MuSK调节神经肌肉连接处Nav1.4定位和兴奋性。

IF 4.3 2区 医学 Q1 NEUROSCIENCES Journal of Neuroscience Pub Date : 2025-04-09 DOI:10.1523/JNEUROSCI.1279-23.2025
Lauren A Fish, Madison D Ewing, Kelly A Rich, Chengjie Xi, Isabella Chen, Diego Jaime, Laura A Madigan, Xueyong Wang, Justin L Shahtout, Rita E Feder, Katsuhiko Funai, Jan L Christian, Kristi A Wharton, Mark M Rich, William D Arnold, Justin R Fallon
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引用次数: 0

摘要

神经肌肉接头(NMJ)是神经诱发肌肉收缩的关键。广义而言,NMJ的功能是将神经动作电位转化为肌纤维动作电位(MFAPs)。有效的神经肌肉传递既需要负责产生终板电位(EPP)的胆碱能信号,也需要通过突触后电压门控钠通道(Nav1.4)放大EPP以产生MFAP的兴奋。与胆碱能成分相反,组织Nav1.4和介导肌纤维兴奋性的信号通路尚未被充分表征。肌肉特异性激酶(MuSK),除了作为乙酰胆碱受体(achr)的主要组织者的Ig1结构域依赖作用外,还通过其Ig3结构域与bmp结合,并形成bmp诱导的信号传导和转录输出。在这里,使用缺乏MuSK Ig3结构域(‘ΔIg3-MuSK’)的小鼠,我们探讨了该结构域在NMJ中的作用。NMJs在ΔIg3-MuSK动物中形成,在所有被检查的年龄,突触前和突触后特化排列一致。然而,ΔIg3-MuSK突触后装置从生命的最初几周开始就支离破碎了。突触电生理显示,自发和神经诱发的乙酰胆碱释放、AChR密度和终板电流在WT和ΔIg3-MuSK NMJs时是相当的。然而,单纤维肌电图显示ΔIg3-MuSK肌的神经诱发MFAPs异常,表现为抖动和阻滞。此外,神经诱发的复合肌肉动作电位和肌肉力量产生也减少。最后,ΔIg3-MuSK NMJs的Nav1.4水平降低,但在肌膜上没有广泛降低,这表明观察到的兴奋性缺陷是由于该离子通道的突触定位受损造成的。我们提出,MuSK在NMJ中发挥着独特的、特定区域的作用:Ig1结构域介导agrin-LRP4介导的AChR定位,而Ig3结构域维持突触后Nav1.4密度,赋予肌肉兴奋性,以放大胆碱能信号并触发动作电位。神经肌肉接头(NMJ)是神经诱发肌肉收缩和运动所必需的,其功能在衰老和疾病中受到损害。尽管该突触的神经递质释放和胆碱能反应机制已被广泛研究,但神经诱发肌肉兴奋所需的机制尚未完全表征。我们发现,肌肉特异性激酶(MuSK)的Ig3结构域调节NMJ结构和神经诱发肌纤维兴奋和力产生所必需的电压门控钠通道的定位。这种功能在结构和机制上与它在组织胆碱能机制中的作用不同。因此,MuSK的Ig3结构域成为选择性调节兴奋性的靶标,而兴奋性在先天性肌无力综合征和与年龄相关的肌肉无力等疾病中是有缺陷的。
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MuSK Regulates Neuromuscular Junction Nav1.4 Localization and Excitability.

The neuromuscular junction (NMJ) is the linchpin of nerve-evoked muscle contraction. Broadly, the NMJ transduces nerve action potentials into muscle fiber action potentials (MFAPs). Efficient neuromuscular transmission requires cholinergic signaling, which generates endplate potentials (EPPs), and excitation, the amplification of an EPP by postsynaptic voltage-gated sodium channels (Nav1.4) to generate the MFAP. Compared to the cholinergic component, the signaling pathways that organize Nav1.4 are poorly characterized. Muscle-specific kinase (MuSK), in addition to its Ig1 domain-dependent role as the main organizer of acetylcholine receptors (AChRs), also binds BMPs via its Ig3 domain and shapes BMP-induced signaling. Using mice lacking the MuSK Ig3 domain ("ΔIg3-MuSK"), we probed the role of this domain at the NMJ. NMJs formed in ΔIg3-MuSK animals with pre- and postsynaptic specializations aligned at all ages examined. However, the ΔIg3-MuSK postsynaptic apparatus was fragmented from an early age. Synaptic electrophysiology showed that spontaneous and nerve-evoked acetylcholine release, AChR density, and endplate currents were comparable at WT and ΔIg3-MuSK NMJs. However, single fiber electromyography revealed that nerve-evoked MFAPs in ΔIg3-MuSK muscle were abnormal, exhibiting jitter and blocking. Nerve-evoked compound muscle action potentials and muscle force were also diminished. Finally, Nav1.4 levels were reduced at ΔIg3-MuSK NMJs, but not extrasynaptically, indicating that the observed excitability defects result from impaired synaptic localization of this ion channel. We propose distinct, domain-specific roles for MuSK at the NMJ: the Ig1 domain mediates agrin-LRP4-mediated AChR localization, while the Ig3 domain maintains postsynaptic Nav1.4 density, conferring the muscle excitability required to amplify cholinergic signals and trigger action potentials.

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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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