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Dynamic nuclear envelope phenotype in rats overexpressing mutated human torsinA protein

机译:过表达突变型人TorsAA蛋白的大鼠动态核包膜表型

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A three-base-pair deletion in the humanTOR1Agene is causative for the most common form of primary dystonia: the early-onset dystonia type 1 (DYT1 dystonia). The pathophysiological consequences of this mutation are still unknown. To study the pathology of the mutant torsinA (TOR1A) protein, we have generated a transgenic rat line that overexpresses the human mutant protein under the control of the humanTOR1Apromoter. This new animal model was phenotyped with several approaches, including behavioral tests and neuropathological analyses. Motor phenotype, cellular and ultrastructural key features of torsinA pathology were found in this new transgenic rat line, supporting that it can be used as a model system for investigating the disease’s development. Analyses of mutant TOR1A protein expression in various brain regions also showed a dynamic expression pattern and a reversible nuclear envelope pathology. These findings suggest the differential vulnerabilities of distinct neuronal subpopulations. Furthermore, the reversibility of the nuclear envelope pathology might be a therapeutic target to treat the disease.
机译:humanTOR1A基因中的三碱基对缺失是导致原发性肌张力障碍最常见形式的原因:早期发作的1型肌张力障碍(DYT1肌张力障碍)。这种突变的病理生理后果仍然未知。为了研究torsinA突变蛋白(TOR1A)的病理学,我们产生了在humanTOR1A启动子控制下过表达人突变蛋白的转基因大鼠品系。用几种方法对这种新的动物模型进行表型分析,包括行为测试和神经病理学分析。在这种新的转基因大鼠品系中发现了torsinA病理学的运动表型,细胞和超微结构的关键特征,支持将其用作研究疾病发展的模型系统。突变的TOR1A蛋白在大脑各个区域的表达分析也显示出动态表达模式和可逆的核包膜病理。这些发现表明不同神经元亚群的差异性脆弱性。此外,核被膜病理学的可逆性可能是治疗该疾病的治疗目标。

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