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Published on: December 10, 2021
Parent-of-origin differences of mutant HTT CAG repeat instability in Huntington's disease
N Ahmad Aziz1, Martine J van Belzen, Ilona D Coops
1Department of Neurology, Leiden University Medical Centre, Leiden, The Netherlands. N.A.Aziz@lumc.nl
Insights
Huntington's disease (HD) CAG repeat instability shows a paternal expansion bias and a maternal contraction bias during transmission. Maternal contraction is linked to normal HTT CAG repeat size, while paternal expansion correlates with mutant HTT size.
Area of Science:
- Genetics
- Neurodegenerative Diseases
- Molecular Biology
Background:
- Huntington's disease (HD) is a neurodegenerative disorder caused by CAG repeat expansion in the HTT gene.
- The CAG domain of mutant HTT is unstable during intergenerational transmission, but mechanisms are poorly understood.
Purpose of the Study:
- To investigate the mechanisms of CAG repeat instability in Huntington's disease during parent-offspring transmission.
- To identify factors influencing CAG repeat size changes in Huntington's disease.
Main Methods:
- Analyzed DNA samples from 337 parent-offspring pairs with 36+ CAG repeats from HD archives.
- Standardized protocol reassessed CAG repeat lengths in both mutant and normal HTT alleles.
- Assessed effects of parental (CAG size, age, gender) and offspring (gender, conception season) characteristics on CAG repeat instability.
Main Results:
- Paternal transmissions showed CAG repeat expansion (mean change +1.76), while maternal transmissions showed contraction (mean change -0.07).
- Larger mutant HTT CAG size correlated with paternal expansion; larger normal HTT CAG size correlated with maternal contraction.
- Parental age, offspring gender, and conception season did not significantly affect CAG repeat instability.
Conclusions:
- Suggests a paternal expansion bias and a maternal contraction bias for the mutant HTT CAG repeat during intergenerational transmission.
- Maternal contraction bias is associated with the normal HTT CAG repeat size.
Background:
Huntington's disease (HD) is a progressive autosomal dominant neurodegenerative disorder caused by a CAG repeat expansion in the HD gene (HTT). The CAG domain of mutant HTT is unstable upon intergenerational transmission, however, little is known about the underlying mechanisms.
Methods:
From the HD archives of the Leiden University Medical Centre DNA samples from all parent-offspring pairs involving 36 CAG repeats or more were selected. To minimize procedural variability, CAG repeat lengths in both mutant and normal HTT were reassessed using the same standardized protocol, which resulted in the identification of 337 parent-offspring transmissions. The effects of both parental (mutant and normal CAG repeat size, age and gender) and offspring (gender and season of conception) characteristics on CAG repeat instability were assessed.
Results:
Paternal transmissions were often associated with CAG repeat expansion, whereas maternal transmissions mainly resulted in CAG repeat contraction (mean change: +1.76 vs. -0.07, p<0.001). Only in paternal transmissions larger mutant CAG repeat size was associated with a greater degree of CAG repeat expansion (β=0.73; p<0.001). Conversely, only in maternal transmissions larger CAG repeat size of the normal allele was associated with a greater degree of CAG repeat contraction (β=-0.07; p=0.029). Parental age, offspring gender and season of conception were not related to CAG repeat instability.
Conclusion:
Our findings suggest a slight maternal contraction bias as opposed to a paternal expansion bias of the mutant HTT CAG repeat during intergenerational transmission, which only in the maternal line is associated with normal HTT CAG repeat size.
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