首页> 外文期刊>Journal of Neurocytology: A Journal of Cellular Neurobiology >Activity-dependent elimination of neuromuscular synapses.
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Activity-dependent elimination of neuromuscular synapses.

机译:神经肌肉突触的活动依赖性消除。

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摘要

At developing neuromuscular synapses in vertebrates, different motor axon inputs to muscle fibers compete for maintenance of their synapses. Competition results in progressive changes in synaptic structure and strength that lead to the weakening and loss of some inputs, a process that has been called synapse elimination. At the same time, a single input is strengthened and maintained throughout adult life, consistently recruiting muscle fibers to contract even at rapid firing rates. Work over the last decade has led to an understanding of some of the cell biological mechanisms that underlie competition and how these culminate in synapse elimination. We discuss current ideas about how activity modulates neuromuscular synaptic competition, how competition leads to synapse loss, and how these processes are modulated by cell-cell signaling. A common feature of competition at neuromuscular as well as CNS synapses is that temporally correlated activity seems to slow or prevent competition, while uncorrelatedactivity seems to trigger or enhance competition. Important questions that remain to be addressed include how patterns of motor neuron activity affect synaptic strength, what is the temporal relationship between changes in synaptic strength and structure, and what cellular signals mediate synapse loss. Answers to these questions will expand our understanding of the mechanisms by which activity edits synaptic structure and function, writing permanent changes in neural circuitry.
机译:在脊椎动物神经肌肉突触的发展过程中,肌肉纤维的不同运动轴突输入竞争维持突触。竞争导致突触结构和强度的逐渐变化,导致某些输入的减弱和丢失,这一过程被称为突触消除。同时,在整个成年生活中,单项输入得到加强和维持,即使在快速放电的情况下,也可以持续吸收肌肉纤维以收缩。过去十年的工作使人们了解了构成竞争基础的一些细胞生物学机制,以及这些机制如何最终消除突触。我们讨论了有关活动如何调节神经肌肉突触竞争,竞争如何导致突触丧失以及细胞-细胞信号传导如何调节这些过程的最新观点。神经肌肉和中枢神经系统突触竞争的共同特征是,时间相关的活动似乎会减缓或阻止竞争,而不相关的活动似乎会触发或增强竞争。有待解决的重要问题包括运动神经元活动的模式如何影响突触强度,突触强度和结构变化之间的时间关系以及什么细胞信号介导突触损失。对这些问题的回答将扩大我们对活动编辑突触结构和功能,编写神经回路中永久性变化的机制的理解。

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