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iPSC-derived retinal pigmented epithelial cells from patients with macular telangiectasia show decreased mitochondrial function

Authors :
Eade, Kevin T.
Ansell, Brendan Robert E.
Giles, Sarah
Fallon, Regis
Harkins-Perry, Sarah
Nagasaki, Takayuki
Tzaridis, Simone
Wallace, Martina
Mills, Elizabeth A.
Farashi, Samaneh
Johnson, Alec
Sauer, Lydia
Hart, Barbara
Rubio, Elena D.
Bahlo, Melanie
Metallo, Christian
Allikmets, Rando
Gantner, Marin L.
Bernstein, Paul S.
Friedlander, Martin
Source :
Journal of Clinical Investigation. May 1, 2023, Vol. 133 Issue 9
Publication Year :
2023

Abstract

Patient-derived induced pluripotent stem cells (iPSCs) provide a powerful tool for identifying cellular and molecular mechanisms of disease. Macular telangiectasia type 2 (MacTel) is a rare, late-onset degenerative retinal disease with an extremely heterogeneous genetic architecture, lending itself to the use of iPSCs. Whole-exome sequencing screens and pedigree analyses have identified rare causative mutations that account for less than 5% of cases. Metabolomic surveys of patient populations and GWAS have linked MacTel to decreased circulating levels of serine and elevated levels of neurotoxic 1-deoxysphingolipids (1-dSLs). However, retina-specific, disease- contributing factors have yet to be identified. Here, we used iPSC-differentiated retinal pigmented epithelial (iRPE) cells derived from donors with or without MacTel to screen for novel cell-intrinsic pathological mechanisms. We show that MacTel iRPE cells mimicked the low serine levels observed in serum from patients with MacTel. Through RNA-Seq and gene set enrichment pathway analysis, we determined that MacTel iRPE cells are enriched in cellular stress pathways and dysregulation of central carbon metabolism. Using respirometry and mitochondrial stress testing, we functionally validated that MacTel iRPE cells had a reduction in mitochondrial function that was independent of defects in serine biosynthesis and 1-dSL accumulation. Thus, we identified phenotypes that may constitute alternative disease mechanisms beyond the known serine/sphingolipid pathway.<br />Introduction Complex diseases of aging provide unique challenges for the identification of specific disease-causing genetic variants and associated cellular dysfunctions using traditional genetic approaches. Disease modeling using iPSCs is a [...]

Details

Language :
English
ISSN :
00219738
Volume :
133
Issue :
9
Database :
Gale General OneFile
Journal :
Journal of Clinical Investigation
Publication Type :
Academic Journal
Accession number :
edsgcl.749057426
Full Text :
https://doi.org/10.1172/JCI163771