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首页> 外文期刊>Molecular biology of the cell >Brain-derived Neurotrophic Factor Regulates Satellite Cell Differentiation and Skeltal Muscle Regeneration
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Brain-derived Neurotrophic Factor Regulates Satellite Cell Differentiation and Skeltal Muscle Regeneration

机译:脑源性神经营养因子调节卫星细胞分化和骨骼肌再生。

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摘要

In adult skeletal muscle, brain-derived neurotrophic factor (BDNF) is expressed in myogenic progenitors known as satellite cells. To functionally address the role of BDNF in muscle satellite cells and regeneration in vivo, we generated a mouse in which BDNF is specifically depleted from skeletal muscle cells. For comparative purposes, and to determine the specific role of muscle-derived BDNF, we also examined muscles of the complete BDNF?/? mouse. In both models, expression of the satellite cell marker Pax7 was significantly decreased. Furthermore, proliferation and differentiation of primary myoblasts was abnormal, exhibiting delayed induction of several markers of differentiation as well as decreased myotube size. Treatment with exogenous BDNF protein was sufficient to rescue normal gene expression and myotube size. Because satellite cells are responsible for postnatal growth and repair of skeletal muscle, we next examined whether regenerative capacity was compromised. After injury, BDNF-depleted muscle showed delayed expression of several molecular markers of regeneration, as well as delayed appearance of newly regenerated fibers. Recovery of wild-type BDNF levels was sufficient to restore normal regeneration. Together, these findings suggest that BDNF plays an important role in regulating satellite cell function and regeneration in vivo, particularly during early stages.
机译:在成人骨骼肌中,脑源性神经营养因子(BDNF)在称为卫星细胞的成肌祖细胞中表达。为了在功能上解决BDNF在肌肉卫星细胞和体内再生中的作用,我们生成了小鼠,其中BDNF从骨骼肌细胞中特别消耗。为了进行比较,并确定肌肉来源的BDNF的特定作用,我们还检查了完整BDNF ?/?小鼠的肌肉。在两个模型中,卫星细胞标记Pax7的表达均显着降低。此外,原代成肌细胞的增殖和分化是异常的,表现出几种分化标记的延迟诱导以及肌管尺寸的减小。用外源性BDNF蛋白处理足以挽救正常的基因表达和肌管大小。由于卫星细胞负责产后生长和骨骼肌修复,因此我们接下来检查了再生能力是否受到损害。受伤后,耗尽BDNF的肌肉显示出几种再生分子标记物的延迟表达,以及新再生纤维的延迟出现。恢复野生型BDNF水平足以恢复正常再生。总之,这些发现表明BDNF在调节体内卫星细胞功能和再生中起着重要作用,尤其是在早期阶段。

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