The functional role of decorin in corneal neovascularization in vivo

Praveen K Balne1, Suneel Gupta1, Jinjin Zhang1

  • 1Harry S. Truman Memorial Veterans' Hospital, Columbia, MO, United States; One-Health Vision Research Program, Departments of Veterinary Medicine & Surgery and Biomedical Sciences, College of Veterinary Medicine, University of Missouri, Columbia, MO, United States.

Insights

Decorin deficiency in mice significantly increases corneal neovascularization by disrupting the balance of pro- and anti-angiogenic factors. Gene therapy with decorin (Dcn) effectively reduced this abnormal blood vessel growth in the cornea.

Area of Science:

  • Ophthalmology
  • Molecular Biology
  • Genetics

Background:

  • Decorin (Dcn) gene transfer previously inhibited corneal angiogenesis.
  • The role of decorin in regulating corneal angiogenesis requires further investigation.

Purpose of the Study:

  • To test the hypothesis that decorin's anti-angiogenic effects in the cornea are mediated by regulating pro- and anti-angiogenic factors.
  • To investigate corneal neovascularization (CNV) in decorin-deficient (Dcn-/-) and wild-type (Dcn+/+) mice.

Main Methods:

  • Corneal neovascularization was induced using chemical injury in Dcn-/- and Dcn+/+ mice.
  • Corneal neovascularization was monitored clinically and histopathologically.
  • Protein and mRNA expression of angiogenic factors were analyzed using immunofluorescence and qPCR.

Main Results:

  • Dcn-/- mice exhibited significantly more CNV than Dcn+/+ mice post-injury.
  • AAV5-Dcn gene therapy significantly reduced CNV in Dcn-/- mice.
  • Dcn deficiency led to increased expression of pro-angiogenic factors (e.g., endoglin, Vegf) and altered expression of anti-angiogenic factors in the cornea.

Conclusions:

  • Decorin plays a crucial role in maintaining the physiological balance of pro- and anti-angiogenic factors in the cornea.
  • Functional deletion of decorin promotes irregular corneal repair and exacerbates corneal neovascularization.

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