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Biology subjects

Schoofs, H.

Publications and source records attributed to Schoofs, H..

2 recordsLinked to original sources

Aquaporin-1 sustains lymphangiogenic responses in inflammatory microenvironments

Intestinal lymphatic vessels are essential for dietary lipid absorption and immune cell trafficking. Specialized villus lymphatic capillaries, lacteals, undergo constant VEGF-C-dependent renewal to maintain their function in a hyperosmolar, inflammatory microenvironment exposed to dietary by-products. The mechanisms of lacteal adaptation remain incompletely understood. We integrated new and published single-cell RNA-sequencing data to profile murine small-intestinal lymphatic endothelial cells (LECs) and identified three distinct subsets. Lacteal LECs display a transcriptional signature resembling Ptx3 immune-interacting LECs characterized by high expression of Aqp1, encoding the aquaporin-1 water channel. LEC-specific deletion of Aqp1 reduced lacteal length, impaired lipid uptake, and limited weight gain on a high-fat diet, underscoring the importance of water homeostasis in lacteal maintenance. AQP1 also promoted VEGF-C-dependent LEC migration under osmotic stress and, uniquely, was upregulated during inflammatory remodelling in secondary lymphedema and lymphatic malformations, but not during embryonic lymphangiogenesis. These findings link lacteal regeneration to inflammatory lymphatic remodelling and highlight tissue osmolarity as a key biophysical factor in postnatal lymphangiogenesis.

pathology↗

Penile cavernous sinusoids are Prox1-positive hybrid vessels

Endothelial cells (ECs) of blood and lymphatic vessels have distinct identity markers that define their specialized functions. Recently, specialized hybrid vasculatures with both blood and lymphatic vessel-specific features have been discovered in multiple tissues. Here, we identify the penile cavernous sinusoidal (pc-S) blood vasculature as a new hybrid vascular bed expressing key lymphatic EC identity genes Prox1, Vegfr3 and Lyve1. Using single cell transcriptome data of human corpus cavernosum tissue, we found heterogeneity within pc-S endothelia and observed distinct phenotypic alterations related to inflammation response in hybrid ECs in erectile dysfunction. Molecular, ultrastructural and functional studies further establish shared hybrid identity of pc-Ss in mouse, and reveal their morphological adaptations and ability to perform lymphatic-like function in draining high molecular weight tracers. Interestingly, we found that inhibition of the key lymphangiogenic growth factor VEGF-C did not block the development of pc-Ss in mice, distinguishing them from other lymphatic and hybrid vessels analyzed so far. Our findings provide a detailed molecular characterization of hybrid pc-Ss and pave the way for the identification of molecular targets for therapies in conditions of dysregulated penile vasculature, including erectile dysfunction.

cell biology↗