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Nrf2 overexpression rescues the RPE in mouse models of retinitis pigmentosa
David M. Wu, Xuke Ji, Maryna V. Ivanchenko, Michelle Chung, Mary Piper, Parimal Rana, Sean K. Wang, Yunlu Xue, Emma West, Sophia R. Zhao, Hongbin Xu, Marcelo Cicconet, Wenjun Xiong, Constance L. Cepko
David M. Wu, Xuke Ji, Maryna V. Ivanchenko, Michelle Chung, Mary Piper, Parimal Rana, Sean K. Wang, Yunlu Xue, Emma West, Sophia R. Zhao, Hongbin Xu, Marcelo Cicconet, Wenjun Xiong, Constance L. Cepko
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Research Article Ophthalmology

Nrf2 overexpression rescues the RPE in mouse models of retinitis pigmentosa

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Abstract

Nrf2, a transcription factor that regulates the response to oxidative stress, has been shown to rescue cone photoreceptors and slow vision loss in mouse models of retinal degeneration (rd). The retinal pigment epithelium (RPE) is damaged in these models, but whether it also could be rescued by Nrf2 has not been previously examined. We used an adeno-associated virus (AAV) with an RPE-specific (Best1) promoter to overexpress Nrf2 in the RPE of rd mice. Control rd mice showed disruption of the regular array of the RPE, as well as loss of RPE cells. Cones were lost in circumscribed regions within the cone photoreceptor layer. Overexpression of Nrf2 specifically in the RPE was sufficient to rescue the RPE, as well as the disruptions in the cone photoreceptor layer. Electron microscopy showed compromised apical microvilli in control rd mice but showed preserved microvilli in Best1-Nrf2–treated mice. The rd mice treated with Best1-Nrf2 had slightly better visual acuity. Transcriptome profiling showed that Nrf2 upregulates multiple oxidative defense pathways, reversing declines seen in the glutathione pathway in control rd mice. In summary, Nrf2 overexpression in the RPE preserves RPE morphology and survival in rd mice, and it is a potential therapeutic for diseases involving RPE degeneration, including age-related macular degeneration (AMD).

Authors

David M. Wu, Xuke Ji, Maryna V. Ivanchenko, Michelle Chung, Mary Piper, Parimal Rana, Sean K. Wang, Yunlu Xue, Emma West, Sophia R. Zhao, Hongbin Xu, Marcelo Cicconet, Wenjun Xiong, Constance L. Cepko

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Figure 5

Scanning EM analysis of RPE from WT, rd1, and rd1 mice rescued with AAV-Best1-Nrf2.

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Scanning EM analysis of RPE from WT, rd1, and rd1 mice rescued with AAV-...
(A) Representative scanning EM photomicrographs of P30 RPE flat mounts from a WT (CD1) mice (n = 3). RPE cells were uniform in size and shape and formed a hexagonal array of cells within the flat mount (left panel). The yellow hexagonal outline designates a single cell (middle panel). Extensive long processes formed a dense carpet of microvilli across the entire apical surface of the RPE (right panel). (B) Representative scanning EM photomicrographs of a P30 RPE flat mount from an rd1 retina injected with AAV-hRedO-H2b-GFP (n = 5). Cells were highly variable in size and shape (left panel). Large cells exhibited no apical processes with smooth apical surfaces, and cells had short apical processes (middle panel, white arrowheads). There were large areas of deterioration noted in the entire flat mount where the cells appear to have died, as indicated by cellular debris (left panel, black arrowheads; middle panel, white arrowheads). (C) Representative scanning EM photomicrographs of P30 RPE flat mount from retinas rd1 coinjected with AAV-Best1-Nrf2 and AAV-hRedO-H2b-GFP (n = 3). Uniform geometry of polygonal RPE with dense carpet of intact microvilli. (D) Representative scanning EM photomicrographs of P45 RPE flat mount from rd1 eyes injected with AAV-hRedO-H2b-GFP (n = 3). Cells were highly variable in size and shape, and there were large areas of cellular debris (left panel). Cells exhibited no apical processes with smooth apical surfaces (right panel). (E) Representative scanning EM photomicrographs of P45 RPE flat mount from retinas rd1 coinjected with AAV-Best1-Nrf2 and AAV-hRedO-H2b-GFP (n = 3). Polygonal RPE with well-preserved microvilli remained intact at P45. Scale bars: 10 μm. (F) Quantification of fraction of RPE surface area at P30 with well-preserved microvilli and areas of RPE with no apparent live RPE cells, injected with AAV-Best1-Nrf2 and AAV-hRedO-H2b-GFP at P1 or noninjected (n = 3–5 mice/group). (G) Quantification of fraction of RPE surface area at P45 with well-preserved microvilli and areas of RPE with no apparent live RPE cells, injected with AAV-Best1-Nrf2 and AAV-hRedO-H2b-GFP at P1 (n = 3 mice/group). Data shown as mean ± SEM. ***P<0.0001 by 1-way ANOVA.

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