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Llao-Cid, C.

Publications and source records attributed to Llao-Cid, C..

2 recordsLinked to original sources

Vascular signals coordinate cerebellar circuitry development

Neural circuit assembly requires precise coordinated interactions between developing neurons and the vasculature, yet the instructive signals provided by endothelial cells remain largely unknown. Here, we identify a vascular-to-neural signaling axis that orchestrates postnatal cerebellar development. Endothelial-specific deletion of the adaptor protein Dab1 in mice disrupted vascular patterning and uncoupled the growth of major cerebellar neuronal populations. We show that endothelial Dab1 in the cerebellum drives secretion of the morphogen Wnt5a, which acts through Frizzled-2 to restrain granule-cell progenitor proliferation and promote Purkinje-cell dendritic maturation. Endothelial Wnt5a deletion phenocopied Dab1 endothelial mutant (Dab1i{Delta}EC) defects, whereas exogenous Wnt5a restored normal progenitor dynamics in Dab1i{Delta}EC cerebellar slices, demonstrating pathway sufficiency. Functionally, loss of this vascular signal impaired Purkinje-cell firing, diminished parallel-fiber input, reduced synapse formation from both parallel and climbing fibers, and disrupted long-term plasticity. These findings reveal a key instructive role for blood vessels in shaping cerebellar architecture and establishing functional circuit connectivity.

neuroscience↗

Vascular FLRT2 regulates venous-mediated angiogenic expansion and CNS barriergenesis

Veins have emerged as the origin of all other endothelial cell subtypes needed to expand vascular networks during developmental and pathological neoangiogenesis. Here, we uncover the significant role of the angioneurin Fibronectin Leucine Rich Transmembrane protein (FLRT) 2 in central nervous system (CNS) vascular development in the mouse. Early postnatal FLRT2 deletion reveals specific defects in retinal veins, impacting endothelial cell proliferation, sprouting and polarity that result in reduced tip cells at the vascular front. FLRT2 interacts with VE-cadherin and together with the endocytic adaptor protein Numb contribute to the modulation of adherens junction morphology in both retina and cerebral cortex in vivo. Utilizing expansion microscopy, we visualize the altered dynamic distribution of VE-cadherin in tissue of FLRT2 endothelial mutants. Additionally, FLRT2 in cortical vessels regulates the crosstalk between adherens and tight junctions, influencing blood-brain barrier development. Our findings position FLRT2 as a vein-specific crucial regulator of CNS vascular development.

neuroscience↗