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Published on: January 16, 2019
Rescue of enzymatic function for disease-associated RPE65 proteins containing various missense mutations in
Songhua Li1, Tadahide Izumi2, Jane Hu3
1From the Department of Ophthalmology and Neuroscience Center, Louisiana State University Health Sciences Center, New Orleans, Louisiana 70112.
Abstract:
Over 70 different missense mutations, including a dominant mutation, in RPE65 retinoid isomerase are associated with distinct forms of retinal degeneration; however, the disease mechanisms for most of these mutations have not been studied. Although some mutations have been shown to abolish enzyme activity, the molecular mechanisms leading to the loss of enzymatic function and retinal degeneration remain poorly understood. Here we show that the 26 S proteasome non-ATPase regulatory subunit 13 (PSMD13), a newly identified negative regulator of RPE65, plays a critical role in regulating pathogenicity of three mutations (L22P, T101I, and L408P) by mediating rapid degradation of mutated RPE65s via a ubiquitination- and proteasome-dependent non-lysosomal pathway. These mutant RPE65s were misfolded and formed aggregates or high molecular complexes via disulfide bonds. Interaction of PSMD13 with mutant RPE65s promoted degradation of misfolded but not properly folded mutant RPE65s. Many mutations, including L22P, T101I, and L408P, were mapped on non-active sites. Although their activities were very low, these mutant RPE65s were catalytically active and could be significantly rescued at low temperature, whereas mutant RPE65s with a distinct active site mutation could not be rescued under the same conditions. Sodium 4-phenylbutyrate and glycerol displayed a significant synergistic effect on the low temperature rescue of the mutant RPE65s by promoting proper folding, reducing aggregation, and increasing membrane association. Our results suggest that a low temperature eye mask and sodium 4-phenylbutyrate, a United States Food and Drug Administration-approved oral medicine, may provide a promising "protein repair therapy" that can enhance the efficacy of gene therapy by reducing the cytotoxic effect of misfolded mutant RPE65s.
Insights
The 26S proteasome subunit PSMD13 degrades misfolded RPE65 mutations, causing retinal degeneration. Protein repair therapy using low temperatures and sodium 4-phenylbutyrate may help rescue these mutations.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Over 70 missense mutations in RPE65 retinoid isomerase are linked to retinal degeneration, but disease mechanisms are poorly understood.
- Some mutations abolish RPE65 enzyme activity, yet the precise molecular pathways leading to vision loss remain unclear.
Purpose of the Study:
- Investigate the role of PSMD13 in the pathogenicity of RPE65 mutations.
- Explore therapeutic strategies for RPE65-associated retinal degeneration.
Main Methods:
- Investigated the interaction between PSMD13 and mutant RPE65 proteins.
- Analyzed the degradation pathway of misfolded RPE65 mutants using ubiquitination and proteasome assays.
- Assessed the effect of low temperature, sodium 4-phenylbutyrate, and glycerol on mutant RPE65 folding and aggregation.
Main Results:
- PSMD13 mediates rapid degradation of misfolded RPE65 mutants (L22P, T101I, L408P) via a ubiquitination- and proteasome-dependent pathway.
- Misfolded RPE65 mutants form aggregates and high molecular complexes stabilized by disulfide bonds.
- Low temperature, sodium 4-phenylbutyrate, and glycerol significantly rescued mutant RPE65s by promoting proper folding and reducing aggregation.
Conclusions:
- PSMD13 plays a critical role in RPE65 mutation pathogenicity by promoting degradation of misfolded proteins.
- Protein repair therapy, including low temperature and sodium 4-phenylbutyrate, shows promise for treating RPE65-associated retinal degeneration.
- Therapeutic strategies could enhance gene therapy efficacy by mitigating the cytotoxic effects of misfolded RPE65 mutants.
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