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Are interrupted SCA2 CAG repeat expansions responsible for parkinsonism?
P Charles1, A Camuzat, N Benammar
1AP-HP, Groupe Hospitalier Pitié-Salpêtrière, Department of Genetics and Cytogenetics, Paris, France.
Background:
Autosomal dominant parkinsonism (ADP) is caused in a large percentage of familial and sporadic cases by mutations in the LRRK2 gene, particularly G2019S. It is also caused by mutations in genes associated with autosomal dominant cerebellar ataxia (ADCA), notably CAG/CAA repeat expansions in SCA2.
Methods:
We screened 164 families with ADP for expansions in the SCA2, 3, and 17 genes and for the G2019S mutation in LRRK2. The SCA2 CAG/CAA repeat expansion was sequenced to determine its structure. The phenotypes of patients with ADP caused by the SCA2, LRRK2, and unknown mutations were compared, as well as those of SCA2 patients with interrupted or uninterrupted expansions of the same size.
Results:
Three French ADP families had SCA2 mutations. The expansions ranged from 37 to 39 repeats and were interrupted and stable upon transmission. All patients (n = 9) had levodopa-responsive parkinsonism without cerebellar signs. They had significantly more symmetric signs and less rigidity than ADP caused by the G2019S mutation in LRRK2 or by unknown mutations. Interestingly, two sisters carrying both the SCA2 and the G2019S LRRK2 mutations had markedly earlier onset than their mother with only SCA2. In contrast, similar-sized but uninterrupted repeats were associated with ADCA in which cerebellar ataxia was constant and associated only rarely with one or more mild parkinsonian signs.
Conclusion:
These results suggest that the configuration of the SCA2 CAG/CAA repeat expansions plays an important role in phenotype variability. Uninterrupted SCA2 repeat expansions found in families with autosomal dominant cerebellar ataxia result in somatic mosaicism and produce large hairpin RNAs, which may interact with double-stranded RNA-binding proteins. These characteristics are modified by interruption of the SCA2 repeat expansion as found in families with autosomal dominant parkinsonism.
Insights
The structure of SCA2 repeat expansions significantly influences disease presentation in autosomal dominant parkinsonism (ADP) and ataxia (ADCA). Interrupted expansions are linked to parkinsonism, while uninterrupted ones cause ataxia.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Autosomal dominant parkinsonism (ADP) is frequently caused by LRRK2 mutations (e.g., G2019S) or genes linked to autosomal dominant cerebellar ataxia (ADCA), such as SCA2.
- SCA2 gene mutations, specifically CAG/CAA repeat expansions, are implicated in both ADCA and, less commonly, ADP.
Purpose of the Study:
- To investigate the role of SCA2 repeat expansions and LRRK2 mutations in families with autosomal dominant parkinsonism (ADP).
- To compare the clinical phenotypes associated with different SCA2 repeat expansion configurations and LRRK2 mutations.
Main Methods:
- Screened 164 families with ADP for SCA2, SCA3, and SCA17 gene expansions and LRRK2 G2019S mutation.
- Sequenced SCA2 CAG/CAA repeat expansions to determine their structure (interrupted vs. uninterrupted).
- Compared phenotypes of patients with ADP due to SCA2, LRRK2, or unknown mutations, and SCA2 patients with interrupted vs. uninterrupted expansions.
Main Results:
- Identified SCA2 repeat expansions (37-39 repeats, interrupted, stable) in three French ADP families.
- Patients with interrupted SCA2 expansions presented with levodopa-responsive parkinsonism, symmetric signs, and less rigidity compared to LRRK2-related parkinsonism.
- Uninterrupted, similar-sized SCA2 repeats were associated with ADCA, with cerebellar ataxia as the primary symptom.
Conclusions:
- The configuration of SCA2 CAG/CAA repeat expansions is critical in determining phenotype variability between ADP and ADCA.
- Interrupted SCA2 expansions in ADP may involve different pathogenic mechanisms than uninterrupted expansions causing ADCA.
- Interruption of SCA2 repeat expansions modifies characteristics associated with uninterrupted repeats, such as somatic mosaicism and hairpin RNA formation.
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