Boehringer Ingelheim Pharma GmbH & Co. KG, Dept. of CNS Diseases Research, Birkendorfer Strasse 65, 88397 Biberach, Germany.
J Neurosci Methods. 2011 Jan 15;194(2):394-401. doi: 10.1016/j.jneumeth.2010.11.006. Epub 2010 Nov 16.
A major challenge in neuroscience is identifying the cellular and molecular processes underlying learning and memory formation. In the past decades, significant progress has been made in understanding cellular and synaptic mechanisms underlying hippocampal learning and memory using long-term potentiation (LTP) experiments in brain slices as a model system. To expedite LTP measurements it is helpful to further optimize such recording systems. Here, we describe a modification of a multi-slice recording system (SliceMaster, Scientifica Limited, East Sussex, UK) that allows absolutely stable measurements of field excitatory postsynaptic potentials (fEPSPs) for up to 8 h in up to eight slices simultaneously. The software Notocord(®) was used for on-line data acquisition and to control the digital pattern generator which can generate different patterns for slice stimulation, inducing different types of LTP. Moreover, in contrast to common gravity-driven perfusion systems, a Pumped Perfusion System was employed to recycle drug solutions applied to the hippocampal slice. In addition, slices were positioned on two stacked grids for optimal recording of fEPSPs. These two stacked grids were placed in the measuring chambers allowing recordings for several hours without any perturbances. In summary, this modified slice-recording system improves throughput and allows for better statistical design, increases number of used slices per animal and enables very robust LTP measurements for up to 7 h. Hence, this system is suitable not only to investigate molecular mechanisms underlying the late phase of LTP, but also to screen candidate compounds in the context of drug discovery.
神经科学的一个主要挑战是确定学习和记忆形成的细胞和分子过程。在过去的几十年中,通过使用脑片上的长时程增强(LTP)实验作为模型系统,在理解海马体学习和记忆的细胞和突触机制方面取得了重大进展。为了加快 LTP 测量,进一步优化这种记录系统是有帮助的。在这里,我们描述了一种多片记录系统(SliceMaster,Scientifica Limited,East Sussex,UK)的改进,该系统允许在多达 8 个切片中同时对场兴奋性突触后电位(fEPSP)进行长达 8 小时的绝对稳定测量。Notocord(®)软件用于在线数据采集,并控制数字模式发生器,该发生器可以为切片刺激生成不同的模式,诱导不同类型的 LTP。此外,与常见的重力驱动灌注系统相比,使用了泵送灌注系统来循环应用于海马切片的药物溶液。此外,将切片放置在两个堆叠的网格上,以优化 fEPSP 的记录。这两个堆叠的网格放置在测量室中,允许在没有任何干扰的情况下进行数小时的记录。总之,这种改进的切片记录系统提高了吞吐量,允许更好的统计设计,增加了每个动物使用的切片数量,并能够进行长达 7 小时的非常稳健的 LTP 测量。因此,该系统不仅适用于研究 LTP 晚期的分子机制,也适用于药物发现背景下的候选化合物筛选。