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Pulmonary inflammation-induced alterations in key regulators of mitophagy and mitochondrial biogenesis in murine skeletal muscle

机译:小鼠骨骼肌细胞瘤和线粒体生物发生关键调节因子的肺炎症诱导的改变

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Both mitophagy, a selective mechanism for clearance of mitochondria, and mitochondrial biogenesis are key processes determining mitochondrial content and oxidative capacity of the musculature. Abnormalities in these processes could therefore contribute to deterioration of peripheral muscle oxidative capacity as observed in e.g. chronic obstructive pulmonary disease. Although it has been suggested that inflammatory mediators can modulate both mitophagy and mitochondrial biogenesis, it is unknown whether acute pulmonary inflammation affects these processes in oxidative and glycolytic skeletal muscle in vivo. Therefore, we hypothesised that molecular signalling patterns of mitochondrial breakdown and biogenesis temporally shift towards increased breakdown and decreased biogenesis in the skeletal muscle of mice exposed to one single bolus of IT-LPS, as a model for acute lung injury and pulmonary inflammation. We investigated multiple important constituents and molecular regulators of mitochondrial breakdown, biogenesis, dynamics, and mitochondrial content in skeletal muscle over time in a murine (FVB/N background) model of acute pulmonary- and systemic inflammation induced by a single bolus of intra-tracheally (IT)-instilled lipopolysaccharide (LPS). Moreover, we compared the expression of these constituents between gastrocnemius and soleus muscle. Both in soleus and gastrocnemius muscle, IT-LPS instillation resulted in molecular patterns indicative of activation of mitophagy. This coincided with modulation of mRNA transcript abundance of genes involved in mitochondrial fusion and fission as well as an initial decrease and subsequent recovery of transcript levels of key proteins involved in the molecular regulation of mitochondrial biogenesis. Moreover, no solid differences in markers for mitochondrial content were found. These data suggest that one bolus of IT-LPS results in a temporal modulation of mitochondrial clearance and biogenesis in both oxidative and glycolytic skeletal muscle, which is insufficient to result in a reduction of mitochondrial content.
机译:两种斑块,线粒体间隙和线粒体生物发生的选择性机制是确定肌肉组织的线粒体含量和氧化能力的关键过程。因此,这些方法的异常可以有助于例如在例如时观察到的外周肌氧化能力的恶化。慢性阻塞性肺疾病。虽然已经表明炎症介质可以调节癌症和线粒体生物发生,但是急性肺炎症是否会影响氧化和糖酵解骨骼肌中的这些过程。因此,我们假设线粒体分解和生物发生的分子信号传导模式在暴露于IT-LPS一单个推注的小鼠的骨骼肌中朝向增加的崩溃和降低生物发生,作为急性肺损伤和肺炎症的模型。在血小线肿瘤和系统炎症诱导的急性肺和全身炎症的模型中,在骨骼肌中,在骨骼肌中进行了线粒体崩溃,生物发生,动力学和线粒体含量的多个重要成分和分子调节因子。 (IT) - 脂多糖(LPS)。此外,我们将这些成分的表达与胃肠杆菌和肌肉肌肉之间的表达进行了比较。既肌肉和腓肠肌肌肉,IT-LPS滴注导致分子模式,指示乳化物的激活。这一致调节参与线粒体融合和裂变中涉及的MRNA转录物丰富的基因以及随后恢复参与线粒体生物发生的分子调节的关键蛋白质的转录物水平。此外,发现了线粒体含量的标记物的固体差异。这些数据表明,IT-1PS的一种推注导致氧化和糖瘤骨骼肌中线粒体间隙和生物发生的时间调制,这不足以导致线粒体含量的降低。

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