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非洲爪蟾细胞培养中神经-肌肉相互作用的研究:早期突触电流分析

Studies of nerve-muscle interactions in Xenopus cell culture: analysis of early synaptic currents.

作者信息

Evers J, Laser M, Sun Y A, Xie Z P, Poo M M

机构信息

Section of Molecular Neurobiology, Yale University School of Medicine, New Haven, Connecticut 06510.

出版信息

J Neurosci. 1989 May;9(5):1523-39. doi: 10.1523/JNEUROSCI.09-05-01523.1989.

Abstract

We have studied the spontaneous and nerve-evoked synaptic currents during the initial period of nerve-muscle contact in Xenopus cell cultures. The precise timing of the contact was achieved by physically manipulating embryonic muscle cells into contact with co-cultured spinal neurons. Previous studies have shown that physical contact of the muscle membrane induces pulsatile release of acetylcholine (ACh) from the growth cone of these neurons, resulting in spontaneous synaptic currents (SSCs) in the muscle cell within seconds following the contact. In the present work, we first showed that these SSCs at the manipulated nerve-muscle contacts are similar to those observed at naturally occurring synapses. We then examined the possible cellular mechanisms responsible for the marked variation in SSC amplitude and showed that it most likely results from differences in either the amount of ACh contained in each release event or the extent of close membrane apposition near the release sites. During the first 20 min following the nerve-muscle contact, there was an increase in the frequency and mean amplitude of the SSCs. During a similar period, the evoked synaptic currents (ESCs), which were induced by suprathreshold electrical stimulation of the neuronal soma, also showed an increase in the mean amplitude and a reduction in the delay of onset following the stimulus. These postcontact changes in the efficacy of synaptic transmission may be related to an increase in the total area of close membrane apposition between the nerve and muscle cells. This was suggested by the finding that neurite-muscle adhesion increases over a similar postcontact period. The transition from low- to high-efficacy transmission during the early phase of contact may reflect the process of selective adhesion between the cells, and thus signify the formation of specific synapse. Analysis of the fluctuation in the ESC amplitude at the early nerve-muscle contact suggests that evoked release of ACh occurs as multiples of a quantal unit. However, this unit is apparently related to only a small subpopulation of SSCs of relatively high amplitudes.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

我们研究了非洲爪蟾细胞培养物中神经 - 肌肉接触初期的自发和神经诱发的突触电流。通过物理操作将胚胎肌肉细胞与共培养的脊髓神经元接触,实现了精确的接触时间。先前的研究表明,肌肉膜的物理接触会诱导这些神经元生长锥中乙酰胆碱(ACh)的脉冲式释放,导致接触后数秒内肌肉细胞出现自发突触电流(SSCs)。在本研究中,我们首先表明,在人工操作的神经 - 肌肉接触处的这些SSCs与在自然形成的突触处观察到的相似。然后,我们研究了导致SSC幅度显著变化的可能细胞机制,并表明这很可能是由于每个释放事件中所含ACh量的差异或释放位点附近紧密膜贴合程度的差异所致。在神经 - 肌肉接触后的最初20分钟内,SSCs的频率和平均幅度有所增加。在类似的时间段内,由神经元胞体的阈上电刺激诱导的诱发突触电流(ESCs),其平均幅度也增加,并且刺激后起始延迟缩短。突触传递效能的这些接触后变化可能与神经和肌肉细胞之间紧密膜贴合的总面积增加有关。这一观点得到了以下发现的支持:在类似的接触后时期,神经突 - 肌肉粘附增加。接触早期从低效传到高效传的转变可能反映了细胞间选择性粘附的过程,因此标志着特异性突触的形成。对神经 - 肌肉接触早期ESC幅度波动的分析表明,ACh的诱发释放是以量子单位的倍数发生的。然而,这个单位显然仅与相对高幅度的一小部分SSCs有关。(摘要截断于400字)

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