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Arvanitis, P.

Publications and source records attributed to Arvanitis, P..

3 recordsLinked to original sources

Glutamatergic neuronal activity regulates angiogenesis and blood-retinal barrier maturation via Norrin/β-catenin signaling

Interactions among neuronal, glial and vascular components are crucial for retinal angiogenesis and blood-retinal barrier (BRB) maturation. Although synaptic dysfunction precedes vascular abnormalities in many retinal pathologies, how neuronal activity, specifically glutamatergic activity, regulates retinal angiogenesis and BRB maturation remains unclear. Using in vivo genetic studies in mice, single-cell RNA-sequencing and functional validation, we show that deep plexus angiogenesis and paracellular BRB maturation are delayed in Vglut1-/- retinas where neurons fail to release glutamate. In contrast, deep plexus angiogenesis and paracellular BRB maturation are accelerated in Gnat1-/- retinas where constitutively depolarized rods release excessive glutamate. Norrin expression and endothelial Norrin/{beta}-catenin signaling are downregulated in Vglut1-/- retinas, and upregulated in Gnat1-/- retinas. Pharmacological activation of endothelial Norrin/{beta}-catenin signaling in Vglut1-/- retinas rescued defects in deep plexus angiogenesis and paracellular BRB maturation. Our findings demonstrate that glutamatergic neuronal activity regulates retinal angiogenesis and BRB maturation by modulating endothelial Norrin/{beta}-catenin signaling.

neuroscience↗

Distinct Th17 effector cytokines differentially promote microglial and blood-brain barrier inflammatory responses during post-infectious encephalitis

Group A Streptococcus (GAS) infections can cause neuropsychiatric sequelae in children due to post-infectious encephalitis. Multiple GAS infections induce migration of Th17 lymphocytes from the nose into the brain, which are critical for microglial activation, blood-brain barrier (BBB) and neural circuit impairment in a mouse disease model. How endothelial cells (ECs) and microglia respond to GAS infections, and which Th17-derived cytokines are essential for these responses are unknown. Using single-cell RNA sequencing and spatial transcriptomics, we found that ECs downregulate BBB genes and microglia upregulate interferon-response, chemokine and antigen-presentation genes after GAS infections. Several microglial-derived chemokines were elevated in patient sera. Administration of a neutralizing antibody against interleukin-17A (IL-17A), but not ablation of granulocyte-macrophage colony-stimulating factor (GM-CSF) in T cells, partially rescued BBB dysfunction and microglial expression of chemokine genes. Thus, IL-17A is critical for neuropsychiatric sequelae of GAS infections and may be targeted to treat these disorders.

neuroscience↗

Mural norrin/β-catenin signaling regulates Lama2 expression to promote neurovascular unit assembly

Neurovascular unit (NVU) assembly and barrier maturation rely on vascular basement membrane (vBM) composition. Laminins, a major vBM component, are critical for these processes, yet which signaling pathway(s) regulate their expression remains unknown. Here we show that mural cells have active Norrin/{beta}-catenin signaling during central nervous system development. Bulk RNA sequencing and validation using P10 and P14 wild-type versus Apcdd1-/- retinas reveal that Lama2 (Laminin-2 chain) mRNA and protein levels are increased in mutant vasculature undergoing higher Norrin/{beta}-catenin signaling. Mural cells are the main source of Lama2, and {beta}-catenin activation induces Lama2 expression in mural cells in vitro. Markers of mature astrocytes including Aquaporin-4 (a water channel in astrocyte endfeet) and Integrin-6 (a laminin receptor) are upregulated in Apcdd1-/- retinas following higher Lama2 vBM deposition. Thus, the Norrin/{beta}-catenin pathway regulates Lama2 expression in mural cells to promote NVU assembly and neurovascular barrier maturation. SUMMARYBiswas et al., demonstrate that Norrin/{beta}-catenin signaling is active in CNS mural cells and regulates Lama2 deposition in the vascular basement membrane, promoting neurovascular unit assembly and blood-CNS barrier maturation.

developmental biology↗