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1.
Emerg Top Life Sci ; 7(3): 339-348, 2023 Dec 14.
Article in English | MEDLINE | ID: mdl-37888797

ABSTRACT

Tandem repeat DNA sequences constitute a significant proportion of the human genome. While previously considered to be functionally inert, these sequences are now broadly accepted as important contributors to genetic diversity. However, the polymorphic nature of these sequences can lead to expansion beyond a gene-specific threshold, causing disease. More than 50 pathogenic repeat expansions have been identified to date, many of which have been discovered in the last decade as a result of advances in sequencing technologies and associated bioinformatic tools. Commonly utilised diagnostic platforms including Sanger sequencing, capillary array electrophoresis, and Southern blot are generally low throughput and are often unable to accurately determine repeat size, composition, and epigenetic signature, which are important when characterising repeat expansions. The rapid advances in bioinformatic tools designed specifically to interrogate short-read sequencing and the development of long-read single molecule sequencing is enabling a new generation of high throughput testing for repeat expansion disorders. In this review, we discuss some of the challenges surrounding the identification and characterisation of disease-causing repeat expansions and the technological advances that are poised to translate the promise of genomic medicine to individuals and families affected by these disorders.


Subject(s)
Computational Biology , Tandem Repeat Sequences , Humans , Sequence Analysis, DNA/methods , High-Throughput Nucleotide Sequencing/methods
3.
Stem Cell Res ; 68: 103047, 2023 04.
Article in English | MEDLINE | ID: mdl-36805468

ABSTRACT

Cerebellar ataxia, neuropathy, and vestibular areflexia syndrome (CANVAS) is a progressive neurodegenerative disorder predominantly caused by biallelic AAGGG expansions in the second intron of the RFC1 gene. Here, we used a simultaneous reprogramming and CRISPR-Cas9 genome editing approach to generate three patient iPSC lines with homozygous AAGGG expansions along with three heterozygous gene corrected iPSC lines. The iPSC lines expressed pluripotency markers, had a normal karyotype, and were able to differentiate into all three embryonic germ layers. These mutant and corrected iPSC lines will be a valuable tool for studying the molecular mechanisms underlying CANVAS.


Subject(s)
Bilateral Vestibulopathy , Cerebellar Ataxia , Induced Pluripotent Stem Cells , Peripheral Nervous System Diseases , Humans , Cerebellar Ataxia/genetics , Syndrome , Heterozygote
4.
Am J Hum Genet ; 110(1): 105-119, 2023 01 05.
Article in English | MEDLINE | ID: mdl-36493768

ABSTRACT

Adult-onset cerebellar ataxias are a group of neurodegenerative conditions that challenge both genetic discovery and molecular diagnosis. In this study, we identified an intronic (GAA) repeat expansion in fibroblast growth factor 14 (FGF14). Genetic analysis of 95 Australian individuals with adult-onset ataxia identified four (4.2%) with (GAA)>300 and a further nine individuals with (GAA)>250. PCR and long-read sequence analysis revealed these were pure (GAA) repeats. In comparison, no control subjects had (GAA)>300 and only 2/311 control individuals (0.6%) had a pure (GAA)>250. In a German validation cohort, 9/104 (8.7%) of affected individuals had (GAA)>335 and a further six had (GAA)>250, whereas 10/190 (5.3%) control subjects had (GAA)>250 but none were (GAA)>335. The combined data suggest (GAA)>335 are disease causing and fully penetrant (p = 6.0 × 10-8, OR = 72 [95% CI = 4.3-1,227]), while (GAA)>250 is likely pathogenic with reduced penetrance. Affected individuals had an adult-onset, slowly progressive cerebellar ataxia with variable features including vestibular impairment, hyper-reflexia, and autonomic dysfunction. A negative correlation between age at onset and repeat length was observed (R2 = 0.44, p = 0.00045, slope = -0.12) and identification of a shared haplotype in a minority of individuals suggests that the expansion can be inherited or generated de novo during meiotic division. This study demonstrates the power of genome sequencing and advanced bioinformatic tools to identify novel repeat expansions via model-free, genome-wide analysis and identifies SCA50/ATX-FGF14 as a frequent cause of adult-onset ataxia.


Subject(s)
Cerebellar Ataxia , Fibroblast Growth Factors , Friedreich Ataxia , Trinucleotide Repeat Expansion , Adult , Humans , Ataxia/genetics , Australia , Cerebellar Ataxia/genetics , Friedreich Ataxia/genetics , Trinucleotide Repeat Expansion/genetics
5.
Neurol Genet ; 8(5): e200016, 2022 Oct.
Article in English | MEDLINE | ID: mdl-36046423

ABSTRACT

In 2019, a biallelic pentanucleotide repeat expansion in the gene encoding replication factor C subunit 1 (RFC1) was reported as a cause of cerebellar ataxia with neuropathy and vestibular areflexia syndrome (CANVAS). In addition, biallelic expansions were shown to account for up to 22% of cases with late-onset ataxia. Since this discovery, the phenotypic spectrum reported to be associated with RFC1 expansions has extended beyond the initial conditions to include pure cerebellar ataxia, isolated somatosensory impairment, combinations of the 2, and parkinsonism, leading to a potentially broad differential diagnosis. Genetic studies suggest RFC1 expansions may be the most common genetic cause of ataxia and are likely underdiagnosed. This review summarizes the current molecular and clinical knowledge of RFC1-related disease, with a focus on the evaluation of recent phenotype associations and highlighting the current challenges in clinical pathways to diagnosis and molecular testing.

6.
Ann Neurol ; 92(1): 122-137, 2022 07.
Article in English | MEDLINE | ID: mdl-35411967

ABSTRACT

OBJECTIVE: Dominant spinocerebellar ataxias (SCA) are characterized by genetic heterogeneity. Some mapped and named loci remain without a causal gene identified. Here we applied next generation sequencing (NGS) to uncover the genetic etiology of the SCA25 locus. METHODS: Whole-exome and whole-genome sequencing were performed in families linked to SCA25, including the French family in which the SCA25 locus was originally mapped. Whole exome sequence data were interrogated in a cohort of 796 ataxia patients of unknown etiology. RESULTS: The SCA25 phenotype spans a slowly evolving sensory and cerebellar ataxia, in most cases attributed to ganglionopathy. A pathogenic variant causing exon skipping was identified in the gene encoding Polyribonucleotide Nucleotidyltransferase PNPase 1 (PNPT1) located in the SCA25 linkage interval. A second splice variant in PNPT1 was detected in a large Australian family with a dominant ataxia also mapping to SCA25. An additional nonsense variant was detected in an unrelated individual with ataxia. Both nonsense and splice heterozygous variants result in premature stop codons, all located in the S1-domain of PNPase. In addition, an elevated type I interferon response was observed in blood from all affected heterozygous carriers tested. PNPase notably prevents the abnormal accumulation of double-stranded mtRNAs in the mitochondria and leakage into the cytoplasm, associated with triggering a type I interferon response. INTERPRETATION: This study identifies PNPT1 as a new SCA gene, responsible for SCA25, and highlights biological links between alterations of mtRNA trafficking, interferonopathies and ataxia. ANN NEUROL 2022;92:122-137.


Subject(s)
Cerebellar Ataxia , Interferon Type I , Spinocerebellar Ataxias , Ataxia , Australia , Exoribonucleases , France , Humans , Interferon Type I/genetics , Spinocerebellar Ataxias/genetics , Spinocerebellar Ataxias/pathology
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