Retinal Pigment Epithelium-Specific Ablation of GPx4 in Adult Mice Recapitulates Key Features of Geographic Atrophy in Age-Related Macular Degeneration

Author:

Ueta Takashi1,Azuma Kunihiro1,Kobayashi Kenta2,Suzuki Takafumi1,Nagahara Masako1,Imai Hirotaka3,Suga Akiko4ORCID,Iwata Takashi5,Shiraya Tomoyasu1,Makoto Aiharaa6

Affiliation:

1. The University of Tokyo

2. National Institutes of Natural Sciences

3. Kitasato University

4. NHO Tokyo Medical Center

5. National Hospital Organization Tokyo Medical

6. Department of Ophthalmology, Graduate School of Medicine and Faculty of Medicine, University of Tokyo, Japan, 7-3-1 Hongo Bunkyo, Tokyo, 113-8655, Japan.

Abstract

Abstract

Age-related macular degeneration (AMD) is a leading cause of irreversible vision loss in the elderly population, particularly the late-stage of dry AMD known as geographic atrophy (GA), lacks effective treatment options. Genetic mouse models of AMD have revealed the significance of impaired lipid metabolism and anti-oxidative capacity in early/intermediate stage of AMD, but remains unclear in GA that severely damages visual function. Here, to investigate the potential relevance of peroxidized lipids in RPE for late-stage dry AMD, GPx4fl/fl mice underwent subretinal injections of RPE-specific AAV-Cre vector or control AAV vector. RPE-specific GPx4 deficiency led to rapid RPE degeneration resembling key features of late-stage dry AMD, including preceding RPE cell polarity, acrolein and malondialdehyde accumulation, photoreceptor loss, lipofuscin-laden subretinal melanophage infiltration, and complement activation. Treatment with α-tocopherol and ferrostatin-1 mitigated RPE degeneration, and shrunk mitochondria were observed in GPx4 deficient mice, suggesting involvement of ferroptosis. Unexpectedly, necrostatin-1s, an inhibitor of necroptosis, also ameliorated RPE degeneration, and activation of RIP3 and MLKL along with inactivation of caspase-8 was observed, indicating crosstalk between ferroptosis and necroptosis pathways. Our findings shed light on the intricate mechanisms underlying RPE degeneration in AMD and highlight GPx4/lipid peroxidation as potential therapeutic targets. RPE-specific ablation of GPx4 in mice provides a valuable tool for further elucidating the interplay between lipid peroxidation, cell death pathways, and AMD pathogenesis, offering new insights for preclinical research and therapeutic development targeting GA.

Publisher

Research Square Platform LLC

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