Department of Physiology, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania, United States of America.
PLoS One. 2013 Jul 29;8(7):e69567. doi: 10.1371/journal.pone.0069567. Print 2013.
Duchenne Muscular Dystrophy (DMD) is caused by mutations in the DMD gene resulting in an absence of dystrophin in neurons and muscle. Respiratory failure is the most common cause of mortality and previous studies have largely concentrated on diaphragmatic muscle necrosis and respiratory failure component. Here, we investigated the integrity of respiratory control mechanisms in the mdx mouse model of DMD. Whole body plethysmograph in parallel with phrenic nerve activity recordings revealed a lower respiratory rate and minute ventilation during normoxia and a blunting of the hypoxic ventilatory reflex in response to mild levels of hypoxia together with a poor performance on a hypoxic stress test in mdx mice. Arterial blood gas analysis revealed low PaO2 and pH and high PaCO2 in mdx mice. To investigate chemosensory respiratory drive, we analyzed the carotid body by molecular and functional means. Dystrophin mRNA and protein was expressed in normal mice carotid bodies however, they are absent in mdx mice. Functional analysis revealed abnormalities in Dejours test and the early component of the hypercapnic ventilatory reflex in mdx mice. Together, these results demonstrate a malfunction in the peripheral chemosensory drive that would be predicted to contribute to the respiratory failure in mdx mice. These data suggest that investigating and monitoring peripheral chemosensory drive function may be useful for improving the management of DMD patients with respiratory failure.
杜氏肌营养不良症(DMD)是由 DMD 基因突变引起的,导致神经元和肌肉中缺乏肌营养不良蛋白。呼吸衰竭是最常见的死亡原因,以前的研究主要集中在膈肌肌肉坏死和呼吸衰竭成分上。在这里,我们研究了 DMD 模型中呼吸控制机制的完整性。全身 plethysmograph 与膈神经活动记录平行,揭示了正常氧合下较低的呼吸频率和分钟通气量,以及对轻度低氧的低氧通气反射迟钝,同时在 mdx 小鼠的低氧应激测试中表现不佳。动脉血气分析显示 mdx 小鼠的 PaO2 和 pH 值较低,PaCO2 值较高。为了研究化学感觉呼吸驱动,我们通过分子和功能手段分析了颈动脉体。正常小鼠颈动脉体中表达肌营养不良蛋白 mRNA 和蛋白,但 mdx 小鼠中却没有。功能分析显示 mdx 小鼠的 Dejours 测试和高碳酸血症通气反射的早期成分异常。总之,这些结果表明外周化学感觉驱动功能出现故障,这可能导致 mdx 小鼠呼吸衰竭。这些数据表明,研究和监测外周化学感觉驱动功能可能有助于改善 DMD 患者呼吸衰竭的管理。