Lymphocytic microparticles suppress retinal angiogenesis via targeting Müller cells in the ischemic retinopathy mouse

ChenRongRong Cai1, Houda Tahiri2, Carl Fortin2

  • 1CHU Sainte-Justine Research Center, Montreal, Quebec, Canada; Departments of Pharmacology and Physiology, University of Montreal, Montreal, Quebec, Canada.

Insights

Lymphocytic microparticles (LMPs) inhibit retinal neovascularization by reducing Müller cell VEGF expression and macrophage recruitment. This offers a promising therapeutic strategy for retinopathy of prematurity and other vascular diseases.

Area of Science:

  • Ophthalmology
  • Cell Biology
  • Immunology

Background:

  • Retinopathy of prematurity (ROP) causes infant vision loss due to abnormal retinal neovascularization (NV).
  • Müller cells produce VEGF, attracting macrophages that promote ROP's angiogenesis.
  • Lymphocytic microparticles (LMPs) from T lymphocytes show angiogenesis-inhibiting potential.

Purpose of the Study:

  • To investigate the effect of LMPs on Müller cell chemotaxis and retinal NV.
  • To evaluate LMPs in vitro using rat Müller cells (rMC-1) and mouse macrophages (RAW 264.7).
  • To assess LMPs' impact in a mouse model of oxygen-induced ischemic retinopathy (OIR).

Main Methods:

  • In vitro studies with rMC-1 and RAW 264.7 cells exposed to LMPs.
  • In vivo studies using a mouse oxygen-induced ischemic retinopathy (OIR) model.
  • Analysis of cell proliferation, apoptosis, VEGF expression, macrophage infiltration, ERK1/2, and HIF-1α.

Main Results:

  • LMPs reduced rMC-1 cell proliferation dose-dependently without inducing apoptosis.
  • LMPs inhibited Müller cell chemotaxis of macrophages by decreasing VEGF expression.
  • LMPs attenuated pathological retinal NV, reduced macrophage infiltration, and downregulated ERK1/2 and HIF-1α in vitro and in vivo.

Conclusions:

  • LMPs effectively inhibit Müller cell-mediated retinal neovascularization.
  • LMPs reduce VEGF-driven macrophage recruitment in retinopathy of prematurity models.
  • LMPs represent a potential therapeutic agent for treating retinal NV diseases.

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