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首页> 外文期刊>American Journal of Physiology >Skeletal muscle weakness due to deficiency of CuZn-superoxide dismutase is associated with loss of functional innervation.
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Skeletal muscle weakness due to deficiency of CuZn-superoxide dismutase is associated with loss of functional innervation.

机译:由于缺乏铜锌超氧化物歧化酶而引起的骨骼肌无力与功能神经的丧失有关。

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摘要

An association between oxidative stress and muscle atrophy and weakness in vivo is supported by elevated oxidative damage and accelerated loss of muscle mass and force with aging in CuZn-superoxide dismutase-deficient (Sod1(-/-)) mice. The purpose was to determine the basis for low specific force (N/cm(2)) of gastrocnemius muscles in Sod1(-/-) mice and establish the extent to which structural and functional changes in muscles of Sod1(-/-) mice resemble those associated with normal aging. We tested the hypothesis that muscle weakness in Sod1(-/-) mice is due to functionally denervated fibers by comparing forces during nerve and direct muscle stimulation. No differences were observed for wild-type mice at any age in the forces generated in response to nerve and muscle stimulation. Nerve- and muscle-stimulated forces were also not different for 4-wk-old Sod1(-/-) mice, whereas, for 8- and 20-mo-old mice, forces during muscle stimulation were 16 and 30% greater, respectively, than those obtained using nerve stimulation. In addition to functional evidence of denervation with aging, fiber number was not different for Sod1(-/-) and wild-type mice at 4 wk, but 50% lower for Sod1(-/-) mice by 20 mo, and denervated motor end plates were prevalent in Sod1(-/-) mice at both 8 and 20 mo and in WT mice by 28 mo. The data suggest ongoing denervation in muscles of Sod1(-/-) mice that results in fiber loss and muscle atrophy. Moreover, the findings support using Sod1(-/-) mice to explore mechanistic links between oxidative stress and the progression of deficits in muscle structure and function.
机译:氧化应激和肌肉萎缩和体内无力之间的关联是由氧化损伤的增加以及在CuZn-超氧化物歧化酶缺陷(Sod1(-/-))小鼠中衰老引起的肌肉质量和力的加速损失所支持的。目的是确定Sod1(-/-)小鼠腓肠肌低比力(N / cm(2))的基础,并确定Sod1(-/-)小鼠肌肉结构和功能变化的程度类似于那些与正常衰老有关的事物。通过比较神经和直接肌肉刺激期间的作用力,我们测试了Sod1(-/-)小鼠的肌肉无力是由于功能性神经支配的纤维的假说。对于任何年龄的野生型小鼠,对神经和肌肉刺激产生的作用力均未观察到差异。 4周龄Sod1(-/-)小鼠的神经和肌肉刺激力也没有差异,而对于8月龄和20月龄的小鼠,肌肉刺激过程中的力分别增加了16%和30% ,而不是使用神经刺激获得的。除了具有随着年龄而去神经支配的功能性证据外,Sod1(-/-)和野生型小鼠在4周时的纤维数量也没有差异,但Sod1(-/-)小鼠的纤维数量在20 mo时降低了50%,并且神经支配的运动终板在8和20 mo的Sod1(-/-)小鼠中普遍存在,而在28 mo的WT小鼠中普遍存在。数据表明,Sod1(-/-)小鼠肌肉中正在进行神经支配,导致纤维丢失和肌肉萎缩。此外,该发现支持使用Sod1(-/-)小鼠探索氧化应激与肌肉结构和功能缺陷的进展之间的机械联系。

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