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严重受损的神经肌肉突触传递导致Cacna1a突变的名古屋滚动小鼠出现肌肉无力。

Severely impaired neuromuscular synaptic transmission causes muscle weakness in the Cacna1a-mutant mouse rolling Nagoya.

作者信息

Kaja Simon, van de Ven Rob C G, van Dijk J Gert, Verschuuren Jan J G M, Arahata Kiichi, Frants Rune R, Ferrari Michel D, van den Maagdenberg Arn M J M, Plomp Jaap J

机构信息

Department of Neurology and Clinical Neurophysiology, Leiden University Medical Centre, Leiden, The Netherlands.

出版信息

Eur J Neurosci. 2007 Apr;25(7):2009-20. doi: 10.1111/j.1460-9568.2007.05438.x.

DOI:10.1111/j.1460-9568.2007.05438.x
PMID:17439489
Abstract

The ataxic mouse rolling Nagoya (RN) carries a missense mutation in the Cacna1a gene, encoding the pore-forming subunit of neuronal Ca(v)2.1 (P/Q-type) Ca2+ channels. Besides being the predominant type of Ca(v) channel in the cerebellum, Ca(v)2.1 channels mediate acetylcholine (ACh) release at the peripheral neuromuscular junction (NMJ). Therefore, Ca(v)2.1 dysfunction induced by the RN mutation may disturb ACh release at the NMJ. The dysfunction may resemble the situation in Lambert-Eaton myasthenic syndrome (LEMS), in which autoantibodies target Ca(v)2.1 channels at NMJs, inducing severely reduced ACh release and resulting in muscle weakness. We tested neuromuscular function of RN mice and characterized transmitter release properties at their NMJs in diaphragm, soleus and flexor digitorum brevis muscles. Clinical muscle weakness and fatigue were demonstrated using repetitive nerve-stimulation electromyography, grip strength testing and an inverted grid hanging test. Muscle contraction experiments showed a compromised safety factor of neuromuscular transmission. In ex vivo electrophysiological experiments we found severely impaired ACh release. Compared to wild-type, RN NMJs had 50-75% lower nerve stimulation-evoked transmitter release, explaining the observed muscle weakness. Surprisingly, the reduction in evoked release was accompanied by an approximately 3-fold increase in spontaneous ACh release. This synaptic phenotype suggests a complex effect of the RN mutation on different functional Ca(v)2.1 channel parameters, presumably with a positive shift in activation potential as a prevailing feature. Taken together, our studies indicate that the gait abnormality of RN mice is due to a combination of ataxia and muscle weakness and that RN models aspects of the NMJ dysfunction in LEMS.

摘要

共济失调滚动名古屋小鼠(RN)在Cacna1a基因中携带一个错义突变,该基因编码神经元Ca(v)2.1(P/Q型)钙通道的孔形成亚基。除了是小脑中主要类型的Ca(v)通道外,Ca(v)2.1通道还介导外周神经肌肉接头(NMJ)处乙酰胆碱(ACh)的释放。因此,RN突变诱导的Ca(v)2.1功能障碍可能会干扰NMJ处ACh的释放。这种功能障碍可能类似于兰伯特-伊顿肌无力综合征(LEMS)的情况,在LEMS中,自身抗体靶向NMJ处的Ca(v)2.1通道,导致ACh释放严重减少并导致肌肉无力。我们测试了RN小鼠的神经肌肉功能,并对其膈肌、比目鱼肌和趾短屈肌中NMJ处的递质释放特性进行了表征。使用重复神经刺激肌电图、握力测试和倒置网格悬挂测试证明了临床肌肉无力和疲劳。肌肉收缩实验表明神经肌肉传递的安全系数受损。在体外电生理实验中,我们发现ACh释放严重受损。与野生型相比,RN NMJ处神经刺激诱发的递质释放降低了50 - 75%,这解释了观察到的肌肉无力现象。令人惊讶的是,诱发释放的减少伴随着自发ACh释放增加约3倍。这种突触表型表明RN突变对不同功能性Ca(v)2.1通道参数具有复杂影响,可能以激活电位的正向偏移为主要特征。综上所述,我们的研究表明RN小鼠的步态异常是由于共济失调和肌肉无力共同导致的,并且RN模拟了LEMS中NMJ功能障碍的某些方面。

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