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Targeted long-read sequencing identifies missing disease-causing variation

delete2021-08-01
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OA
AI
D
Danny E. Miller *
A
Arvis Sulovari
王天云 cover
王天云 (Tianyun Wang)
H
Hailey Loucks
K
Kendra Hoekzema
K
Katherine M. Munson
A
Alexandra P. Lewis
E
Edith P. Almanza Fuerte
C
Catherine R. Paschal
T
Tom Walsh
J
Jenny Thies
J
James T. Bennett
I
Ian A. Glass
K
Katrina M. Dipple
K
Karynne Patterson
E
Emily Bonkowski
A
Audrey Squire
M
Megan Sikes
E
Erika Beckman
R
Robin L. Bennett
D
Dawn Earl
W
Winston Lee
R
Rando Allikmets
S
Seth J. Perlman
P
Penny Chow
A
Anne Hing
T
Tara Wenger
M
Margaret P Adam
A
Angela Sun
C
Christina Lam
I
Irene J. Chang
X
Xue Zou
S
Stephanie Austin
E
Erin Huggins
A
Alexias Safi
A
Apoorva K. Iyengar
T
Timothy E. Reddy
W
William H. Majoros
A
Andrew S. Allen
G
Gregory E. Crawford
P
Priya S. Kishnani
M
Mary‐Claire King
T
Tim Cherry
J
Jessica X. Chong
M
Michael J. Bamshad
D
Deborah A. Nickerson
H
Heather C. Mefford
D
Dan Doherty
E
Evan E. Eichler *
DOI:10.1016/j.ajhg.2021.06.006delete
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Abstract

Abstract

En 中文
Despite wide spread clinical genetic testing, many individuals with suspected genetic conditions lack a precise diagnosis, limiting their opportunity to take advantage of state-of-the-art treatments. In somecases, testing reveals difficult-to-evaluate structural differences, candidate variants that do not fully explain the phenotype, single pathogenic variants in recessive disorders, or no variants in genes of interest. Thus, there is a need for better tools to identify a precise genetic diagnosis in individuals when conventional testing approaches have been exhausted. We performed targeted long-read sequencing (T-LRS) using adaptive sampling on the Oxford Nanopore platform on 40 individuals, 10 of whom lacked a complete molecular diagnosis. We computationally targeted up to 151 Mbp of sequence per individual and searched for pathogenic substitutions, structural variants, and methylation differences using a single data source. We detected all genomic aberrations-including single-nucleotide variants, copy number changes, repeat expansions, and methylation differences-identified by prior clinical testing. In 8/8 individuals with complex structural rearrangements, T-LRS enabled more precise resolution of the mutation, leading to changes in clinical management in one case. In ten individuals with suspected Mendelian conditions lacking a precise genetic diagnosis, T-LRS identified pathogenic or likely pathogenic variants in six and variants of uncertain significance in two others. T-LRS accurately identifies pathogenic structural variants, resolves complex rearrangements, and identifies Mendelian variants not detected by other technologies. T-LRS represents an efficient and cost-effective strategy to evaluate high-priority genes and regions or complex clinical testing results.
Keywords:
DIAGNOSIS
GENOMICS
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Journal

American Journal of Human Genetics cover
American Journal of Human Genetics
IF:
8.1
Papers:
7.2K
Citations:
3.7W

Organization

C
Columbia University
Scholars:
7.1W
Papers: 6.4W
Citations: 263
U
University of Washington
Scholars:
8.0W
Papers: 7.0W
Citations: 12.5W