Oxidative stress induces lysosomal membrane permeabilization and ceramide accumulation in retinal pigment epithelial cells

Author:

Zhang Kevin R.1,Jankowski Connor S. R.23ORCID,Marshall Rayna1,Nair Rohini1,Más Gómez Néstor14,Alnemri Ahab1,Liu Yingrui1,Erler Elizabeth1,Ferrante Julia1,Song Ying1,Bell Brent A.1,Baumann Bailey H.1ORCID,Sterling Jacob1,Anderson Brandon1,Foshe Sierra1,Roof Jennifer5,Fazelinia Hossein5,Spruce Lynn A.5,Chuang Jen-Zen67,Sung Ching-Hwa67,Dhingra Anuradha4,Boesze-Battaglia Kathleen4,Chavali Venkata R. M.1ORCID,Rabinowitz Joshua D.23,Mitchell Claire H.14,Dunaief Joshua L.1ORCID

Affiliation:

1. F.M. Kirby Center for Molecular Ophthalmology, Scheie Eye Institute, Perelman School of Medicine at the University of Pennsylvania 1 , Philadelphia, PA 19104 , USA

2. Lewis-Sigler Institute for Integrative Genomics, Princeton University 2 , Princeton, NJ 08544 , USA

3. Princeton University 3 Department of Molecular Biology , , Princeton, NJ 08544 , USA

4. School of Dental Medicine, University of Pennsylvania 4 Department of Basic and Translational Sciences , , Philadelphia, PA 19104 , USA

5. CHOP-PENN Proteomics Core Facility, The Children's Hospital of Philadelphia Research Institute 5 , Philadelphia, PA 19104 , USA

6. Weill Cornell Medicine 6 Department of Ophthalmology , , New York, NY 10065 , USA

7. Weill Cornell Medicine 7 Department of Cell and Developmental Biology , , New York, NY 10065 , USA

Abstract

ABSTRACT Oxidative stress has been implicated in the pathogenesis of age-related macular degeneration, the leading cause of blindness in older adults, with retinal pigment epithelium (RPE) cells playing a key role. To better understand the cytotoxic mechanisms underlying oxidative stress, we used cell culture and mouse models of iron overload, as iron can catalyze reactive oxygen species formation in the RPE. Iron-loading of cultured induced pluripotent stem cell-derived RPE cells increased lysosomal abundance, impaired proteolysis and reduced the activity of a subset of lysosomal enzymes, including lysosomal acid lipase (LIPA) and acid sphingomyelinase (SMPD1). In a liver-specific Hepc (Hamp) knockout murine model of systemic iron overload, RPE cells accumulated lipid peroxidation adducts and lysosomes, developed progressive hypertrophy and underwent cell death. Proteomic and lipidomic analyses revealed accumulation of lysosomal proteins, ceramide biosynthetic enzymes and ceramides. The proteolytic enzyme cathepsin D (CTSD) had impaired maturation. A large proportion of lysosomes were galectin-3 (Lgals3) positive, suggesting cytotoxic lysosomal membrane permeabilization. Collectively, these results demonstrate that iron overload induces lysosomal accumulation and impairs lysosomal function, likely due to iron-induced lipid peroxides that can inhibit lysosomal enzymes.

Funder

National Institutes of Health

National Eye Institute

University of Pennsylvania

Research to Prevent Blindness

F.M. Kirby Foundation

Paul MacKall and Evanina Bell MacKall Trust

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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