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Published on: January 22, 2017
Xpa deficiency reduces CAG trinucleotide repeat instability in neuronal tissues in a mouse model of SCA1
Leroy Hubert1, Yunfu Lin, Vincent Dion
1Verna and Marrs McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, One Baylor Plaza, Houston, TX 77030, USA.
Abstract:
Expansion of trinucleotide repeats (TNRs) is responsible for a number of human neurodegenerative disorders. The molecular mechanisms that underlie TNR instability in humans are not clear. Based on results from model systems, several mechanisms for instability have been proposed, all of which focus on the ability of TNRs to form alternative structures during normal DNA transactions, including replication, DNA repair and transcription. These abnormal structures are thought to trigger changes in TNR length. We have previously shown that transcription-induced TNR instability in cultured human cells depends on several genes known to be involved in transcription-coupled nucleotide excision repair (NER). We hypothesized that NER normally functions to destabilize expanded TNRs. To test this hypothesis, we bred an Xpa null allele, which eliminates NER, into the TNR mouse model for spinocerebellar ataxia type 1 (SCA1), which carries an expanded CAG repeat tract at the endogenous mouse Sca1 locus. We find that Xpa deficiency does not substantially affect TNR instability in either the male or female germline; however, it dramatically reduces CAG repeat instability in neuronal tissues-striatum, hippocampus and cerebral cortex-but does not alter CAG instability in kidney or liver. The tissue-specific effect of Xpa deficiency represents a novel finding; it suggests that tissue-to-tissue variation in CAG repeat instability arises, in part, by different underlying mechanisms. These results validate our original findings in cultured human cells and suggest that transcription may induce NER-dependent TNR instability in neuronal tissues in humans.
Insights
Nucleotide excision repair (NER) deficiency reduces trinucleotide repeat (TNR) instability in mouse brain tissue. This suggests NER plays a role in neurodegenerative disorders linked to TNR expansion.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Trinucleotide repeat (TNR) expansions cause neurodegenerative disorders.
- Mechanisms of TNR instability are not fully understood.
- TNRs can form alternative DNA structures during DNA transactions.
Purpose of the Study:
- To investigate the role of nucleotide excision repair (NER) in TNR instability.
- To test if NER normally destabilizes expanded TNRs.
Main Methods:
- Generated a mouse model deficient in NER (Xpa null allele) crossed with a mouse model of spinocerebellar ataxia type 1 (SCA1).
- Assessed CAG repeat instability in germline, neuronal tissues (striatum, hippocampus, cerebral cortex), kidney, and liver.
Main Results:
- Xpa deficiency did not significantly affect TNR instability in the germline.
- Xpa deficiency dramatically reduced CAG repeat instability in neuronal tissues.
- CAG repeat instability was not altered in kidney or liver tissues of Xpa-deficient mice.
Conclusions:
- NER deficiency specifically reduces TNR instability in neuronal tissues, not other tissues.
- Tissue-specific mechanisms contribute to variations in TNR instability.
- Transcription-induced TNR instability in neurons may depend on NER.
