Multiomics analyses reveal early metabolic imbalance and mitochondrial stress in neonatal photoreceptors leading to cell death in Pde6brd1/rd1 mouse model of retinal degeneration

Author:

Jiang Ke12,Mondal Anupam Kumar12,Adlakha Yogita K123,Gumerson Jessica12,Aponte Angel45,Gieser Linn12,Kim Jung-Woong126,Boleda Alexis1278,Brooks Matthew J12,Nellissery Jacob12,Fox Donald A12,Balaban Robert910,Covian Raul910,Swaroop Anand12

Affiliation:

1. Neurobiology , Neurodegeneration & Repair Laboratory, , Bethesda, MD 20892 , USA

2. National Eye Institute, National Institutes of Health, 6 Center Drive , Neurodegeneration & Repair Laboratory, , Bethesda, MD 20892 , USA

3. Translational Health Science and Technology Institute, National Capital Region Biotech Cluster , Faridabad , India

4. Proteomics Core Facility , National Heart, , Bethesda, MD 20892 , USA

5. Lung and Blood Institute, National Institutes of Health , National Heart, , Bethesda, MD 20892 , USA

6. Department of Life Science, College of Natural Sciences, Chung-Ang University , Seoul 06974 , Republic of Korea

7. Center for Bioinformatics and Computational Biology , University of Maryland, , MD 20740 , USA

8. College Park , University of Maryland, , MD 20740 , USA

9. Laboratory of Cardiac Energetics , National Heart, Lung, and Blood Institute, , Bethesda, MD , USA

10. National Institutes of Health , National Heart, Lung, and Blood Institute, , Bethesda, MD , USA

Abstract

Abstract Retinal diseases exhibit extensive genetic heterogeneity and complex etiology with varying onset and severity. Mutations in over 200 genes can lead to photoreceptor dysfunction and/or cell death in retinal neurodegeneration. To deduce molecular pathways that initiate and/or drive cell death, we adopted a temporal multiomics approach and examined molecular and cellular events in newborn and developing photoreceptors before the onset of degeneration in a widely-used Pde6brd1/rd1 (rd1) mouse, a model of autosomal recessive retinitis pigmentosa caused by PDE6B mutations. Transcriptome profiling of neonatal and developing rods from the rd1 retina revealed early downregulation of genes associated with anabolic pathways and energy metabolism. Quantitative proteomics of rd1 retina showed early changes in calcium signaling and oxidative phosphorylation, with specific partial bypass of complex I electron transfer, which precede the onset of cell death. Concurrently, we detected alterations in central carbon metabolism, including dysregulation of components associated with glycolysis, pentose phosphate and purine biosynthesis. Ex vivo assays of oxygen consumption and transmission electron microscopy validated early and progressive mitochondrial stress and abnormalities in mitochondrial structure and function of rd1 rods. These data uncover mitochondrial overactivation and related metabolic alterations as determinants of early pathology and implicate aberrant calcium signaling as an initiator of higher mitochondrial stress. Our studies thus provide a mechanistic framework with mitochondrial damage and metabolic disruptions as early drivers of photoreceptor cell death in retinal degeneration.

Funder

National Eye Institute

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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