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机械张力有助于神经递质囊泡在突触前终末聚集。

Mechanical tension contributes to clustering of neurotransmitter vesicles at presynaptic terminals.

作者信息

Siechen Scott, Yang Shengyuan, Chiba Akira, Saif Taher

机构信息

Department of Cell and Developmental Biology, University of Illinois, Urbana, IL 61801, USA.

出版信息

Proc Natl Acad Sci U S A. 2009 Aug 4;106(31):12611-6. doi: 10.1073/pnas.0901867106. Epub 2009 Jul 20.

Abstract

Memory and learning in animals are mediated by neurotransmitters that are released from vesicles clustered at the synapse. As a synapse is used more frequently, its neurotransmission efficiency increases, partly because of increased vesicle clustering in the presynaptic neuron. Vesicle clustering has been believed to result primarily from biochemical signaling processes that require the connectivity of the presynaptic terminal with the cell body, the central nervous system, and the postsynaptic cell. Our in vivo experiments on the embryonic Drosophila nervous system show that vesicle clustering at the neuromuscular presynaptic terminal depends on mechanical tension within the axons. Vesicle clustering vanishes upon severing the axon from the cell body, but is restored when mechanical tension is applied to the severed end of the axon. Clustering increases when intact axons are stretched mechanically by pulling the postsynaptic muscle. Using micro mechanical force sensors, we find that embryonic axons that have formed neuromuscular junctions maintain a rest tension of approximately 1 nanonewton. If the rest tension is perturbed mechanically, axons restore the rest tension either by relaxing or by contracting over a period of approximately 15 min. Our results suggest that neuromuscular synapses employ mechanical tension as a signal to modulate vesicle accumulation and synaptic plasticity.

摘要

动物的记忆和学习由从聚集在突触处的囊泡释放的神经递质介导。随着突触使用频率的增加,其神经传递效率会提高,部分原因是突触前神经元中囊泡聚集增加。人们一直认为囊泡聚集主要源于生化信号传导过程,这需要突触前末端与细胞体、中枢神经系统以及突触后细胞之间的连接。我们对果蝇胚胎神经系统进行的体内实验表明,神经肌肉突触前末端的囊泡聚集取决于轴突内的机械张力。当轴突从细胞体切断时,囊泡聚集消失,但当对切断的轴突末端施加机械张力时,囊泡聚集会恢复。通过牵拉突触后肌肉对完整轴突进行机械拉伸时,聚集会增加。使用微机械力传感器,我们发现已形成神经肌肉接头的胚胎轴突维持约1纳牛顿的静张力。如果静张力受到机械干扰,轴突会在大约15分钟的时间内通过放松或收缩来恢复静张力。我们的结果表明,神经肌肉突触利用机械张力作为信号来调节囊泡聚集和突触可塑性。

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