Molecular diagnosis of congenital muscular dystrophies with defective glycosylation of alpha-dystroglycan using next-generation sequencing technology

被引:11
|
作者
Lim, Byung Chan [1 ]
Lee, Seungbok [2 ,3 ]
Shin, Jong-Yeon [2 ]
Hwang, Hee [1 ]
Kim, Ki Joong [1 ]
Hwang, Yong Seung [1 ]
Seo, Jeong-Sun [2 ,3 ,4 ,6 ]
Kim, Jong-Il [2 ,3 ,5 ,6 ]
Chae, Jong Hee [1 ]
机构
[1] Seoul Natl Univ, Childrens Hosp, Coll Med, Dept Pediat, Seoul 110799, South Korea
[2] Seoul Natl Univ, Med Res Ctr, GMI, Seoul 110799, South Korea
[3] Seoul Natl Univ, Grad Sch, Dept Biomed Sci, Seoul 110799, South Korea
[4] Macrogen Inc, Seoul 153023, South Korea
[5] Psoma Therapeut Inc, Seoul 110799, South Korea
[6] Seoul Natl Univ, Coll Med, Dept Biochem & Mol Biol, Seoul 110799, South Korea
关键词
Targeted resequencing; Congenital muscular dystrophy; Alpha-dystroglycan; WALKER-WARBURG-SYNDROME; MUTATIONS; ENRICHMENT; GENE; VARIANTS; DISEASE;
D O I
10.1016/j.nmd.2013.01.007
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Targeted resequencing using next-generation sequencing technology is being rapidly applied to the molecular diagnosis of human genetic diseases. The group of muscular dystrophies may be an appropriate candidate for this approach because these diseases exhibit genotype-phenotype heterogeneity. To perform a proof-of-concept study, we selected four patients with congenital muscular dystrophies with defective glycosylation of alpha-dystroglycan. A custom-solution-based target enrichment kit was designed to capture whole-genic regions of the 26 muscular-dystrophy-related genes, including six genes implicated in alpha-dystroglycanopathies. Although approximately 95% of both coding and noncoding regions were covered with at least 15-read depth, parts of the coding exons of FKRP and POMT2 were insufficiently covered. Homozygous and compound heterozygous POMGnT1 mutations were found in two patients. Two novel noncoding variants of FKTN were identified in one patient who had a retrotransposon insertion. mutation of FKTN in only one allele. The current targeted resequencing strategy yielded promising results for the extension of this method to other muscular dystrophies. As suboptimal coverage in a small subset of coding regions may affect the sensitivity of the method, complementary Sanger sequencing may be required. (c) 2013 Published by Elsevier B.V.
引用
收藏
页码:337 / 344
页数:8
相关论文
共 50 条
  • [21] Primary Immunodeficiencies in India: Molecular Diagnosis and the Role of Next-Generation Sequencing
    Arunachalam, Arun Kumar
    Maddali, Madhavi
    Aboobacker, Fouzia N.
