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VEGF188 promotes corneal reinnervation after injury
James T. Brash, Laura Denti, Christiana Ruhrberg, Franziska Bucher
James T. Brash, Laura Denti, Christiana Ruhrberg, Franziska Bucher
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Research Article Ophthalmology

VEGF188 promotes corneal reinnervation after injury

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Abstract

Vascular endothelial growth factor A (VEGF) induces angiogenesis and vascular hyperpermeability in ocular tissues and is therefore a key therapeutic target for eye conditions in which these processes are dysregulated. In contrast, the therapeutic potential of VEGF’s neurotrophic roles in the eye has remained unexploited. In particular, it is not known whether modulating levels of any of the 3 major alternatively spliced VEGF isoforms might provide a therapeutic approach to promote neural health in the eye without inducing vascular pathology. Here, we have used a variety of mouse models to demonstrate differences in overall VEGF levels and VEGF isoform ratios across tissues in the healthy eye. We further show that VEGF isoform expression was differentially regulated in retinal versus corneal disease models. Among the 3 major isoforms — termed VEGF120, VEGF164, and VEGF188 — VEGF188 was upregulated to the greatest extent in injured cornea, where it was both necessary and sufficient for corneal nerve regeneration. Moreover, topical VEGF188 application further promoted corneal nerve regeneration without inducing pathological neovascularization. VEGF isoform modulation should therefore be explored further for its potential in promoting neural health in the eye.

Authors

James T. Brash, Laura Denti, Christiana Ruhrberg, Franziska Bucher

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Figure 2

Vegfa isoform upregulation during OIR.

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Vegfa isoform upregulation during OIR.
(A) Schematic representation of ...
(A) Schematic representation of the OIR protocol. Mouse pups are reared in 85% oxygen from P8 to P11 to induce retinal vaso-obliteration. After return to normoxia, VEGF-driven neovascularization occurs, peaking on P16 before onset of vascular normalization. (B) IB4-stained retinal whole mounts from littermate P16 wild-type mice housed in normoxia (naive) or subjected to OIR and analyzed on day 5 (D5) after return to normoxia. Red squares indicate areas shown at higher magnification. Note central vaso-obliteration (VO) and the presence of neovascular tufts (NV) in the OIR model. Scale bars: 500 μm. (C) Total Vegfa and Vegfa isoform expression in the retinas of P12 (D1) and P16 (D5) wild-type mice reared in normoxia (–) or hyperoxia (+). Data are shown as mean fold change ± SD relative to control normoxia; n = 4 mice per age; each data point represents the value for 1 retina from 1 mouse. **P ≤ 0.01, ***P ≤ 0.001; 1-way ANOVA with Šidák’s multiple-comparisons test.

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