Corneal Mesenchymal Stromal Cells Are Directly Antiangiogenic via PEDF and sFLT-1
Medi Eslani1, Ilham Putra1, Xiang Shen1
1Department of Ophthalmology and Visual Sciences, University of Illinois at Chicago, Chicago, Illinois, United States.
Purpose:
To evaluate the angiogenic properties of corneal derived mesenchymal stromal cells (Co-MSC).
Methods:
Co-MSCs were extracted from human cadaver, and wild-type (C57BL/6J) and SERPINF1-/- mice corneas. The MSC secretome was collected in a serum-free medium. Human umbilical vein endothelial cell (HUVEC) tube formation and fibrin gel bead assay (FIBA) sprout formation were used to assess the angiogenic properties of Co-MSC secretome. Complete corneal epithelial debridement was used to induce corneal neovascularization in wild-type mice. Co-MSCs embedded in fibrin gel was applied over the debrided cornea to evaluate the angiogenic effects of Co-MSCs in vivo. Immunoprecipitation was used to remove soluble fms-like tyrosine kinase-1 (sFLT-1) and pigment epithelium-derived factor (PEDF, SERPINF1 gene) from the Co-MSC secretome.
Results:
Co-MSC secretome significantly inhibited HUVECs tube and sprout formation. Co-MSCs from different donors consistently contained high levels of antiangiogenic factors including sFLT-1 and PEDF; and low levels of the angiogenic factor VEGF-A. In vivo, application of Co-MSCs to mouse corneas after injury prevented the development of corneal neovascularization. Removing PEDF or sFLT-1 from the secretome significantly diminished the antiangiogenic effects of Co-MSCs. Co-MSCs isolated from SERPINF1-/- mice had significantly reduced antiangiogenic effects compared to SERPINF1+/+ (wild-type) Co-MSCs.
Conclusions:
These results illustrate the direct antiangiogenic properties of Co-MSCs, the importance of sFLT-1 and PEDF, and their potential clinical application for preventing pathologic corneal neovascularization.
Insights
Corneal mesenchymal stromal cells (Co-MSCs) possess antiangiogenic properties, inhibiting blood vessel formation. These cells, particularly their secretome containing sFLT-1 and PEDF, show potential for treating corneal neovascularization.
Area of Science:
- Ophthalmology
- Cell Biology
- Regenerative Medicine
Background:
- Corneal neovascularization (CNV) is a pathological process that can lead to vision impairment.
- Mesenchymal stromal cells (MSCs) are known for their immunomodulatory and regenerative properties.
- Corneal-derived MSCs (Co-MSCs) are a potential source for cell-based therapies.
Purpose of the Study:
- To investigate the angiogenic properties of Co-MSCs.
- To determine the role of Co-MSC secretome in regulating angiogenesis.
- To evaluate the therapeutic potential of Co-MSCs in preventing corneal neovascularization.
Main Methods:
- Co-MSCs were isolated from human and mouse corneas.
- The Co-MSC secretome was analyzed for angiogenic and antiangiogenic factors.
- In vitro assays (HUVEC tube formation, FIBA) assessed Co-MSC secretome's effect on angiogenesis.
- In vivo studies evaluated Co-MSCs' efficacy in a mouse model of corneal neovascularization.
Main Results:
- Co-MSC secretome significantly inhibited endothelial cell tube and sprout formation in vitro.
- Co-MSCs exhibited high levels of antiangiogenic factors (sFLT-1, PEDF) and low levels of angiogenic factors (VEGF-A).
- Topical application of Co-MSCs prevented corneal neovascularization in a mouse model.
Conclusions:
- Co-MSCs possess direct antiangiogenic properties.
- Soluble fms-like tyrosine kinase-1 (sFLT-1) and pigment epithelium-derived factor (PEDF) are key mediators of Co-MSC antiangiogenic effects.
- Co-MSCs hold promise for clinical applications in preventing pathological corneal neovascularization.
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