This work evaluated CRISPR-Cas9-mediated target enrichment coupled to Oxford Nanopore Technologies (ONT) long read sequencing, to accelerate and improve the time-consuming molecular diagnosis of repeat expansion disorders.
Abstract
Abnormal expansion of nucleotide repeats was first identified 34 years ago as a unique mutational mechanism. It is now linked to numerous neurogenetic disorders, several of which discovered only recently. The identification of these expansions has led to various classifications based on clinical presentation, repeat nature and genomic location (coding or non-coding regions). Precise diagnosis of these conditions relies on molecular testing, currently performed on a gene-by-gene basis. Their analysis remains challenging, especially for long expansions. We evaluated CRISPR-Cas9-mediated target enrichment coupled to Oxford Nanopore Technologies (ONT) long read sequencing, to accelerate and improve the time-consuming molecular diagnosis of repeat expansion disorders. We simultaneously targeted nine loci involved in 10 repeat expansion disorders in a single capture panel, including
FMR1
,
HTT
,
DMPK
,
CNBP/ZNF9
,
ATXN2
,
JPH3
,
FXN
,
C9ORF72
and
RFC1
, covering a broad range of repeat types, sizes and diagnostic needs. Results were compared with standard routine testing methods. ONT sequencing using Flongle flow cells yielded results consistent with standard techniques for most loci, particularly for non-complex repeats. However, limitations were observed for structurally complex regions such as
RFC1
, and inter-run variability required the aggregation of multiple Flongle runs per sample to achieve robust genotyping. These findings highlight both the potential and current limitations of CRISPR-Cas9-enriched ONT sequencing for multiplex diagnosis of repeat expansion disorders in a clinical setting. The approach deserves further development, particularly optimisation of protocols, inclusion of larger sample sizes, and comparison with alternative technologies.
An amplification‐free nanopore Cas9‐targeted sequencing (nCATS) platform is modified to achieve uniform coverage across 56 currently defined STR loci using a single test with genomic DNA from patient‐derived blood cells and to develop a dedicated analysis algorithm, STRiker, capable of identifying internal motif contex...
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