    Korula, Anu
    George, Biju
    Mathews, Vikram
    Edison, Eunice Sindhuvi
    JOURNAL OF CLINICAL IMMUNOLOGY, 2021, 41 (02) : 393 - 413
  • [22] Next-generation sequencing-based molecular diagnosis of neonatal hypotonia in Chinese Population
    Wang, Yan
    Peng, Wei
    Guo, Hong-Yan
    Li, Hui
    Tian, Jie
    Shi, Yu-Jing
    Yang, Xiao
    Yang, Yao
    Zhang, Wan-Qiao
    Liu, Xin
    Liu, Guan-Nan
    Deng, Tao
    Sun, Yi-Min
    Xing, Wan-li
    Cheng, Jing
    Feng, Zhi-Chun
    SCIENTIFIC REPORTS, 2016, 6
  • [23] Flexi-Myo Panel Strategy: Genomic Diagnoses of Myopathies and Muscular Dystrophies by Next-Generation Sequencing
    Lee, Han-Chih Hencher
    Lau, Wai-Ling
    Ko, Chun-Hung
    Lee, Kam-Cheong
    Cheng, Fung-Yip
    Wong, Shun
    Woo, Yip-Hin
    Mak, Chloe Miu
    GENETIC TESTING AND MOLECULAR BIOMARKERS, 2020, 24 (02) : 99 - 104
  • [24] Accuracy of Next-Generation Sequencing for Molecular Diagnosis in Patients With Infantile Nystagmus Syndrome
    Rim, John Hoon
    Lee, Seung-Tae
    Gee, Heon Yung
    Lee, Byung Joo
    Choi, Jong Rak
    Park, Hye Won
    Han, Sueng-Han
    Han, Jinu
    JAMA OPHTHALMOLOGY, 2017, 135 (12) : 1376 - 1385
  • [25] Genetic diagnosis of Duchenne and Becker muscular dystrophy using next-generation sequencing technology: comprehensive mutational search in a single platform
    Lim, Byung Chan
    Lee, Seungbok
    Shin, Jong-Yeon
    Kim, Jong-Il
    Hwang, Hee
    Kim, Ki Joong
    Hwang, Yong Seung
    Seo, Jeong-Sun
    Chae, Jong Hee
    JOURNAL OF MEDICAL GENETICS, 2011, 48 (11) : 731 - 736
  • [26] Next-generation sequencing using a pre-designed gene panel for the molecular diagnosis of congenital disorders in pediatric patients
    Lim, Eileen C. P.
    Brett, Maggie
    Lai, Angeline H. M.
    Lee, Siew-Peng
    Tan, Ee-Shien
    Jamuar, Saumya S.
    Ng, Ivy S. L.
    Tan, Ene-Choo
    HUMAN GENOMICS, 2015, 9
  • [27] Next-generation sequencing using microfluidic PCR enrichment for molecular autopsy
    Raju, Hariharan
    Ware, James S.
    Skinner, Jonathan R.
    Hedley, Paula L.
    Arno, Gavin
    Love, Donald R.
    van der Werf, Christian
    Tfelt-Hansen, Jacob
    Winkel, Bo Gregers
    Cohen, Marta C.
    Li, Xinzhong
    John, Shibu
    Sharma, Sanjay
    Jeffery, Steve
    Wilde, Arthur A. M.
    Christiansen, Michael
    Sheppard, Mary N.
    Behr, Elijah R.
    BMC CARDIOVASCULAR DISORDERS, 2019, 19 (1)
  • [28] Molecular diagnosis of thrombocytopenia- absent radius syndrome using next-generation sequencing
    Nicchia, E.
    Giordano, P.
    Greco, C.
    De Rocco, D.
    Savoia, A.
    INTERNATIONAL JOURNAL OF LABORATORY HEMATOLOGY, 2016, 38 (04) : 412 - 418
  • [29] Molecular Diagnosis of Neonatal Diabetes Mellitus Using Next-Generation Sequencing of the Whole Exome
    Bonnefond, Amelie
    Durand, Emmanuelle
    Sand, Olivier
    De Graeve, Franck
    Gallina, Sophie
    Busiah, Kanetee
    Lobbens, Stephane
    Simon, Albane
    Bellanne-Chantelot, Christine
    Letourneau, Louis
    Scharfmann, Raphael
    Delplanque, Jerome
    Sladek, Robert
    Polak, Michel
    Vaxillaire, Martine
    Froguel, Philippe
    PLOS ONE, 2010, 5 (10):
  • [30] Prenatal diagnosis of Gaucher disease using next-generation sequencing
    Yoshida, Shinichiro
    Kido, Jun
    Matsumoto, Shirou
    Momosaki, Ken
    Mitsubuchi, Hiroshi
    Shimazu, Tomoyuki
    Sugawara, Keishin
    Endo, Fumio
    Nakamura, Kimitoshi
    PEDIATRICS INTERNATIONAL, 2016, 58 (09) : 946 - 949