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Biology subjects

Reglero-Real, N.

Publications and source records attributed to Reglero-Real, N..

3 recordsLinked to original sources

Sub-endothelial platelet activation amplifies neutrophil transmigration within venular walls

Neutrophil recruitment into inflamed tissues requires coordinated transmigration across the multilayered venular wall, yet how this process is regulated beyond the endothelium remains poorly understood. Here, we identify a previously unrecognized platelet-neutrophil circuit that controls this post-endothelial phase. Intravital microscopy of inflamed cremasteric venules showed that pioneer neutrophil transmigration enabled platelet entry into the sub-endothelial compartment of venular walls. There, platelets became activated and released CXCL7 in a GPVI- and GPIb-dependent manner, generating spatially confined chemokine microdomains. These platelet-derived cues directed follower neutrophil migration and promoted their exit across the pericyte layer into the interstitial tissue. Collectively, these findings identify extraluminal platelets as spatial organizers of neutrophil trafficking and uncover a localized intramural feedback mechanism in which neutrophils amplify their own recruitment within venular walls. Graphical summary O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=73 SRC="FIGDIR/small/739803v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@1d22216org.highwire.dtl.DTLVardef@bc0279org.highwire.dtl.DTLVardef@1465d7dorg.highwire.dtl.DTLVardef@a3e755_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

EpiFlow: multidimensional single-cell epigenetic profiling by spectral flow cytometry

The epigenetic landscape of individual cells determines their identity and function, yet current methods for profiling chromatin modifications at single-cell resolution remain low-throughput, costly, or limited in parametric depth. Here we present EpiFlow, a spectral flow cytometry-based platform that enables the simultaneous quantification of 16 epigenetic markers, including histone post-translational modifications, DNA methylation, and hydroxymethylation, at the single-cell level. We demonstrate that EpiFlow is robust across species from yeast to mammals and resolves biologically meaningful epigenetic transitions during the cell cycle, stem cell differentiation, germinal centre B cell maturation, diabetic liver remodelling, and seizure-induced chromatin reprogramming. High-dimensional integration of EpiFlow data enables cell-type classification based solely on epigenetic profiles in liver, brain, blood, and cancer. Furthermore, EpiFlow detects on-target and off-target/indirect effects of epigenetic drugs in a high-throughput-compatible format. Collectively, these results establish EpiFlow as a broadly applicable platform for single-cell epigenetic analysis in basic, pharmaceutical, and translational research.

cell biology↗

ICAM-1 nanoclusters regulate hepatic epithelial cell polarity by leukocyte adhesion-independent control of apical actomyosin

Epithelial Intercellular Adhesion Molecule (ICAM)-1 is apically polarized, interacts with and guides leukocytes across epithelial barriers. Polarized hepatic epithelia organize their apical membrane domain into bile canaliculi and ducts, which are not accessible to circulating immune cells but that nevertheless confine most of ICAM-1. Here, by analyzing ICAM-1_KO human hepatic cells, liver organoids from ICAM-1_KO mice and rescue-of-function experiments, we show that ICAM-1 regulates epithelial apicobasal polarity in a leukocyte adhesion-independent manner. ICAM-1 signals to an actomyosin network at the base of canalicular microvilli, thereby controlling the dynamics and size of bile canalicular-like structures (BCs). We identified the scaffolding protein EBP50/NHERF1/SLC9A3R1, which connects membrane proteins with the underlying actin cytoskeleton, in the proximity interactome of ICAM-1. EBP50 and ICAM-1 form nano-scale domains that overlap in microvilli, from which ICAM-1 regulates EBP50 nano-organization. Indeed, EBP50 expression is required for ICAM-1-mediated control of BC morphogenesis and actomyosin. Our findings indicate that ICAM-1 regulates the dynamics of epithelial apical membrane domains beyond its role as a heterotypic cell-cell adhesion molecule and reveal potential therapeutic strategies for preserving epithelial architecture during inflammatory stress.

cell biology↗