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Atlas, Y.

Publications and source records attributed to Atlas, Y..

2 recordsLinked to original sources

Adaptation of endothelial cells to microenvironment topographical cues through lysyl oxidase like-2-mediated basement membrane scaffolding

Basement membrane (BM) provides structural support and signaling platform for blood vessels. While its major structural components are required for vascular morphogenesis, integrating BM regulators, like the lysyl oxidase LOXL2, and BM assembly in cell response to microenvironement cues remain poorly understood. Here we study the early deposition and supramolecular assembly of BM components using correlative atomic force and fluorescence microscopy. The fibrillar deposition of fibronectin is gradually remodeled and associates with the collagen IV meshwork as it organizes into BM. We demonstrate that LOXL2 is deposited with both proteins and participates in their remodeling. Alteration of BM scaffolding by LOXL2-depletion affects focal adhesion maturation and cytoskeleton remodeling. This altered BM organization maintains stress fibers, affects the distribution and activation of mechanosensors and alters cell barrier properties. Furthermore, using 3D micro-printed substrates, we demonstrate that BM assembly regulates endothelial cell response to topographical constraint. We therefore propose a mechanism directly linking the scaffolding of BM components and adaptation to the topographical signals from the microenvironment.

cell biology↗

3D vascularized microtumors unveil aberrant ccRCC vasculature and differential sensitivity to targeted treatments

Clear cell renal cell carcinoma (ccRCC) is largely driven by Von Hippel Lindau (VHL) protein deficiency, promoting epithelial-mesenchymal transition, invasion, and hypervascularization, mediated by vascular endothelial growth factor (VEGF) signaling resulting in a structurally abnormal capillary network, which remains insufficiently defined. Previous studies correlating patient outcome with microvascular density yielded diverse results, underscoring the limitations of conventional parameters to fully capture vascular complexity. While VEGF-targeted anti-angiogenic first-line therapies such as sunitinib prolong progression-free survival in metastatic ccRCC, their efficacy is hampered by resistance mechanisms. This study aims to elucidate the three-dimensional architecture of ccRCC-specific vasculature in the tumor microenvironment, and its response to targeted therapies. Analysis of human ccRCC samples identified two distinct vascular structures, markedly differing from tumor capillaries, termed ponds and sheets, which were further characterized in patient-derived xenografts using advanced 3D microscopy on optically cleared samples. Ponds are large, dilated, irregular structures with wide cavity, whereas sheets are thin, elongated, and collapsed structures. To further dissect endothelial network morphogenesis, we developed an innovative in vitro 3D vascularized microtumor model, faithfully recapitulating the aberrant pond architecture. Dynamic live imaging unraveled the temporal relationship between tumor invasion and pond morphogenesis. Additionally, drug sensitivity assays demonstrated that ponds exhibit lower responsiveness to sunitinib compared to tumor capillaries. Altogether, our 3D model not only captures a specific architecture of ccRCC vascular network but also provides mechanistic insight into its development and therapeutic sensitivity. This model offers a promising avenue for personalized treatment assessment and for identification of novel therapeutic strategies. Statement of significanceA co-culture-engineered model integrating tumor spheroid invasion and capillary morphogenesis recapitulates the ccRCC endothelial structures and their response to treatments.

cancer biology↗