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Correlations between active zone ultrastructure and synaptic function studied with freeze-fracture of physiologically identified neuromuscular junctions

机译:用生理学鉴定的神经肌肉接头的冷冻断裂研究活动区超结构与突触功能之间的相关性

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摘要

The active zone is a unique presynaptic membrane specialization that is believed to be the site of neurotransmitter release. To examine directly the relationship between active zone ultrastructure and synaptic efficacy, frog neuromuscular junctions were studied with a new technique combining electrophysiology, light microscopy, and freeze- fracture of identified single muscle fibers. This technique allows correlations to be made between quantal content (measured in low Ca2+ and high Mg2+ Ringer solution), endplate size, and active zone structure at the same neuromuscular junctions. By measuring physiological and morphological variables at the same junctions, the validity of structure-function correlations is significantly improved. Synaptic quantal content in 91 physiologically identified muscle fibers varied considerably and was only poorly correlated with endplate size, as shown in previous studies. To measure the total length of endplate branches, either a modified cholinesterase stain or rhodamine-labeled peanut agglutinin stain was used. When the same identified muscle fibers were freeze-fractured, active zones were exposed in 17 junctions. In a replica that contained a large part of one nerve terminal, there was no detectable gradient in active zone structure along the length of 3 different nerve terminal branches identifiable with both light and electron microscopy. The results from these 17 identified junctions indicate that quantal content per unit terminal length is positively correlated with the amount of active zone per unit terminal length. The estimated total active zone length and total number of active zone particles per junction are also positively correlated with the quantal content in these identified junctions. This study suggests that active zone size and spacing are better indicators of transmitter release than is endplate size and that the active zone may play an important role in regulating synaptic efficacy at the neuromuscular junction.
机译:活性区是独特的突触前膜特化,据信这是神经递质释放的部位。为了直接检查活性区超微结构与突触功效之间的关系,采用了一种结合电生理学,光学显微镜和已鉴定出的单条肌纤维的冷冻断裂的新技术,研究了青蛙神经肌肉接头。该技术允许在相同的神经肌肉连接处的定量含量(在低Ca2 +和高Mg2 +林格溶液中测量),终板尺寸和活性区结构之间建立关联。通过测量相同交界处的生理和形态变量,结构功能相关性的有效性得到了显着提高。如先前的研究所示,在91个生理识别的肌肉纤维中,突触的定量含量变化很大,并且与终板大小的相关性很小。为了测量终板分支的总长度,使用改良的胆碱酯酶染色或若丹明标记的花生凝集素染色。当相同的识别出的肌纤维被冷冻断裂时,活动区域暴露在17个连接处。在一个包含一个神经末梢大部分的复制品中,沿光学和电子显微镜均可识别的三个不同神经末梢分支的长度,在活动区结构中没有可检测到的梯度。从这17个已识别的连接处获得的结果表明,每单位端子长度的定量含量与每单位端子长度的活性区数量呈正相关。每个接合处的估计总活性区长度和活性区颗粒总数也与这些已识别接合处的定量含量呈正相关。这项研究表明,活动区的大小和间距比端板的尺寸更好地指示了递质的释放,并且活动区可能在调节神经肌肉接头的突触功效中起重要作用。

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