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Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy

BACKGROUND: Skeletal ciliopathies are a group of clinically and genetically heterogeneous disorders with the spectrum of severity spanning from relatively mild to prenatally lethal. The aim of our study was to identify pathogenic mutations in a Chinese family with two siblings presenting a Short‐rib...

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Autores principales: Zhang, Xinyue, You, Yanqin, Xie, Xiaoxiao, Xu, Hong, Zhou, Honghui, Lei, Yuanmei, Sun, Pei, Meng, Yuanguang, Wang, Longxia, Lu, Yanping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7767551/
https://www.ncbi.nlm.nih.gov/pubmed/33030252
http://dx.doi.org/10.1002/mgg3.1524
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author Zhang, Xinyue
You, Yanqin
Xie, Xiaoxiao
Xu, Hong
Zhou, Honghui
Lei, Yuanmei
Sun, Pei
Meng, Yuanguang
Wang, Longxia
Lu, Yanping
author_facet Zhang, Xinyue
You, Yanqin
Xie, Xiaoxiao
Xu, Hong
Zhou, Honghui
Lei, Yuanmei
Sun, Pei
Meng, Yuanguang
Wang, Longxia
Lu, Yanping
author_sort Zhang, Xinyue
collection PubMed
description BACKGROUND: Skeletal ciliopathies are a group of clinically and genetically heterogeneous disorders with the spectrum of severity spanning from relatively mild to prenatally lethal. The aim of our study was to identify pathogenic mutations in a Chinese family with two siblings presenting a Short‐rib polydactyly syndrome (SRPS)‐like phenotype. METHOD: Karyotyping and NGS‐based CNVseq were performed. Obtaining the negative results in karyotyping and CNVseq, whole‐exome sequencing (WES) using genomic DNA (gDNA) extracted from the umbilical cord blood of the first fetus was carried out, followed by bioinformation analysis. The candidate pathogenic variants were confirmed by Sanger sequencing in the family. RESULTS: No chromosomal abnormalities and pathogenic copy number variations (CNVs) were detected in the affected fetus with SRPS‐like phenotype. WES analysis identified two novel compound heterozygous variants in DYNC2LI1, c.358G>T (p.Pro120Ser; NM_001193464), and c.928A>T (p.Lys310Ter; NM_ 001193464). Bioinformatics analysis suggested that c.358G>T (p.Pro120Ser) was likely pathogenic and c.928A>T (p.Lys310Ter) was pathogenic. Sanger sequencing of the two variants in family reveal that c.358G>T was from paternal origin and c.928A>T was from maternal origin, and the second affected fetus had the same compound heterozygous variants in DYNC2LI1. Definitive diagnosis of short‐rib thoracic dysplasia 15 with polydactyly (SRTD15) was made in the family. CONCLUSION: Our results expand the mutational spectrum of DYNC2LI1 in severe skeletal ciliopathies. WES facilitates the accurate prenatal diagnosis of fetal skeletal ciliopathy, and provides helpful information for genetic counseling.
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spelling pubmed-77675512020-12-28 Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy Zhang, Xinyue You, Yanqin Xie, Xiaoxiao Xu, Hong Zhou, Honghui Lei, Yuanmei Sun, Pei Meng, Yuanguang Wang, Longxia Lu, Yanping Mol Genet Genomic Med Original Articles BACKGROUND: Skeletal ciliopathies are a group of clinically and genetically heterogeneous disorders with the spectrum of severity spanning from relatively mild to prenatally lethal. The aim of our study was to identify pathogenic mutations in a Chinese family with two siblings presenting a Short‐rib polydactyly syndrome (SRPS)‐like phenotype. METHOD: Karyotyping and NGS‐based CNVseq were performed. Obtaining the negative results in karyotyping and CNVseq, whole‐exome sequencing (WES) using genomic DNA (gDNA) extracted from the umbilical cord blood of the first fetus was carried out, followed by bioinformation analysis. The candidate pathogenic variants were confirmed by Sanger sequencing in the family. RESULTS: No chromosomal abnormalities and pathogenic copy number variations (CNVs) were detected in the affected fetus with SRPS‐like phenotype. WES analysis identified two novel compound heterozygous variants in DYNC2LI1, c.358G>T (p.Pro120Ser; NM_001193464), and c.928A>T (p.Lys310Ter; NM_ 001193464). Bioinformatics analysis suggested that c.358G>T (p.Pro120Ser) was likely pathogenic and c.928A>T (p.Lys310Ter) was pathogenic. Sanger sequencing of the two variants in family reveal that c.358G>T was from paternal origin and c.928A>T was from maternal origin, and the second affected fetus had the same compound heterozygous variants in DYNC2LI1. Definitive diagnosis of short‐rib thoracic dysplasia 15 with polydactyly (SRTD15) was made in the family. CONCLUSION: Our results expand the mutational spectrum of DYNC2LI1 in severe skeletal ciliopathies. WES facilitates the accurate prenatal diagnosis of fetal skeletal ciliopathy, and provides helpful information for genetic counseling. John Wiley and Sons Inc. 2020-10-08 /pmc/articles/PMC7767551/ /pubmed/33030252 http://dx.doi.org/10.1002/mgg3.1524 Text en © 2020 The Authors. Molecular Genetics & Genomic Medicine published by Wiley Periodicals LLC. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Original Articles
Zhang, Xinyue
You, Yanqin
Xie, Xiaoxiao
Xu, Hong
Zhou, Honghui
Lei, Yuanmei
Sun, Pei
Meng, Yuanguang
Wang, Longxia
Lu, Yanping
Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title_full Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title_fullStr Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title_full_unstemmed Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title_short Whole‐exome sequencing identified two novel mutations of DYNC2LI1 in fetal skeletal ciliopathy
title_sort whole‐exome sequencing identified two novel mutations of dync2li1 in fetal skeletal ciliopathy
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7767551/
https://www.ncbi.nlm.nih.gov/pubmed/33030252
http://dx.doi.org/10.1002/mgg3.1524
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