Reduced gene dosage is a common mechanism of neuropathologies caused by ATP6AP2 splicing mutations
William C Edelman1, Kostantin Kiianitsa2, Tuhin Virmani3
1Division of Medical Genetics, Department of Medicine, University of Washington, Seattle, WA, USA.
Background:
Mutations that alter splicing of X-linked ATP6AP2 cause a spectrum of neurodevelopmental and neurodegenerative pathologies including parkinsonism in affected males. All previously reported splicing mutations increase the level of a minor isoform with skipped exon 4 (Δe4) that encodes a functionally deficient protein.
Objectives:
We investigated the pathogenic mechanism of a novel c.168+6T>A variant reported in a family with X-linked intellectual disability, epilepsy, and parkinsonism. We also analyzed ATP6AP2 splicing defects in brains of carriers of a c.345C>T variant associated with X-linked spasticity and parkinsonism.
Methods:
We generated induced pluripotent stem cells from patients with c.168+6T>A, reprogrammed them to neural progenitor cells and analyzed them by RNA-Seq and qRT-PCR. We also quantified ATP6AP2 isoforms in the brains of c.345C>T carriers by Nanostring nCounter.
Results:
The c.168+6T>A increased skipping of ATP6AP2 exon 2 and usage of cryptic intronic donor splice sites. This results in out-of-frame splicing products and a reciprocal 50% reduction in functional full-length ATP6AP2 transcripts. Neural progenitors of patients with c.168+6T>A exhibited downregulated neural development gene networks. Analysis of blood transcriptomes of c.168+6T>A carriers identified potential biomarkers of ATP6AP2 deficiency in non-neural tissues. The c.345C>T variant increased exon 4 skipping with concomitant decrease of full length ATP6AP2 in brains of carriers.
Conclusion:
A common pathogenic consequence of splicing mutations affecting inclusion of different ATP6AP2 exons is reduction of the functional full-length transcript. The exacerbated ATP6AP2 splicing defect in brains of c.345C>T carriers is consistent with their CNS-restricted clinical presentations.
Insights
Splicing mutations in the ATP2AP2 gene cause neurodegenerative diseases by reducing functional protein. This study reveals novel variants and mechanisms, offering insights into biomarkers and disease pathology.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Mutations in X-linked ATP6AP2 gene are linked to neurodevelopmental and neurodegenerative disorders, including parkinsonism in males.
- Previously identified splicing mutations lead to increased levels of a minor ATP6AP2 isoform (Δe4), resulting in a deficient protein.
Purpose of the Study:
- Investigate the pathogenic mechanism of a novel c.168+6T>A variant causing intellectual disability, epilepsy, and parkinsonism.
- Analyze ATP6AP2 splicing defects in carriers of a c.345C>T variant associated with spasticity and parkinsonism.
Main Methods:
- Generated induced pluripotent stem cells from patients with the c.168+6T>A variant, differentiating them into neural progenitor cells.
- Analyzed ATP6AP2 isoforms in patient-derived cells and brain tissue using RNA-Seq, qRT-PCR, and Nanostring nCounter.
Main Results:
- The c.168+6T>A variant caused exon 2 skipping and cryptic splice site usage, reducing functional ATP6AP2 transcripts by 50% and downregulating neural development genes.
- Identified potential blood-based biomarkers for ATP6AP2 deficiency.
- The c.345C>T variant increased exon 4 skipping, decreasing full-length ATP6AP2 in carrier brains.
Conclusions:
- A common mechanism for ATP6AP2 splicing mutations is the reduction of functional full-length transcripts.
- Exacerbated splicing defects in carrier brains correlate with central nervous system-restricted symptoms.
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