The Novel Pathogenesis of Retinopathy Mediated by Multiple RTK Signals is Uncovered in Newly Developed Mouse Model

Hideyuki Kitahara1, Sayaka Kajikawa2, Yoko Ishii2

  • 1Department of Pathology, Graduate School of Medicine and Pharmaceutical Sciences, University of Toyama, 2630 Sugitani, Toyama-shi, Toyama 930-0194, Japan; Department of Japanese Oriental Medicine, Graduate School of Medicine and Pharmaceutical Sciences, University of Toyama, 2630 Sugitani, Toyama-shi, Toyama 930-0194, Japan.

Ebiomedicine
|May 5, 2018
PubMed

Insights

Diabetic retinopathy involves pericyte loss and vascular issues. Blocking VEGFR1 signaling ameliorated these effects in a new mouse model, suggesting PlGF and VEGF-A are key therapeutic targets.

Area of Science:

  • Ophthalmology
  • Vascular Biology
  • Diabetic Complications

Background:

  • Diabetic retinopathy (DR) pathogenesis involves pericyte loss and vascular abnormalities.
  • Abnormal signaling pathways, including platelet-derived growth factor receptor-β (PDGFRβ) and vascular endothelial growth factor-A (VEGF-A), are implicated in DR.

Purpose of the Study:

  • To investigate the mechanisms underlying pericyte behavior and vascular pathology in DR.
  • To develop and characterize a novel mouse model for studying DR progression.

Main Methods:

  • Development of a novel retinopathy mouse model (N-PRβ-KO) with conditional Pdgfrb gene deletion using Nestin-Cre.
  • Analysis of pericyte coverage, vascular lesions, hemorrhage, and glial scar formation in the N-PRβ-KO model.
  • Assessment of growth factor expression (PlGF, VEGF-A, PDGF-BB) and VEGFR1 signaling blockade effects.

Main Results:

  • The N-PRβ-KO model reproduced early to late DR pathologies.
  • Depletion of Nestin-Cre-sensitive pericytes led to vascular lesions and hemorrhage.
  • Nestin-Cre-insensitive pericytes transformed into myofibroblasts, causing retinal traction and glial scarring.
  • Increased PlGF, VEGF-A, and PDGF-BB expression was observed; VEGFR1 signal blockade ameliorated vascular phenotypes.

Conclusions:

  • PDGFRβ plays a critical role in pericyte stability and DR pathogenesis.
  • PDGF-BB may drive pericyte-fibroblast transition and glial scar formation.
  • PlGF and VEGF-A signaling via VEGFR1 mediate vascular lesions in DR, representing potential therapeutic targets.

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