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首页> 外文期刊>Nature medicine >Dystrophin expression in muscle stem cells regulates their polarity and asymmetric division.
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Dystrophin expression in muscle stem cells regulates their polarity and asymmetric division.

机译:肌干细胞中肌营养不良蛋白的表达调节其极性和不对称分裂。

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Dystrophin is expressed in differentiated myofibers, in which it is required for sarcolemmal integrity, and loss-of-function mutations in the gene that encodes it result in Duchenne muscular dystrophy (DMD), a disease characterized by progressive and severe skeletal muscle degeneration. Here we found that dystrophin is also highly expressed in activated muscle stem cells (also known as satellite cells), in which it associates with the serine-threonine kinase Mark2 (also known as Par1b), an important regulator of cell polarity. In the absence of dystrophin, expression of Mark2 protein is downregulated, resulting in the inability to localize the cell polarity regulator Pard3 to the opposite side of the cell. Consequently, the number of asymmetric divisions is strikingly reduced in dystrophin-deficient satellite cells, which also display a loss of polarity, abnormal division patterns (including centrosome amplification), impaired mitotic spindle orientation and prolonged cell divisions. Altogether, these intrinsic defects strongly reduce the generation of myogenic progenitors that are needed for proper muscle regeneration. Therefore, we conclude that dystrophin has an essential role in the regulation of satellite cell polarity and asymmetric division. Our findings indicate that muscle wasting in DMD not only is caused by myofiber fragility, but also is exacerbated by impaired regeneration owing to intrinsic satellite cell dysfunction.
机译:肌营养不良蛋白在分化的肌纤维中表达,肌纤维蛋白是肌膜完整性所必需的,而编码肌营养不良蛋白的基因中的功能丧失突变导致杜氏肌营养不良症(DMD),该疾病的特征是进行性和严重的骨骼肌变性。在这里,我们发现肌营养不良蛋白在活化的肌肉干细胞(也称为卫星细胞)中也高度表达,在其中它与丝氨酸-苏氨酸激酶Mark2(也称为Par1b)缔合,后者是细胞极性的重要调节剂。在缺乏肌营养不良蛋白的情况下,Mark2蛋白的表达被下调,导致无法将细胞极性调节剂Pard3定位在细胞的相对侧。因此,在肌营养不良蛋白缺陷的卫星细胞中非对称分裂的数目显着减少,这也显示出极性丧失,异常的分裂模式(包括中心体扩增),有丝分裂纺锤体定向受损和延长的细胞分裂。总而言之,这些固有缺陷极大地减少了适当的肌肉再生所需的成肌祖细胞的生成。因此,我们得出结论,肌营养不良蛋白在调节卫星细胞极性和不对称分裂中起着至关重要的作用。我们的发现表明,DMD中的肌肉浪费不仅是由于肌纤维的脆性引起的,而且由于固有的卫星细胞功能障碍而导致的再生障碍也加剧了肌肉的浪费。

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