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1.
Brain ; 146(12): 5060-5069, 2023 12 01.
Article in English | MEDLINE | ID: mdl-37450567

ABSTRACT

Cerebellar ataxia, neuropathy and vestibular areflexia syndrome (CANVAS) is an autosomal recessive neurodegenerative disease, usually caused by biallelic AAGGG repeat expansions in RFC1. In this study, we leveraged whole genome sequencing data from nearly 10 000 individuals recruited within the Genomics England sequencing project to investigate the normal and pathogenic variation of the RFC1 repeat. We identified three novel repeat motifs, AGGGC (n = 6 from five families), AAGGC (n = 2 from one family) and AGAGG (n = 1), associated with CANVAS in the homozygous or compound heterozygous state with the common pathogenic AAGGG expansion. While AAAAG, AAAGGG and AAGAG expansions appear to be benign, we revealed a pathogenic role for large AAAGG repeat configuration expansions (n = 5). Long-read sequencing was used to characterize the entire repeat sequence, and six patients exhibited a pure AGGGC expansion, while the other patients presented complex motifs with AAGGG or AAAGG interruptions. All pathogenic motifs appeared to have arisen from a common haplotype and were predicted to form highly stable G quadruplexes, which have previously been demonstrated to affect gene transcription in other conditions. The assessment of these novel configurations is warranted in CANVAS patients with negative or inconclusive genetic testing. Particular attention should be paid to carriers of compound AAGGG/AAAGG expansions when the AAAGG motif is very large (>500 repeats) or the AAGGG motif is interrupted. Accurate sizing and full sequencing of the satellite repeat with long-read sequencing is recommended in clinically selected cases to enable accurate molecular diagnosis and counsel patients and their families.


Subject(s)
Cerebellar Ataxia , Peripheral Nervous System Diseases , Syndrome , Vestibular Diseases , Humans , Bilateral Vestibulopathy , Cerebellar Ataxia/genetics , Cerebellar Ataxia/diagnosis , Neurodegenerative Diseases , Peripheral Nervous System Diseases/diagnosis , Peripheral Nervous System Diseases/genetics , Vestibular Diseases/diagnosis , Vestibular Diseases/genetics
2.
Sci Adv ; 10(24): eadk4387, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38865460

ABSTRACT

The function of TERRA in the regulation of telomerase in human cells is still debated. While TERRA interacts with telomerase, how it regulates telomerase function remains unknown. Here, we show that TERRA colocalizes with the telomerase RNA subunit hTR in the nucleoplasm and at telomeres during different phases of the cell cycle. We report that TERRA transcripts relocate away from chromosome ends during telomere lengthening, leading to a reduced number of telomeric TERRA-hTR molecules and consequent increase in "TERRA-free" telomerase molecules at telomeres. Using live-cell imaging and super-resolution microscopy, we show that upon transcription, TERRA relocates from its telomere of origin to long chromosome ends. Furthermore, TERRA depletion by antisense oligonucleotides promoted hTR localization to telomeres, leading to increased residence time and extended half-life of hTR molecules at telomeres. Overall, our findings indicate that telomeric TERRA transcripts inhibit telomere elongation by telomerase acting in trans, impairing telomerase access to telomeres that are different from their chromosome end of origin.


Subject(s)
Telomerase , Telomere , Telomerase/metabolism , Telomerase/genetics , Humans , Telomere/metabolism , Telomere/genetics , Telomere Homeostasis , HeLa Cells , RNA/metabolism , RNA/genetics , Transcription, Genetic , Telomere-Binding Proteins/metabolism , Telomere-Binding Proteins/genetics , Cell Cycle/genetics , Chromosomes, Human/metabolism , Chromosomes, Human/genetics , DNA-Binding Proteins , Transcription Factors
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