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.

Abstract

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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