Genetics and Genome Biology Program, The Hospital for Sick Children, Toronto, Canada.
Division of Neurology, The Hospital for Sick Children, Toronto, Canada.
Hum Mol Genet. 2019 Dec 15;28(24):4186-4196. doi: 10.1093/hmg/ddz260.
Dynamin 2 (DNM2) encodes a ubiquitously expressed large GTPase with membrane fission capabilities that participates in the endocytosis of clathrin-coated vesicles. Heterozygous mutations in DNM2 are associated with two distinct neuromuscular disorders, Charcot-Marie-Tooth disease (CMT) and autosomal dominant centronuclear myopathy (CNM). Despite extensive investigations in cell culture, the role of dynamin 2 in normal muscle development is poorly understood and the consequences of DNM2 mutations at the molecular level in vivo are not known. To address these gaps in knowledge, we developed transgenic zebrafish expressing either wild-type dynamin 2 or dynamin 2 with either a CNM or CMT mutation. Taking advantage of the live imaging capabilities of the zebrafish embryo, we establish the localization of wild-type and mutant dynamin 2 in vivo, showing for the first time distinctive dynamin 2 subcellular compartments. Additionally, we demonstrate that CNM-related DNM2 mutations are associated with protein mislocalization and aggregation. Lastly, we define core phenotypes associated with our transgenic mutant fish, including impaired motor function and altered muscle ultrastructure, making them the ideal platform for drug screening. Overall, using the power of the zebrafish, we establish novel insights into dynamin 2 localization and dynamics and provide the necessary groundwork for future studies examining dynamin 2 pathomechanisms and therapy development.
动力蛋白 2 (DNM2) 编码一种广泛表达的具有膜分裂能力的大型 GTPase,参与网格蛋白包被小泡的内吞作用。DNM2 的杂合突变与两种不同的神经肌肉疾病有关,即 Charcot-Marie-Tooth 病 (CMT) 和常染色体显性中轴核肌病 (CNM)。尽管在细胞培养中进行了广泛的研究,但动力蛋白 2 在正常肌肉发育中的作用仍知之甚少,也不知道 DNM2 突变在体内的分子水平上的后果。为了解决这些知识空白,我们开发了表达野生型动力蛋白 2 或具有 CNM 或 CMT 突变的动力蛋白 2 的转基因斑马鱼。利用斑马鱼胚胎的活体成像能力,我们确定了野生型和突变型动力蛋白 2 在体内的定位,这是首次显示出独特的动力蛋白 2 亚细胞区室。此外,我们证明了与 CNM 相关的 DNM2 突变与蛋白质定位和聚集异常有关。最后,我们定义了与我们的转基因突变鱼相关的核心表型,包括运动功能受损和肌肉超微结构改变,使它们成为药物筛选的理想平台。总的来说,我们利用斑马鱼的力量,对动力蛋白 2 的定位和动力学有了新的认识,并为未来研究动力蛋白 2 的病理机制和治疗方法的发展奠定了必要的基础。