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Updated: Jul 2, 2025

Assessment of Vascular Regeneration in the CNS Using the Mouse Retina
Published on: June 23, 2014
Apoptotic Vesicles Modulate Endothelial Metabolism and Ameliorate Ischemic Retinopathy via PD1/PDL1 Axis
Yutong Jing1,2, Wanmin Zhao2, Ziyi Zhou1
1Department of Ophthalmology, Eye Institute of Chinese PLA, Xijing Hospital, Fourth Military Medical University, Xi'an, Shaanxi, 710032, China.
Abstract:
Pathological angiogenesis with subsequent disturbed microvascular remodeling is a major cause of irreversible blindness in a number of ischemic retinal diseases. The current anti-vascular endothelial growth factor therapy can effectively inhibit angiogenesis, but it also brings significant side effects. The emergence of stem cell derived extracellular vesicles provides a new underlining strategy for ischemic retinopathy. Apoptotic vesicles (apoVs) are extracted from stem cells from human exfoliated deciduous teeth (SHED). SHED-apoVs are delivered into the eyeballs of oxygen-induced retinopathy (a most common model of angiogenic retinal dieseases) mice through intravitreal injection. The retinal neovascularization and nonperfusion area, vascular structure, and density changes are observed during the neovascularization phase (P17) and vascular remodeling phase (P21), and visual function is measured. The expression of extracellular acidification rate and lactic acid testing are used to detect endothelial cells (ECs) glycolytic activity. Furthermore, lentivirus and neutralizing antibody are used to block PD1-PDL1 axis, investigating the effects of SHED-apoVs on glycolysis and angiogenic activities. This work shows that SHED-apoVs are taken up by ECs and modulate the ECs glycolysis, leading to the decrease of abnormal neovessels and vascular remodeling. Furthermore, it is found that, at the molecular level, apoVs-carried PD1 interacts with PDL1 on hypoxic ECs to regulate the angiogenic activation. SHED-apoVs inhibit pathological angiogenesis and promote vascular remodeling in ischemic retinopathy partially by modulating ECs glycolysis through PD1/PDL1 axis. This study provides a new potential strategy for the clinical treatment of pathological retinal neovascularization.
Insights
Stem cell-derived apoptotic vesicles (apoVs) show promise for treating ischemic retinopathy. These SHED-apoVs modulate endothelial cell glycolysis via the PD1/PDL1 axis, reducing pathological angiogenesis and improving vascular remodeling.
Area of Science:
- Ophthalmology
- Regenerative Medicine
- Cell Biology
Background:
- Pathological angiogenesis and microvascular remodeling cause blindness in ischemic retinal diseases.
- Current anti-VEGF therapies have significant side effects.
- Stem cell-derived extracellular vesicles offer a novel therapeutic strategy.
Purpose of the Study:
- To investigate the therapeutic potential of stem cells from human exfoliated deciduous teeth-derived apoptotic vesicles (SHED-apoVs) in a mouse model of ischemic retinopathy.
- To elucidate the underlying mechanisms, including the modulation of endothelial cell glycolysis and the PD1/PDL1 axis.
Main Methods:
- Intravitreal injection of SHED-apoVs into oxygen-induced retinopathy (OIR) mice.
- Assessment of retinal neovascularization, vascular remodeling, and visual function.
- Measurement of endothelial cell (EC) glycolytic activity using extracellular acidification rate and lactic acid assays.
- Investigation of the PD1/PDL1 axis using lentivirus and neutralizing antibodies.
Main Results:
- SHED-apoVs were effectively taken up by ECs in OIR mice.
- SHED-apoVs modulated EC glycolysis, leading to reduced neovascularization and improved vascular remodeling.
- The PD1/PDL1 axis was identified as a key mediator, with apoV-carried PD1 interacting with PDL1 on hypoxic ECs.
- SHED-apoVs inhibited pathological angiogenesis and promoted vascular remodeling.
Conclusions:
- SHED-apoVs represent a promising new strategy for treating ischemic retinopathy by targeting pathological angiogenesis.
- The therapeutic effects are partially mediated by modulating EC glycolysis through the PD1/PDL1 interaction.
- This study offers a potential clinical approach for pathological retinal neovascularization.
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