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Nonretinoid chaperones improve rhodopsin homeostasis in a mouse model of retinitis pigmentosa
Abhishek Vats, Yibo Xi, Bing Feng, Owen D. Clinger, Anthony J. St. Leger, Xujie Liu, Archisha Ghosh, Chase D. Dermond, Kira L. Lathrop, Gregory P. Tochtrop, Serge Picaud, Yuanyuan Chen
Abhishek Vats, Yibo Xi, Bing Feng, Owen D. Clinger, Anthony J. St. Leger, Xujie Liu, Archisha Ghosh, Chase D. Dermond, Kira L. Lathrop, Gregory P. Tochtrop, Serge Picaud, Yuanyuan Chen
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Research Article Neuroscience Ophthalmology

Nonretinoid chaperones improve rhodopsin homeostasis in a mouse model of retinitis pigmentosa

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Abstract

Rhodopsin-associated (RHO-associated) retinitis pigmentosa (RP) is a progressive retinal disease that currently has no cure. RHO protein misfolding leads to disturbed proteostasis and the death of rod photoreceptors, resulting in decreased vision. We previously identified nonretinoid chaperones of RHO, including YC-001 and F5257-0462, by small-molecule high-throughput screening. Here, we profile the chaperone activities of these molecules toward the cell-surface level of 27 RP-causing human RHO mutants in NIH3T3 cells. Furthermore, using retinal explant culture, we show that YC-001 improves retinal proteostasis by supporting RHO homeostasis in RhoP23H/+ mouse retinae, which results in thicker outer nuclear layers (ONL), indicating delayed photoreceptor degeneration. Interestingly, YC-001 ameliorated retinal immune responses and reduced the number of microglia/macrophages in the RhoP23H/+ retinal explants. Similarly, F5257-0462 also protects photoreceptors in RhoP23H/+ retinal explants. In vivo, intravitreal injection of YC-001 or F5257-0462 microparticles in PBS shows that F5257-0462 has a higher efficacy in preserving photoreceptor function and delaying photoreceptor death in RhoP23H/+ mice. Collectively, we provide proof of principle that nonretinoid chaperones are promising drug candidates in treating RHO-associated RP.

Authors

Abhishek Vats, Yibo Xi, Bing Feng, Owen D. Clinger, Anthony J. St. Leger, Xujie Liu, Archisha Ghosh, Chase D. Dermond, Kira L. Lathrop, Gregory P. Tochtrop, Serge Picaud, Yuanyuan Chen

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Figure 10

An intravitreal injection (IVI) of YC-001 slurry increased electroretinogram (ERG) response and ONL thickness in RhoP23H/+ mice.

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An intravitreal injection (IVI) of YC-001 slurry increased electroretino...
(A) Timeline of the experimental procedures. RhoP23H/+–knock-in mouse eyes were injected intravitreally with PBS or 35 nmol/eye of YC-001 microparticles suspended in PBS at P15. Fundus and OCT images were collected at P30 followed by ERG recording at P31. H&E staining were performed at P34. Blue triangles and red squares are from RhoP23H/+ mice treated with YC-001 and PBS, respectively, and black circles were from age-matched Rho+/+ mice as normal control. (B) Fundus images of mice treated with PBS (left) and YC-001 (right). The yellow dots in the right panel were the YC-001 microparticles in the eye. (C and D) ERG scotopic a- and b-wave responses, respectively. n = 8. (E) Photopic b-wave responses. n = 8. (F) SD-OCT images of RhoP23H/+ retinae. Top, PBS-treated; bottom, YC-001–treated. RGC, retinal ganglion cells; IPL, inner plexiform layer; INL, inner nuclear layer; OPL, outer plexiform layer; ONL, outer nuclear layer; OS/IS, outer/inner segments; RPE, retinal pigmented epithelium. (G and H) Spidergrams plotting the thicknesses of OS+IS and ONL, respectively, measured from SD-OCT images. n = 4–7. (I) H&E-stained retinal sections. Left panels, whole eye at low (4×) magnification (scale bar: 200 μm); and right panels, high magnification images (40×) at inferior side (scale bar: 50 μm). (J and K) Spidergrams plotting the ONL thickness and nucleus number, respectively, measured from I. n = 7. Data are shown as mean ± SEM. *, **, and ***, P < 0.05, 0.01, and 0.001, calculated by 2-way ANOVA.

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