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Role of acyl-coenzyme A: cholesterol transferase 1 (ACAT1) in retinal neovascularization
Syed A H Zaidi1,2, Tahira Lemtalsi1,2, Zhimin Xu1,2
1Vascular Biology Center, Augusta University, 1460 Laney Walker Blvd, Augusta, GA, 30912-2500, USA.
Background:
We have investigated the efficacy of a new strategy to limit pathological retinal neovascularization (RNV) during ischemic retinopathy by targeting the cholesterol metabolizing enzyme acyl-coenzyme A: cholesterol transferase 1 (ACAT1). Dyslipidemia and cholesterol accumulation have been strongly implicated in promoting subretinal NV. However, little is known about the role of cholesterol metabolism in RNV. Here, we tested the effects of inhibiting ACAT1 on pathological RNV in the mouse model of oxygen-induced retinopathy (OIR).
Methods:
In vivo studies used knockout mice that lack the receptor for LDL cholesterol (LDLR-/-) and wild-type mice. The wild-type mice were treated with a specific inhibitor of ACAT1, K604 (10 mg/kg, i.p) or vehicle (PBS) during OIR. In vitro studies used human microglia exposed to oxygen-glucose deprivation (OGD) and treated with the ACAT1 inhibitor (1 μM) or PBS.
Results:
Analysis of OIR retinas showed that increased expression of inflammatory mediators and pathological RNV were associated with significant increases in expression of the LDLR, increased accumulation of neutral lipids, and formation of toxic levels of cholesterol ester (CE). Deletion of the LDLR completely blocked OIR-induced RNV and significantly reduced the AVA. The OIR-induced increase in CE formation was accompanied by significant increases in expression of ACAT1, VEGF and inflammatory factors (TREM1 and MCSF) (p < 0.05). ACAT1 was co-localized with TREM1, MCSF, and macrophage/microglia makers (F4/80 and Iba1) in areas of RNV. Treatment with K604 prevented retinal accumulation of neutral lipids and CE formation, inhibited RNV, and decreased the AVA as compared to controls (p < 0.05). The treatment also blocked upregulation of LDLR, ACAT1, TREM1, MCSF, and inflammatory cytokines but did not alter VEGF expression. K604 treatment of microglia cells also blocked the effects of OGD in increasing expression of ACAT1, TREM1, and MCSF without altering VEGF expression.
Conclusions:
OIR-induced RNV is closely associated with increases in lipid accumulation and CE formation along with increased expression of LDLR, ACAT1, TREM1, and MCSF. Inhibiting ACAT1 blocked these effects and limited RNV independently of alterations in VEGF expression. This pathway offers a novel strategy to limit vascular injury during ischemic retinopathy.
Insights
Inhibiting acyl-coenzyme A: cholesterol transferase 1 (ACAT1) reduced pathological retinal neovascularization (RNV) in a mouse model. This novel strategy targets cholesterol metabolism to limit vascular injury in ischemic retinopathy.
Area of Science:
- Ophthalmology
- Molecular Biology
- Cardiovascular Research
Background:
- Pathological retinal neovascularization (RNV) in ischemic retinopathy is linked to dyslipidemia and cholesterol accumulation.
- The role of cholesterol metabolism in RNV remains underexplored.
- Acyl-coenzyme A: cholesterol transferase 1 (ACAT1) is a key enzyme in cholesterol metabolism.
Purpose of the Study:
- To investigate the efficacy of inhibiting ACAT1 as a strategy to limit pathological RNV.
- To explore the role of cholesterol metabolism, specifically ACAT1, in oxygen-induced retinopathy (OIR).
Main Methods:
- In vivo studies utilized LDLR knockout and wild-type mice undergoing OIR.
- Wild-type mice were treated with an ACAT1 inhibitor (K604) or vehicle.
- In vitro studies used human microglia exposed to oxygen-glucose deprivation (OGD) and treated with the ACAT1 inhibitor.
Main Results:
- OIR induced RNV, increased LDLR expression, lipid accumulation, and cholesterol ester (CE) formation.
- ACAT1 inhibition (K604) prevented RNV, reduced lipid/CE accumulation, and decreased neovascularization.
- ACAT1 inhibition also reduced inflammatory mediators (TREM1, MCSF) and LDLR expression without affecting VEGF.
Conclusions:
- OIR-induced RNV is associated with increased lipid accumulation and expression of LDLR, ACAT1, TREM1, and MCSF.
- ACAT1 inhibition effectively limits RNV, offering a novel therapeutic strategy for ischemic retinopathy.
- This approach targets cholesterol metabolism and vascular injury independently of VEGF modulation.
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