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Published on: September 21, 2021
Allele-selective suppression of mutant genes in polyglutamine diseases
Chia-Rung Liu1, Tzu-Hao Cheng1,2
1a Institute of Biochemistry and Molecular Biology, National Yang-Ming University , Taipei , Taiwan , Republic of China.
Abstract:
Polyglutamine (polyQ) diseases are heritable dominant neurological disorders, caused by abnormal CAG tri-nucleotide expansion in the coding sequence of affected genes. Extension of CAG repeats results in the production of aberrant gene products that are deleterious to neurons, such as transcripts with a CAG stem-loop secondary structure, and proteins containing a long stretch of polyQ residues. Thus, determining methods for the prevention or elimination of these mutant gene products from neuronal cells and translating this knowledge to clinical application are currently important goals in the fields of neurology and neurogenetics. Recently, several studies have revealed intriguing findings related to the allele-selective regulation of CAG-expanded genes, and have proposed novel designs to selectively diminish the mutant polyQ proteins. In this review, we focus on the genes, genetically engineered proteins, and oligonucleotides that show potential to modulate the expression of mutant genes. We also discuss their respective molecular functions at the levels of transcription, translation, and post-translation.
Insights
Polyglutamine (polyQ) diseases stem from expanded CAG repeats, leading to toxic gene products. This review explores strategies to selectively reduce these mutant proteins for potential neurological treatments.
Area of Science:
- Neurogenetics
- Molecular Neurology
Background:
- Polyglutamine (polyQ) diseases are inherited neurological disorders caused by expanded CAG trinucleotide repeats in specific genes.
- These expansions produce toxic RNA and protein products, damaging neurons.
Purpose of the Study:
- To review current strategies for allele-selective regulation of CAG-expanded genes.
- To explore novel therapeutic approaches targeting mutant polyQ protein reduction.
Main Methods:
- Focus on genes, engineered proteins, and oligonucleotides modulating mutant gene expression.
- Analysis of molecular functions at transcriptional, translational, and post-translational levels.
Main Results:
- Emerging findings highlight allele-selective regulation of CAG-expanded genes.
- Novel designs show potential for selective reduction of mutant polyQ proteins.
Conclusions:
- Developing methods to eliminate mutant gene products is crucial for treating polyQ diseases.
- Further research into modulating gene expression offers promising therapeutic avenues.
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