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Munc13基因缺陷型小鼠神经肌肉突触处的形态异常及递质残余释放

Aberrant morphology and residual transmitter release at the Munc13-deficient mouse neuromuscular synapse.

作者信息

Varoqueaux Frédérique, Sons Michèle S, Plomp Jaap J, Brose Nils

机构信息

Department of Molecular Neurobiology, Max Planck Institute for Experimental Medicine, Hermann-Rein Str. 3, D-37075 Göttingen, Germany.

出版信息

Mol Cell Biol. 2005 Jul;25(14):5973-84. doi: 10.1128/MCB.25.14.5973-5984.2005.

Abstract

In cultured hippocampal neurons, synaptogenesis is largely independent of synaptic transmission, while several accounts in the literature indicate that synaptogenesis at cholinergic neuromuscular junctions in mammals appears to partially depend on synaptic activity. To systematically examine the role of synaptic activity in synaptogenesis at the neuromuscular junction, we investigated neuromuscular synaptogenesis and neurotransmitter release of mice lacking all synaptic vesicle priming proteins of the Munc13 family. Munc13-deficient mice are completely paralyzed at birth and die immediately, but form specialized neuromuscular endplates that display typical synaptic features. However, the distribution, number, size, and shape of these synapses, as well as the number of motor neurons they originate from and the maturation state of muscle cells, are profoundly altered. Surprisingly, Munc13-deficient synapses exhibit significantly increased spontaneous quantal acetylcholine release, although fewer fusion-competent synaptic vesicles are present and nerve stimulation-evoked secretion is hardly elicitable and strongly reduced in magnitude. We conclude that the residual transmitter release in Munc13-deficient mice is not sufficient to sustain normal synaptogenesis at the neuromuscular junction, essentially causing morphological aberrations that are also seen upon total blockade of neuromuscular transmission in other genetic models. Our data confirm the importance of Munc13 proteins in synaptic vesicle priming at the neuromuscular junction but indicate also that priming at this synapse may differ from priming at glutamatergic and gamma-aminobutyric acid-ergic synapses and is partly Munc13 independent. Thus, non-Munc13 priming proteins exist at this synapse or vesicle priming occurs in part spontaneously: i.e., without dedicated priming proteins in the release machinery.

摘要

在培养的海马神经元中,突触形成在很大程度上独立于突触传递,而文献中的一些报道表明,哺乳动物胆碱能神经肌肉接头处的突触形成似乎部分依赖于突触活动。为了系统地研究突触活动在神经肌肉接头处突触形成中的作用,我们研究了缺乏Munc13家族所有突触小泡启动蛋白的小鼠的神经肌肉突触形成和神经递质释放。Munc13缺陷型小鼠出生时完全瘫痪并立即死亡,但形成了具有典型突触特征的特化神经肌肉终板。然而,这些突触的分布、数量、大小和形状,以及它们所起源的运动神经元的数量和肌肉细胞的成熟状态都发生了深刻的改变。令人惊讶的是,Munc13缺陷型突触的自发性量子乙酰胆碱释放显著增加,尽管具有融合能力的突触小泡数量较少,并且神经刺激诱发的分泌几乎无法引发且幅度大大降低。我们得出结论,Munc13缺陷型小鼠中残留的递质释放不足以维持神经肌肉接头处的正常突触形成,基本上导致了形态学异常,这在其他遗传模型中神经肌肉传递完全阻断时也可见到。我们的数据证实了Munc13蛋白在神经肌肉接头处突触小泡启动中的重要性,但也表明该突触处的启动可能不同于谷氨酸能和γ-氨基丁酸能突触处的启动,并且部分独立于Munc13。因此,该突触处存在非Munc13启动蛋白,或者突触小泡启动部分是自发发生的:即,释放机制中没有专用的启动蛋白。

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