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Targeted long-read sequencing enriches disease-relevant genomic regions of interest to provide complete Mendelian disease diagnostics
Kenji Nakamichi, Jennifer Huey, Riccardo Sangermano, Emily M. Place, Kinga M. Bujakowska, Molly Marra, Lesley A. Everett, Paul Yang, Jennifer R. Chao, Russell N. Van Gelder, Debarshi Mustafi
Kenji Nakamichi, Jennifer Huey, Riccardo Sangermano, Emily M. Place, Kinga M. Bujakowska, Molly Marra, Lesley A. Everett, Paul Yang, Jennifer R. Chao, Russell N. Van Gelder, Debarshi Mustafi
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Research Article Genetics Ophthalmology

Targeted long-read sequencing enriches disease-relevant genomic regions of interest to provide complete Mendelian disease diagnostics

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Abstract

Despite advances in sequencing technologies, a molecular diagnosis remains elusive in many patients with Mendelian disease. Current short-read clinical sequencing approaches cannot provide chromosomal phase information or epigenetic information without further sample processing, which is not routinely done and can result in an incomplete molecular diagnosis in patients. The ability to provide phased genetic and epigenetic information from a single sequencing run would improve the diagnostic rate of Mendelian conditions. Here, we describe targeted long-read sequencing of Mendelian disease genes (TaLon-SeqMD) using a real-time adaptive sequencing approach. Optimization of bioinformatic targeting enabled selective enrichment of multiple disease-causing regions of the human genome. Haplotype-resolved variant calling and simultaneous resolution of epigenetic base modification could be achieved in a single sequencing run. The TaLon-SeqMD approach was validated in a cohort of 18 individuals with previous genetic testing targeting 373 inherited retinal disease (IRD) genes, yielding the complete molecular diagnosis in each case. This approach was then applied in 2 IRD cases with inconclusive testing, which uncovered noncoding and structural variants that were difficult to characterize by standard short-read sequencing. Overall, these results demonstrate TaLon-SeqMD as an approach to provide rapid phased-variant calling to provide the molecular basis of Mendelian diseases.

Authors

Kenji Nakamichi, Jennifer Huey, Riccardo Sangermano, Emily M. Place, Kinga M. Bujakowska, Molly Marra, Lesley A. Everett, Paul Yang, Jennifer R. Chao, Russell N. Van Gelder, Debarshi Mustafi

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Figure 6

Targeted whole-genome long-read sequencing can detect complex SVs and deep intronic variants to provide insight in cases of missing heritability.

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Targeted whole-genome long-read sequencing can detect complex SVs and de...
In 2 cases of individuals with Usher syndrome, a pathogenic coding SNV was found with initial clinical exome-based panel testing. (A) The complete USH2A locus was covered, which allowed examination of noncoding regions. (B) Closer view of a 13-kb region encompassing intron 64 to exon 68 shows the known coding variant in exon 68 (red arrow) and the noncoding variant (black arrow) lie in trans. (C) In the second case, we show the 242-kb region encompassing the known coding variant and the large structural deletion encompassing exons 42 and 43, with the 2 variants segregating in trans. (D) Closer examination of the coding SNV shows long-read data are able to segregate the variant on a single haplotype. (E) Long-read data of the SV are able to again show it segregates on a single chromosome, with precise breakpoint detection compared with short-read data.

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