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Published on: May 12, 2023
The Nitric Oxide Donor, S-Nitrosoglutathione, Rescues Peroxisome Number and Activity Defects in PEX1G843D Mild
Yidi Liu1, Ceileigh M Weaver2, Yarina Sen1
1Department of Cell Biology, University of Alberta, Edmonton, AB, Canada.
Insights
S-nitrosoglutathione (GSNO) may treat mild Peroxisome Biogenesis Disorders (PBD-ZSS). This nitrogen oxide donor improved peroxisome function and extended lifespan in cell and fly models of the PEX1G843D mutation.
Area of Science:
- Biochemistry
- Genetics
- Pharmacology
Background:
- Peroxisome biogenesis disorders (PBDs) are inherited metabolic diseases.
- Zellweger syndrome spectrum (PBD-ZSS) involves peroxisomal dysfunction, leading to severe multi-organ effects and no current treatments.
- Mild PBD-ZSS variants may benefit from therapies to improve quality of life and longevity.
Purpose of the Study:
- To identify FDA-approved compounds that enhance peroxisome function and biogenesis.
- To evaluate potential therapeutics for the mild PEX1G843D PBD-ZSS variant.
Main Methods:
- High-throughput screening of FDA-approved compounds using human fibroblast cells with the PEX1G843D mutation.
- Biochemical assays to assess peroxisome number and function.
- In vivo studies using a humanized Drosophila model carrying the PEX1G843D mutation.
Main Results:
- S-nitrosoglutathione (GSNO), a nitrogen oxide donor, was identified as a promising compound.
- GSNO significantly enhanced peroxisome number and function in PEX1G843D fibroblasts.
- GSNO treatment increased survival and lifespan in the PEX1G843D Drosophila model.
Conclusions:
- GSNO demonstrates therapeutic potential for mild PBD-ZSS.
- GSNO warrants further investigation in clinical trials for PBD-ZSS treatment.
Abstract:
Peroxisome biogenesis disorders (PBDs) are a group of metabolic developmental diseases caused by mutations in one or more genes encoding peroxisomal proteins. Zellweger syndrome spectrum (PBD-ZSS) results from metabolic dysfunction caused by damaged or non-functional peroxisomes and manifests as a multi-organ syndrome with significant morbidity and mortality for which there is no current drug therapy. Mild PBD-ZSS patients can exhibit a more progressive disease course and could benefit from the identification of drugs to improve the quality of life and extend the lifespan of affected individuals. Our study used a high-throughput screen of FDA-approved compounds to identify compounds that improve peroxisome function and biogenesis in human fibroblast cells carrying the mild PBD-ZSS variant, PEX1G843D. Our screen identified the nitrogen oxide donor, S-nitrosoglutathione (GSNO), as a potential therapeutic for this mild form of PBD-ZSS. Further biochemical characterization showed that GSNO enhances both peroxisome number and function in PEX1G843D mutant fibroblasts and leads to increased survival and longer lifespan in an in vivo humanized Drosophila model carrying the PEX1G843D mutation. GSNO is therefore a strong candidate to be translated to clinical trials as a potential therapeutic for mild PBD-ZSS.
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