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首页> 外文期刊>Journal of Neuroscience Research >Origin of quantal size variation and high-frequency miniature postsynaptic currents at the Caenorhabditis elegans neuromuscular junction.
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Origin of quantal size variation and high-frequency miniature postsynaptic currents at the Caenorhabditis elegans neuromuscular junction.

机译:秀丽隐杆线虫神经肌肉接头处的大小变化和高频微型突触后电流的起源。

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The neuromuscular junction (NMJ) of Caenorhabditis elegans has proved to be a very useful model synapse for investigating molecular mechanisms of synaptic transmission. Intriguingly, miniature postsynaptic currents (minis) at this synapse occur at an unusually high frequency (50-90 Hz in wild-type worms) and show large variation in quantal size (from <10 pA to >200 pA). It is important to understand the cellular and molecular bases for these properties of minis in order to interpret electrophysiological data from this synapse properly. Existing data suggest that several factors may contribute to the high frequency and quantal size variation, including 1) the establishment of multiple NMJs with each body-wall muscle cell, 2) diversity of postsynaptic receptors (two acetylcholine receptors and one GABA receptor), 3) association of one presynaptic site with several body-wall muscle cells, 4) effects of Ca(2+) at the presynaptic site, and 5) a possibly elevated (less negative) resting membrane potential in motoneurons. Neither the frequency nor the quantal size of minis is affected by electrical coupling of body-wall muscle cells. Furthermore, quantal size variation is not due to synchronized multivesicular release. Analyses of the C. elegans NMJ may lead to a better understanding of the mechanisms controlling the frequency and quantal size of minis of other synapses as well.
机译:秀丽隐杆线虫的神经肌肉接头(NMJ)已被证明是非常有用的模型突触,用于研究突触传递的分子机制。有趣的是,此突触的微型突触后电流(minis)以异常高的频率(在野生型蠕虫中为50-90 Hz)发生,并且在数量上表现出较大的变化(从<10 pA到> 200 pA)。重要的是要了解mini的这些特性的细胞和分子基础,以便正确地解释此突触的电生理数据。现有数据表明,多种因素可能导致高频和定量大小变化,包括1)每个体壁肌肉细胞建立多个NMJ,2)突触后受体的多样性(两个乙酰胆碱受体和一个GABA受体),3 )一个突触前部位与几个体壁肌肉细胞的关联; 4)突触前部位Ca(2+)的作用,以及5)运动神经元中静息膜电位的升高(负值较小)。体壁肌肉细胞的电耦合都不会影响模型的频率或数量大小。此外,数量的大小变化不是由于同步的多囊泡释放。秀丽隐杆线虫NMJ的分析可能会导致更好地了解控制其他突触的频率和数量大小的机制。

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