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首页> 外文期刊>The Royal Society Proceedings B: Biological Sciences >Non-random nature of spontaneous mIPSCs in mouse auditory brainstem neurons revealed by recurrence quantification analysis.
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Non-random nature of spontaneous mIPSCs in mouse auditory brainstem neurons revealed by recurrence quantification analysis.

机译:复发性定量分析揭示了小鼠听觉脑干神经元中自发mIPSC的非随机性质。

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摘要

A change in the spontaneous release of neurotransmitter is a useful indicator of processes occurring within presynaptic terminals. Linear techniques (e.g. Fourier transform) have been used to analyse spontaneous synaptic events in previous studies, but such methods are inappropriate if the timing pattern is complex. We have investigated spontaneous glycinergic miniature synaptic currents (mIPSCs) in principal cells of the medial nucleus of the trapezoid body. The random versus deterministic (or periodic) nature of mIPSCs was assessed using recurrence quantification analysis. Nonlinear methods were then used to quantify any detected determinism in spontaneous release, and to test for chaotic or fractal patterns. Modelling demonstrated that this procedure is much more sensitive in detecting periodicities than conventional techniques. mIPSCs were found to exhibit periodicities that were abolished by blockade of internal calcium stores with ryanodine, suggesting calcium oscillations in the presynaptic inhibitory terminals. Analysis indicated that mIPSC occurrences were chaotic in nature. Furthermore, periodicities were less evident in congenitally deaf mice than in normal mice, indicating that appropriate neural activity during development is necessary for the expression of deterministic chaos in mIPSC patterns. We suggest that chaotic oscillations of mIPSC occurrences play a physiological role in signal processing in the auditory brainstem.
机译:神经递质自发释放的变化是突触前末端发生过程的有用指标。在以前的研究中,已经使用线性技术(例如傅立叶变换)来分析自发性突触事件,但是如果时序模式很复杂,则这种方法是不合适的。我们已经研究了梯形体内侧核的主要细胞中的自发性甘氨酸能微型突触电流(mIPSC)。使用重复量化分析评估了mIPSC的随机性与确定性(或周期性)性质。然后使用非线性方法量化自发释放中检测到的确定性,并测试混沌或分形模式。建模表明,此过程在检测周期性方面比常规技术更加敏感。发现mIPSCs具有周期性,该周期因用雷诺丁阻断内部钙存储而被消除,表明突触前抑制末端的钙振荡。分析表明,mIPSC发生本质上是混乱的。此外,先天性聋小鼠的周期性不如正常小鼠明显,表明发育过程中适当的神经活动对于在mIPSC模式下表达确定性混沌是必要的。我们建议mIPSC发生的混沌振荡在听觉脑干信号处理中发挥生理作用。

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