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斑马鱼中桥连整合因子1(Bin1)缺乏会导致中央核性肌病。

Bridging integrator 1 (Bin1) deficiency in zebrafish results in centronuclear myopathy.

作者信息

Smith Laura L, Gupta Vandana A, Beggs Alan H

机构信息

Division of Genetics and Genomics, The Manton Center for Orphan Disease Research, Boston Children's Hospital, Harvard Medical School, Boston, MA 02115, USA.

Division of Genetics and Genomics, The Manton Center for Orphan Disease Research, Boston Children's Hospital, Harvard Medical School, Boston, MA 02115, USA

出版信息

Hum Mol Genet. 2014 Jul 1;23(13):3566-78. doi: 10.1093/hmg/ddu067. Epub 2014 Feb 18.

Abstract

Autosomal recessive centronuclear myopathy (CNM2), caused by mutations in bridging integrator 1 (BIN1), is a mildly progressive neuromuscular disorder characterized by abnormally centralized myonuclei and muscle weakness. BIN1 is important for membrane sensing and remodeling in vitro in different cell types. However, to fully understand the biological roles of BIN1 in vivo and to answer critical questions concerning the muscle-specific function of BIN1 in vertebrates, robust small animal models are required. In this study, we create and characterize a novel zebrafish model of CNM2 using antisense morpholinos. Immunofluorescence and histopathological analyses of Bin1-deficient zebrafish skeletal muscle reveal structural defects commonly reported in human CNM2 biopsies. Live imaging of zebrafish embryos shows defective calcium release in bin1 morphants, linking the presence of abnormal triads to impairments in intracellular signaling. RNA-mediated rescue assays demonstrate that knockdown of zebrafish bin1 can reliably examine the pathogenicity of novel BIN1 mutations in vivo. Finally, our results strongly suggest that the phosphoinositide-binding domain of BIN1, present only in skeletal muscle isoforms, may be more critical for muscle maturation and maintenance than for early muscle development. Overall, our data support that BIN1 plays an important role in membrane tubulation and may promote skeletal muscle weakness in CNM2 by disrupting machinery necessary for excitation-contraction coupling in vertebrate organisms. The reproducible phenotype of Bin1-deficient zebrafish, together with the generalized advantages of the teleost system, makes this model readily adaptable to high-throughput screening strategies and may be used to identify therapies for CNM2 and related neuromuscular diseases.

摘要

常染色体隐性中央核肌病(CNM2)由桥连整合器1(BIN1)突变引起,是一种轻度进行性神经肌肉疾病,其特征为肌核异常集中和肌肉无力。BIN1在体外对不同细胞类型的膜感知和重塑很重要。然而,为了全面了解BIN1在体内的生物学作用,并回答有关BIN1在脊椎动物中肌肉特异性功能的关键问题,需要强大的小动物模型。在本研究中,我们使用反义吗啉代寡核苷酸创建并表征了一种新型的CNM2斑马鱼模型。对Bin1缺陷型斑马鱼骨骼肌进行免疫荧光和组织病理学分析,揭示了人类CNM2活检中常见的结构缺陷。斑马鱼胚胎的实时成像显示bin1 morphants中钙释放存在缺陷,将异常三联体的存在与细胞内信号传导受损联系起来。RNA介导的拯救试验表明,敲低斑马鱼bin1可以可靠地检测体内新型BIN1突变的致病性。最后,我们的结果强烈表明,仅存在于骨骼肌亚型中的BIN1的磷酸肌醇结合结构域,对肌肉成熟和维持可能比对早期肌肉发育更为关键。总体而言,我们的数据支持BIN1在膜微管形成中起重要作用,并可能通过破坏脊椎动物机体中兴奋-收缩偶联所需的机制,促进CNM2中的骨骼肌无力。Bin1缺陷型斑马鱼可重复的表型,以及硬骨鱼系统的普遍优势,使该模型易于适应高通量筛选策略,并可用于识别CNM2和相关神经肌肉疾病的治疗方法。

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