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Muscular Dystrophy Mutations Impair the Nuclear Envelope Emerin Self-assembly Properties

机译:肌营养不良突变损害核信封Emerin自组装属性。

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摘要

More than 100 genetic mutations causing X-linked Emery–Dreifuss muscular dystrophy have been identified in the gene encoding the integral inner nuclear membrane protein emerin. Most mutations are nonsense or frameshift mutations that lead to the absence of emerin in cells. Only very few cases are due to missense or short in-frame deletions. Molecular mechanisms explaining the corresponding emerin variants’ loss of function are particularly difficult to identify because of the mostly intrinsically disordered state of the emerin nucleoplasmic region. We now demonstrate that this EmN region can be produced as a disordered monomer, as revealed by nuclear magnetic resonance, but rapidly self-assembles in vitro. Increases in concentration and temperature favor the formation of long curvilinear filaments with diameters of approximately 10 nm, as observed by electron microscopy. Assembly of these filaments can be followed by fluorescence through Thioflavin-T binding and by Fourier-transform Infrared spectrometry through formation of β-structures. Analysis of the assembly properties of five EmN variants reveals that del95–99 and Q133H impact filament assembly capacities. In cells, these variants are located at the nuclear envelope, but the corresponding quantities of emerin–emerin and emerin–lamin proximities are decreased compared to wild-type protein. Furthermore, variant P183H favors EmN aggregation in vitro, and variant P183T provokes emerin accumulation in cytoplasmic foci in cells. Substitution of residue Pro183 might systematically favor oligomerization, leading to emerin aggregation and mislocalization in cells. Our results suggest that emerin self-assembly is necessary for its proper function and that a loss of either the protein itself or its ability to self-assemble causes muscular dystrophy.
机译:在编码完整的内核膜蛋白emerin的基因中,已经鉴定出100多种引起X连锁Emery–Dreifuss肌营养不良的基因突变。大多数突变是无意义或移码突变,会导致细胞中缺乏Emerin。只有极少数情况是由于错义或短帧内删除。由于Emerin核质区的内在状态极为混乱,因此很难解释解释相应Emerin变体功能丧失的分子机制。现在我们证明,该EmN区可以作为无序单体产生,如核磁共振所揭示的那样,但在体外迅速自组装。通过电子显微镜观察,浓度和温度的增加有利于形成直径约10 nm的长曲线细丝。这些灯丝的组装可以通过硫黄素-T结合产生荧光,通过形成β结构的傅里叶变换红外光谱来进行。对五个EmN变体的装配特性进行分析后发现,del95-99和Q133H会影响灯丝的装配能力。在细胞中,这些变体位于核被膜处,但与野生型蛋白相比,相应的Emerin-emerin和Emerin-lamin邻近度降低了。此外,变体P183H在体外有利于EmN聚集,而变体P183T引起细胞中细胞质灶中的emerin积聚。残基Pro183的取代可能系统地促进寡聚,导致Emerin聚集和细胞中的错误定位。我们的结果表明,Emerin自组装是其正常功能所必需的,蛋白质本身或其自组装能力的丧失会导致肌营养不良。

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