Mutations in the tail domain of DYNC1H1 cause dominant spinal muscular atrophy

被引:168
作者
Harms, M. B. [1 ]
Ori-McKenney, K. M. [2 ]
Scoto, M. [3 ]
Tuck, E. P. [1 ]
Bell, S. [1 ]
Ma, D. [1 ]
Masi, S. [1 ]
Allred, P. [1 ]
Al-Lozi, M. [1 ]
Reilly, M. M. [4 ]
Miller, L. J. [5 ]
Jani-Acsadi, A. [5 ]
Pestronk, A. [1 ]
Shy, M. E. [5 ]
Muntoni, F. [3 ]
Vallee, R. B. [2 ]
Baloh, R. H. [1 ]
机构
[1] Washington Univ, Sch Med, Dept Neurol, Hope Ctr Neurol Dis, St Louis, MO 63110 USA
[2] Columbia Univ, Dept Pathol & Cell Biol, New York, NY USA
[3] UCL Inst Child Hlth, Dubowitz Neuromuscular Ctr, London, England
[4] UCL Inst Neurol, MRC Ctr Neuromuscular Dis, London, England
[5] Wayne State Univ, Dept Neurol, Detroit, MI USA
关键词
AMYOTROPHIC-LATERAL-SCLEROSIS; MARIE-TOOTH DISEASE; MOUSE MODEL; DYNEIN; MOTOR; TRPV4; DISORDERS; TRANSPORT; DEFECTS; GENE;
D O I
10.1212/WNL.0b013e3182556c05
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Objective: To identify the gene responsible for 14q32-linked dominant spinal muscular atrophy with lower extremity predominance (SMA-LED, OMIM 158600). Methods: Target exon capture and next generation sequencing was used to analyze the 73 genes in the 14q32 linkage interval in 3 SMA-LED family members. Candidate gene sequencing in additional dominant SMA families used PCR and pooled target capture methods. Patient fibroblasts were biochemically analyzed. Results: Regional exome sequencing of all candidate genes in the 14q32 interval in the original SMA-LED family identified only one missense mutation that segregated with disease state-a mutation in the tail domain of DYNC1H1 (I584L). Sequencing of DYNC1H1 in 32 additional probands with lower extremity predominant SMA found 2 additional heterozygous tail domain mutations (K671E and Y970C), confirming that multiple different mutations in the same domain can cause a similar phenotype. Biochemical analysis of dynein purified from patient-derived fibroblasts demonstrated that the I584L mutation dominantly disrupted dynein complex stability and function. Conclusions: We demonstrate that mutations in the tail domain of the heavy chain of cytoplasmic dynein (DYNC1H1) cause spinal muscular atrophy and provide experimental evidence that a human DYNC1H1 mutation disrupts dynein complex assembly and function. DYNC1H1 mutations were recently found in a family with Charcot-Marie-Tooth disease (type 20) and in a child with mental retardation. Both of these phenotypes show partial overlap with the spinal muscular atrophy patients described here, indicating that dynein dysfunction is associated with a range of phenotypes in humans involving neuronal development and maintenance. Neurology (R) 2012;78:1714-1720
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收藏
页码:1714 / 1720
页数:7
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