Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis.
BG, d.R., F, L., MA, A., E, d.S.L., C, G., LHM, G., RF, d.A., C, F., & FRS, L. (2026). Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis.. Neurochemical research. https://doi.org/10.1007/s11064-026-04867-8
BG dR, F L, MA A, E dSL, C G, LHM G, et al. Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis.. Neurochemical research. 2026; doi: 10.1007/s11064-026-04867-8
BG dR, F L, MA A, et al. Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis.[J]. Neurochemical research. 2026. DOI: 10.1007/s11064-026-04867-8.
@article{bg2026,
author = {da Rosa BG and Leser F and Alves MA and de Souza Leite E and Garcia C and Geraldo LHM and do Amaral RF and Freitas C and Lima FRS},
title = {Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis.},
journal = {Neurochemical research},
year = {2026},
doi = {10.1007/s11064-026-04867-8},
note = {PMID: 42645650},
}
TY - JOUR AU - da Rosa BG AU - Leser F AU - Alves MA AU - de Souza Leite E AU - Garcia C AU - Geraldo LHM AU - do Amaral RF AU - Freitas C AU - Lima FRS TI - Cellular Prion Protein as a Novel Regulator of Vascular Plexus Stability During Retinal Angiogenesis. T2 - Neurochemical research PY - 2026 DO - 10.1007/s11064-026-04867-8 AN - PMID:42645650 ER -
Angiogenesis is essential not only during embryogenesis but also in adult physiology and disease, relying on vascular endothelial growth factor (VEGF) gradients to guide tip cell sprouting. Cellular prion protein (PrPC), expressed in several neurovascular unit (NVU) cell types, regulates neuronal and astrocytic differentiation through laminin binding, yet its role in angiogenesis remains understudied. Here, we investigated its function in retinal vascular development. In PrPC knockout mice, the superficial retinal plexus exhibited increased tip cell density and branching, accompanied by microglial morphofunctional alterations and reduced Vegf-c expression, features consistent with impaired vascular stability. Conditioned media from PrPC knockout microglia was sufficient to increase endothelial instability in vitro, indicating that altered microglial signalling can modulate vascular phenotype. Moreover, Laminin 411 / 511 isoforms and Collagen IV showed decreased expression in the retinal vascular basement membrane, supporting altered basement membrane composition. At later developmental stages, absence of PrPC led to increased vertical sprouting into deeper retinal layers, resulting in transient hypervascularization of the deep plexus and defective laminin deposition across all vascular layers. These changes were accompanied by altered ZO-1 distribution and disrupted retinal layer organization, as indicated by reduced inter-plexus distance. Collectively, our findings identify PrPC as regulator of sprouting angiogenesis and vascular stabilization in the developing retina. The data support a model in which PrPC modulates neurovascular interactions, through both microglia-dependent and endothelial-intrinsic mechanisms, although the relative contribution of these components remains to be determined.