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以毛细胞中突触递质的共振释放为例,对具有协同步骤的生物振荡器进行建模。

Modeling the resonant release of synaptic transmitter by hair cells as an example of biological oscillators with cooperative steps.

机构信息

Laboratory of Sensory Neuroscience, Howard Hughes Medical Institute, The Rockefeller University, 1230 York Avenue, New York, NY, 100656399, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Feb 2;107(5):2019-24. doi: 10.1073/pnas.0914372107. Epub 2010 Jan 13.

Abstract

The initial synapses of the auditory system, which connect hair cells to afferent nerve fibers, display two unusual features. First, synaptic transmission occurs in a multiquantal fashion: the contents of multiple synaptic vesicles are discharged simultaneously. Second, synaptic transmission may be tuned to specific frequencies of stimulation. We developed a minimal theoretical model to explore the possibility that hair-cell synapses achieve both multiquantal release and frequency selectivity through a cooperative mechanism for the exocytotic release of neurotransmitter. We first characterized vesicle release as a four-step cycle at each release site, then generalized the result to an arbitrary number of steps. The cyclic process itself induces some degree of resonance, and may display a stable, underdamped fixed point of the release dynamics associated with a pair of complex eigenvalues. Cooperativity greatly enhances the frequency selectivity by moving the eigenvalues toward the imaginary axis; spontaneously oscillatory release can arise beyond a Hopf bifurcation. These phenomena occur both in the macroscopic limit, when the number of release sites involved is very large, and in the more realistic stochastic regime, when only a limited number of release sites participate at each synapse. It is thus possible to connect multiquantal release with frequency selectivity through the mechanism of cooperativity.

摘要

听觉系统的初始突触将毛细胞与传入神经纤维相连,具有两个不寻常的特征。首先,突触传递以多量子的方式发生:多个突触小泡的内容物同时释放。其次,突触传递可能针对特定的刺激频率进行调整。我们开发了一个最小理论模型来探索毛细胞突触通过神经递质胞吐释放的协同机制实现多量子释放和频率选择性的可能性。我们首先将囊泡释放描述为每个释放位点的四步循环,然后将结果推广到任意数量的步骤。循环过程本身会引起一定程度的共振,并可能显示与一对复特征值相关的释放动力学的稳定、欠阻尼固定点。协同作用通过将特征值移向虚轴极大地提高了频率选择性;在超过 Hopf 分岔时可能会出现自发振荡释放。这些现象既出现在涉及的释放位点数量非常大的宏观极限中,也出现在更现实的随机状态中,其中每个突触只有有限数量的释放位点参与。因此,通过协同作用的机制可以将多量子释放与频率选择性联系起来。

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