Enrichment of Repeat Expansions in FGF14 Associated with Amyotrophic Lateral Sclerosis
Ma, S.; West, P. K.; Trinh, A.; Yang, A.; Dolzhenko, E.; Al Khleifat, A.; Ali, A.; Iacoangeli, A.; Wong, T.; Akkari, P. A.; Ellis-Ovadia, N.; Faruq, M.; Al-Chalabi, A.; Harms, M. B.; Heiman-Patterson, T. D.; Bedlack, R.; Stromme, M.
Show abstract
Amyotrophic Lateral Sclerosis (ALS) is a neurodegenerative disease characterised by progressive motor neuron loss and corticospinal tract degeneration. The genetic landscape of ALS is complex, with increasing recognition of shared genetic and phenotypic features with other neurodegenerative conditions, particularly those involving repeat expansions. Given that repeat expansions in disorders like spinocerebellar ataxia type 27B (SCA27B), caused by an intronic GAA repeat expansion in Fibroblast Growth Factor 14 (FGF14), are recognised to extend beyond cerebellar ataxia with frequent pyramidal signs, we hypothesised that FGF14 repeat expansions might also contribute to ALS and degeneration of corticospinal pathways, and sought to investigate whether repeat length is associated with clinical phenotype. We screened 62 individuals with ALS using PacBio HiFi long-read whole-genome sequencing and compared repeat-size distributions with 256 healthy controls from the Human Pangenome Reference Consortium. Repeat expansions were confirmed using flanking PCR and repeat-primed PCR. We identified pathogenic-range FGF14 GAA [≥]250 expansions, the established threshold for SCA27B, in 3/62 ALS cases (4.8%) and none in controls. Further analysis revealed that GAA expansions [≥]200 repeats were enriched in ALS compared to controls (8.1% vs 0.4%; p = 0.0013), suggesting a broader pathogenic spectrum for FGF14 GAA repeats in ALS. In contrast, GAAGGA expansions were not significantly associated. Expanded pure GAA alleles were predicted to form triplex (H-DNA) structures, with the repeat-containing isoform (1B) being the predominant FGF14 transcript in motor neurons. These findings demonstrate that FGF14 GAA repeat expansions extend into the motor neuron disease spectrum.
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