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Published on: November 22, 2024
Structural and Functional Characterization of the Most Frequent Pathogenic PRKN Substitution p.R275W
Bernardo A Bustillos1, Liam T Cocker1, Mathew A Coban1
1Mayo Clinic, Department of Neuroscience, Jacksonville, FL 32224, USA.
Abstract:
Mutations in the PINK1 and PRKN genes are the most frequent genetic cause of early-onset Parkinson disease. The pathogenic p.R275W substitution in PRKN is the most frequent substitution observed in patients, and thus far has been characterized mostly through overexpression models that suggest a possible gain of toxic misfunction. However, its effects under endogenous conditions are largely unknown. We used patient fibroblasts, isogenic neurons, and post-mortem human brain samples from carriers with and without PRKN p.R275W to assess functional impact. Immunoblot analysis and immunofluorescence were used to study mitophagy activation, and mitophagy execution was analyzed by flow cytometry of the reporter mitoKeima. The functional analysis was accompanied by structural investigation of PRKN p.R275W. We observed lower PRKN protein in fibroblasts with compound heterozygous p.R275W mutations. Isogenic neurons showed an allele-dose dependent decrease in PRKN protein. Lower PRKN protein levels were accompanied by diminished phosphorylated ubiquitin and decreased MFN2 modification. Mitochondrial degradation was also allele-dose dependently impaired. Consistently, PRKN protein levels were drastically reduced in human brain samples from p.R275W carriers. Finally, structural simulations showed significant changes in the closed form of PRKN p.R275W. Our data suggest that under endogenous conditions the p.R275W mutation results in a loss-of-function by destabilizing PRKN.
Insights
The p.R275W mutation in the Parkin (PRKN) gene causes early-onset Parkinson disease by reducing PRKN protein levels. This loss-of-function impairs mitochondrial degradation, impacting disease progression.
Area of Science:
- Neurogenetics
- Molecular Biology
- Cellular Biology
Background:
- Mutations in PINK1 and Parkin (PRKN) genes are primary genetic causes of early-onset Parkinson disease.
- The PRKN p.R275W substitution is the most common mutation, but its endogenous effects are poorly understood.
Purpose of the Study:
- To investigate the functional impact of the PRKN p.R275W mutation under endogenous conditions.
- To determine if the mutation leads to a loss or gain of toxic function.
Main Methods:
- Analysis of patient fibroblasts, isogenic neurons, and post-mortem brain samples.
- Immunoblotting, immunofluorescence, and flow cytometry (mitoKeima reporter) to assess mitophagy.
- Structural simulations of the PRKN p.R275W protein.
Main Results:
- Reduced PRKN protein levels observed in fibroblasts, neurons, and brain samples from carriers.
- Impaired mitophagy activation and execution, with allele-dose dependent effects.
- Structural simulations revealed significant changes in PRKN p.R275W conformation.
Conclusions:
- The PRKN p.R275W mutation leads to a loss-of-function under endogenous conditions.
- The mutation destabilizes PRKN protein, impairing mitochondrial quality control in Parkinson disease.

