Exome Sequencing Identifies De Novo DYNC1H1 Mutations Associated With Distal Spinal Muscular Atrophy and Malformations of Cortical Development

被引:8
|
作者
Chen, Yulin [1 ]
Xu, Yufei [1 ]
Li, Guoqiang [1 ]
Li, Niu [1 ]
Yu, Tingting [1 ]
Yao, Ru-en [1 ]
Wang, Xiumin [1 ]
Shen, Yiping [1 ,2 ]
Wang, Jian [1 ]
机构
[1] Shanghai Jiao Tong Univ, Shanghai Childrens Med Ctr, Sch Med, Inst Pediat Translat Med, 1678 Dongfang Rd, Shanghai 200127, Peoples R China
[2] Boston Childrens Hosp, Dept Lab Med, Boston, MA USA
基金
中国国家自然科学基金;
关键词
spinal muscular atrophy with lower extremity predominance; malformations of cortical development; exome sequencing; DYNC1H1; cytoplasmic dynein; LOWER-EXTREMITY PREDOMINANCE; CYTOPLASMIC DYNEIN; TRANSPORT; DEFECTS; CORTEX; DOMAIN; GENE;
D O I
10.1177/0883073816683083
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Exome sequencing has become a formidable tool for identifying potential de novo variants in causative genes of human diseases, such as neurodegenera tive disorders. This article describes a 16-month-old girl with spinal muscular atrophy with lower extremity predominance and a 13-month-old girl with malformations of cortical development. Exome sequencing identified a novel de novo heterozygous missense mutation c.3395G>A (p.Gly1132Glu) and a previously reported de novo heterozygous missense mutation c.10151G>A (p.Arg3384Gln) in the DYNC1H1 gene. Bioinformati cs predictions for c.3395G>A and c.10151G>A indicated pathogenicity of the mutations. DYNC1H1 is a pivotal component of cytoplasmic dynein complex, which is a microtubule-related motor involved in retrograde transport. Previous studies indicated that mutant dynein showed decreased run-length of the motor proteins and diminished retrograde transport, which were clearly associated with neuronal death and neurologic diseases. The present findings expand the mutational spectrum of the DYNC1H1 gene, reemphasizing the significance of the DYNC1H1 protein in the functioning of neurons.
引用
收藏
页码:379 / 386
页数:8
相关论文
共 50 条
  • [41] Muscle and bone characteristics of a Chinese family with spinal muscular atrophy, lower extremity predominant 1 (SMALED1) caused by a novel missense DYNC1H1 mutation
    Yazhao Mei
    Yunyi Jiang
    Zhenlin Zhang
    Hao Zhang
    BMC Medical Genomics, 16
  • [42] Muscle and bone characteristics of a Chinese family with spinal muscular atrophy, lower extremity predominant 1 (SMALED1) caused by a novel missense DYNC1H1 mutation
    Mei, Yazhao
    Jiang, Yunyi
    Zhang, Zhenlin
    Zhang, Hao
    BMC MEDICAL GENOMICS, 2023, 16 (01)
  • [43] SPINAL MUSCLE ATROPHY WITH LOWER EXTREMITY PREDOMINANCE (SMA-LED) ASSOCIATED TO A NOVEL DYNC1H1 MUTATION: THE RELEVANCE OF MUSCLE MRI
    Guimaraes-Costa, R.
    Boespflug-Tanguy, O.
    Latour, P.
    Stojkovic, T.
    JOURNAL OF THE PERIPHERAL NERVOUS SYSTEM, 2016, 21 (03) : 263 - 263
  • [44] Whole Exome Sequencing Identifies De Novo Heterozygous CAV1 Mutations Associated with a Novel Neonatal Onset Lipodystrophy Syndrome
    Garg, Abhimanyu
    Kircher, Martin
    del Campo, Miguel
    Amato, R. Stephen
    Agarwal, Anil K.
    AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2015, 167 (08) : 1796 - 1806
  • [45] Mutations in TUBG1, DYNC1H1, KIF5C and KIF2A cause malformations of cortical development and microcephaly (vol 45, pg 639, 2013)
    Poirier, Karine
    Lebrun, Nicolas
    Broix, Loic
    Tian, Guoling
    Saillour, Yoann
    Boscheron, Cecile
    Parrini, Elena
    Valence, Stephanie
    Saint Pierre, Benjamin
    Oger, Madison
    Lacombe, Didier
    Genevieve, David
    Fontana, Elena
    Darra, Franscesca
    Cances, Claude
    Barth, Magalie
    Bonneau, Dominique
    Bernadina, Bernardo Dalla
    N'Guyen, Sylvie
    Gitiaux, Cyril
    Parent, Philippe
    Portes, Vincent des
    Pedespan, Jean Michel
    Legrez, Victoire
    Castelnau-Ptakine, Laetitia
    Nitschke, Patrick
    Hieu, Thierry
    Masson, Cecile
    Zelenika, Diana
    Andrieux, Annie
    Francis, Fiona
    Guerrini, Renzo
    Cowan, Nicholas J.
    Bahi-Buisson, Nadia
    Chelly, Jamel
    NATURE GENETICS, 2013, 45 (08) : 962 - 962
  • [46] A de novo loss-of-function DYNC1H1 mutation in a patient with parkinsonian features and a favourable response to levodopa
    Szczaluba, K.
    Szymanska, K.
    Rydzanicz, M.
    Ciara, E.
    Walczak, A.
    Piekutowska-Abramczuk, D.
    Kosinska, J.
    Jacoszek, A.
    Czerska, K.
    Biernacka, A.
    Laure-Kamionowska, M.
    Gasperowicz, P.
    Pronicka, E.
    Ploski, R.
    CLINICAL GENETICS, 2018, 93 (05) : 1107 - 1108
  • [47] Lissencephaly with dysgenesis of the corpus callosum and congenital cataract due to a novel de novo variant of the DYNC1H1 gene
    Zich, Mikulas
    Seeman, Pavel
    Cerna, Sarka
    Cibulkova, Petra
    Kaduchova, Valentyna
    Lastuvkova, Jana
    EUROPEAN JOURNAL OF HUMAN GENETICS, 2024, 32 : 1550 - 1551
  • [48] Whole exome sequencing identifies de novo mutations in GATA6 associated with congenital diaphragmatic hernia
    Yu, Lan
    Bennett, James T.
    Wynn, Julia
    Carvill, Gemma L.
    Cheung, Yee Him
    Shen, Yufeng
    Mychaliska, George B.
    Azarow, Kenneth S.
    Crombleholme, Timothy M.
    Chung, Dai H.
    Potoka, Douglas
    Warner, Brad W.
    Bucher, Brian
    Lim, Foong-Yen
    Pietsch, John
    Stolar, Charles
    Aspelund, Gudrun
    Arkovitz, Marc S.
    Mefford, Heather
    Chung, Wendy K.
    JOURNAL OF MEDICAL GENETICS, 2014, 51 (03) : 197 - 202
  • [49] DYNC1H1 mutations associated with neurological diseases compromise processivity of dynein-dynactin-cargo adaptor complexes
    Hoang, Ha Thi
    Schlager, Max A.
    Carter, Andrew P.
    Bullock, Simon L.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (09) : E1597 - E1606
  • [50] Loss of Dnah5 Downregulates Dync1h1 Expression, Causing Cortical Development Disorders and Congenital Hydrocephalus
    Sakamoto, Koichiro
    Miyajima, Masakazu
    Nakajima, Madoka
    Ogino, Ikuko
    Horikoshi, Kou
    Miyahara, Ryo
    Kawamura, Kaito
    Karagiozov, Kostadin
    Kamohara, Chihiro
    Nakamura, Eri
    Tada, Nobuhiro
    Kondo, Akihide
    CELLS, 2024, 13 (22)