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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Precision of reinnervation and synaptic remodeling observed in neuromuscular junctions of living frogs.
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Precision of reinnervation and synaptic remodeling observed in neuromuscular junctions of living frogs.

机译:在活体青蛙的神经肌肉连接处观察到神经支配和突触重塑的精度。

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Repeated in vivo observations were used to study regenerated nerve terminals in neuromuscular junctions of the adult frog Rana pipiens. Sartorius junctions in living animals were stained with the fluorescent vital dye RH414 and viewed with video fluorescence microscopy. Each junction was observed in the intact muscle and then again 7, 10, and 13 weeks after nerve crush. At 13 weeks, junctions were determined to be mono- or polyneuronally innervated using intracellular recording. Between 7 and 13 weeks, most identified junctions were reinnervated less precisely and completely than described previously. Although some of the original synaptic gutters were reoccupied by regenerated terminal branches, other gutters were only partially occupied, and many appeared abandoned. Junctions showing precise recapitulation of original terminal arborizations comprised a small number of the total examined, as did those where reinnervation was very imprecise. Striking differences in the precision of reinnervation were found within the muscle such that distal terminals regenerated more precisely and completely than did proximal terminals. Terminals in reinnervated muscles were more dynamic than terminals in unoperated muscles over equivalent times. In singly innervated junctions, terminal growth was favored over regression. In doubly innervated junctions, regressive events were more common. Imprecise reinnervation is explained in terms of multisite innervation of muscle fibers and the activity dependence of synaptic stability. We hypothesize that when axons reinnervate the second or third junctions on a fiber, they do so less precisely, because the activity restored by reinnervation of the first junction renders later sites less attractive or less stable.
机译:重复的体内观察被用于研究成年青蛙蛙蛙神经肌肉接头中的再生神经末梢。用荧光重要染料RH414对活体动物的Sartorius连接处进行染色,并用视频荧光显微镜观察。在完整的肌肉中观察到每个连接点,然后在神经挤压后的7、10和13周再次观察到。在第13周,使用细胞内记录确定连接被单神经或多神经支配。在7到13周之间,大多数已识别的路口与以前所描述的相比没有那么精确和完全地被神经支配。尽管一些原始的突触沟被重新生成的末端分支所占据,但其他的沟仅被部分占据,许多似乎被抛弃了。能够精确再现原始终端树状结构的连接点仅占被检查总数的一小部分,而重新神经化非常不精确的连接点也是如此。在肌肉内发现了神经再分配的精确度方面的惊人差异,因此远侧末端比近侧末端更准确,更完全地再生。在相同的时间内,神经支配的肌肉的末端比未手术支配的肌肉的末端更有活力。在单个神经支配的交界处,终末生长优于回归。在双重神经支配的交界处,回归事件更为常见。不精确的神经支配是根据肌肉纤维的多部位神经支配和突触稳定性的活动依赖性来解释的。我们假设当轴突重新激活纤维上的第二个或第三个连接点时,它们的精确度较低,因为通过第一个连接点的重新激活所恢复的活性会使以后的位置吸引力降低或变得不稳定。

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