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The Huntingtin (HTT) gene CAG repeat expansion is the causative genetic mutation for Huntington's disease (HD), an autosomal dominant neurodegenerative disorder (NCBI Gene ID: 3064). In healthy individuals, the HTT gene typically contains 6 to 35 CAG repeats; however, an expansion beyond 36 repeats leads to the production of a mutant huntingtin (mHTT) protein containing an elongated polyglutamine (polyQ) tract (UniProt: P42858). This mutant protein is prone to misfolding and aggregation, which triggers a cascade of cellular dysfunction including transcriptional dysregulation, impaired axonal transport, and mitochondrial failure, ultimately leading to neuronal death in the striatum and cortex (PubMed: 29035358). Therapeutic strategies targeting this expansion, often referred to as huntingtin-lowering therapies, utilize antisense oligonucleotides (ASOs), RNA interference (RNAi), and small molecule splicing modulators to reduce the expression of the toxic mHTT protein (PubMed: 31067372). A critical challenge in drug development is achieving allele-specific silencing to preserve the essential biological functions of the wild-type HTT protein while effectively neutralizing the mutant form (PubMed: 33536539). Monitoring of these therapies typically involves measuring mHTT levels in the cerebrospinal fluid and tracking neurodegenerative biomarkers like neurofilament light chain (NfL).
Antisense oligonucleotide-mediated mRNA degradation, RNA interference (RNAi) via microRNA or siRNA, small molecule-mediated splicing modulation to induce premature stop codons, and CRISPR-based gene editing to excise or disrupt the expanded repeat.
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