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谷氨酸和γ-氨基丁酸的快速微离子电渗疗法:研究突触整合的有用工具。

Fast micro-iontophoresis of glutamate and GABA: a useful tool to investigate synaptic integration.

作者信息

Müller Christina, Remy Stefan

机构信息

NRW Research Group 'Dendritic integration in the CNS', Department of Epileptology, University of Bonn.

出版信息

J Vis Exp. 2013 Jul 31(77):50701. doi: 10.3791/50701.

Abstract

One of the fundamental interests in neuroscience is to understand the integration of excitatory and inhibitory inputs along the very complex structure of the dendritic tree, which eventually leads to neuronal output of action potentials at the axon. The influence of diverse spatial and temporal parameters of specific synaptic input on neuronal output is currently under investigation, e.g. the distance-dependent attenuation of dendritic inputs, the location-dependent interaction of spatially segregated inputs, the influence of GABAergig inhibition on excitatory integration, linear and non-linear integration modes, and many more. With fast micro-iontophoresis of glutamate and GABA it is possible to precisely investigate the spatial and temporal integration of glutamatergic excitation and GABAergic inhibition. Critical technical requirements are either a triggered fluorescent lamp, light-emitting diode (LED), or a two-photon scanning microscope to visualize dendritic branches without introducing significant photo-damage of the tissue. Furthermore, it is very important to have a micro-iontophoresis amplifier that allows for fast capacitance compensation of high resistance pipettes. Another crucial point is that no transmitter is involuntarily released by the pipette during the experiment. Once established, this technique will give reliable and reproducible signals with a high neurotransmitter and location specificity. Compared to glutamate and GABA uncaging, fast iontophoresis allows using both transmitters at the same time but at very distant locations without limitation to the field of view. There are also advantages compared to focal electrical stimulation of axons: with micro-iontophoresis the location of the input site is definitely known and it is sure that only the neurotransmitter of interest is released. However it has to be considered that with micro-iontophoresis only the postsynapse is activated and presynaptic aspects of neurotransmitter release are not resolved. In this article we demonstrate how to set up micro-iontophoresis in brain slice experiments.

摘要

神经科学的一个基本研究兴趣是了解沿着非常复杂的树突状结构对兴奋性和抑制性输入的整合,这最终导致轴突处动作电位的神经元输出。目前正在研究特定突触输入的各种空间和时间参数对神经元输出的影响,例如树突输入的距离依赖性衰减、空间上分离的输入的位置依赖性相互作用、GABA能抑制对兴奋性整合的影响、线性和非线性整合模式等等。通过快速微量离子电渗法施加谷氨酸和GABA,可以精确研究谷氨酸能兴奋和GABA能抑制的空间和时间整合。关键的技术要求是要么使用触发荧光灯、发光二极管(LED),要么使用双光子扫描显微镜来可视化树突分支,而不会对组织造成明显的光损伤。此外,拥有一个能够对高电阻移液管进行快速电容补偿的微量离子电渗放大器非常重要。另一个关键点是在实验过程中移液管不会非自愿地释放递质。一旦建立,这项技术将给出具有高递质和位置特异性的可靠且可重复的信号。与谷氨酸和GABA光解相比,快速离子电渗法允许同时在非常远的位置使用这两种递质,而不受视野的限制。与轴突的局灶性电刺激相比也有优势:通过微量离子电渗法,输入部位的位置是明确已知的,并且可以确定只释放感兴趣的神经递质。然而,必须考虑到通过微量离子电渗法仅激活突触后,而神经递质释放的突触前方面无法解决。在本文中,我们展示了如何在脑片实验中设置微量离子电渗法。

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