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Galectin-3 Inhibition by a Small-Molecule Inhibitor Reduces Both Pathological Corneal Neovascularization and Fibrosis
Wei-Sheng Chen1, Zhiyi Cao2, Hakon Leffler3
1Program in Cell, Molecular and Developmental Biology, Sackler School of Graduate Biomedical Sciences, Tufts University, Boston, Massachusetts, United States.
Purpose:
Corneal neovascularization and scarring commonly lead to significant vision loss. This study was designed to determine whether a small-molecule inhibitor of galectin-3 can inhibit both corneal angiogenesis and fibrosis in experimental mouse models.
Methods:
Animal models of silver nitrate cautery and alkaline burn were used to induce mouse corneal angiogenesis and fibrosis, respectively. Corneas were treated with the galectin-3 inhibitor, 33DFTG, or vehicle alone and were processed for whole-mount immunofluorescence staining and Western blot analysis to quantify the density of blood vessels and markers of fibrosis. In addition, human umbilical vein endothelial cells (HUVECs) and primary human corneal fibroblasts were used to analyze the role of galectin-3 in the process of angiogenesis and fibrosis in vitro.
Results:
Robust angiogenesis was observed in silver nitrate-cauterized corneas on day 5 post injury, and markedly increased corneal opacification was demonstrated in alkaline burn-injured corneas on days 7 and 14 post injury. Treatment with the inhibitor substantially reduced corneal angiogenesis and opacification with a concomitant decrease in α-smooth muscle actin (α-SMA) expression and distribution. In vitro studies revealed that 33DFTG inhibited VEGF-A-induced HUVEC migration and sprouting without cytotoxic effects. The addition of exogenous galectin-3 to corneal fibroblasts in culture induced the expression of fibrosis-related proteins, including α-SMA and connective tissue growth factor.
Conclusions:
Our data provide proof of concept that targeting galectin-3 by the novel, small-molecule inhibitor, 33DFTG, ameliorates pathological corneal angiogenesis as well as fibrosis. These findings suggest a potential new therapeutic strategy for treating ocular disorders related to pathological angiogenesis and fibrosis.
Insights
A novel galectin-3 inhibitor, 33DFTG, effectively reduced corneal angiogenesis and fibrosis in mouse models. This suggests a promising new therapeutic strategy for vision-threatening ocular disorders.
Area of Science:
- Ophthalmology
- Molecular Biology
- Drug Discovery
Background:
- Corneal neovascularization and scarring are leading causes of vision loss.
- Galectin-3 plays a role in pathological processes in the eye.
Purpose of the Study:
- To investigate the efficacy of a small-molecule galectin-3 inhibitor, 33DFTG, in preventing corneal angiogenesis and fibrosis.
- To explore the therapeutic potential of targeting galectin-3 for ocular disorders.
Main Methods:
- Established mouse models for corneal angiogenesis (silver nitrate cautery) and fibrosis (alkaline burn).
- Treated corneas with 33DFTG or vehicle, followed by immunofluorescence and Western blot analysis.
- Conducted in vitro studies using human umbilical vein endothelial cells (HUVECs) and corneal fibroblasts.
Main Results:
- 33DFTG significantly reduced corneal angiogenesis and opacification in vivo.
- The inhibitor decreased markers of fibrosis, including alpha-smooth muscle actin (α-SMA).
- In vitro, 33DFTG inhibited VEGF-A-induced HUVEC migration and sprouting; exogenous galectin-3 induced fibrosis markers in corneal fibroblasts.
Conclusions:
- Targeting galectin-3 with 33DFTG demonstrates proof of concept for ameliorating pathological corneal angiogenesis and fibrosis.
- These findings support 33DFTG as a potential therapeutic agent for ocular diseases involving angiogenesis and fibrosis.
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