound healing, basal keratinocytes collectively migrate on a fibronectin-rich provisional basement membrane to re-epithelialize the injured skin. Among other receptors, the fibronectin receptor integrin 5{beta}1 plays a pivotal role in this process. Using a highly specific integrin 5{beta}1 peptidomimetic combined with nanopatterned hydrogels, we show that keratinocyte sheets regulate their migration ability at an optimal integrin 5{beta}1 nanospacing. This efficiency relies on the effective propagation of stresses within the cell monolayer independent of substrate stiffness. For the first time, this work highlights the importance of extracellular matrix receptor nanoscale organization required for efficient tissue regeneration.

biophysics↗