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Expanding neurochemical investigations with multi-modal recording: simultaneous fast-scan cyclic voltammetry iontophoresis and patch clamp measurements

机译:通过多模式记录扩展神经化学研究:同步快速扫描循环伏安法离子电渗疗法和膜片钳测量

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摘要

Multi-modal recording describes the simultaneous collection of information across distinct domains. Compared to isolated measurements, such studies can more easily determine relationships between varieties of phenomena. This is useful for neurochemical investigations which examine cellular activity in response to changes in the local chemical environment. In this study, we demonstrate a method to perform simultaneous patch clamp measurements with fast-scan cyclic voltammetry (FSCV) using optically isolated instrumentation. A model circuit simulating concurrent measurements was used to predict the electrical interference between instruments. No significant impact was anticipated between methods, and predictions were largely confirmed experimentally. One exception was due to capacitive coupling of the FSCV potential waveform into the patch clamp amplifier. However, capacitive transients measured in whole-cell current clamp recordings were well below the level of biological signals, which allowed the activity of cells to be easily determined. Next, the activity of medium spiny neurons (MSNs) was examined in the presence of an FSCV electrode to determine how the exogenous potential impacted nearby cells. The activities of both resting and active MSNs were unaffected by the FSCV waveform. Additionally, application of an iontophoretic current, used to locally deliver drugs and other neurochemicals, did not affect neighboring cells. Finally, MSN activity was monitored during iontophoretic delivery of glutamate, an excitatory neurotransmitter. Membrane depolarization and cell firing were observed concurrently with chemical changes around the cell resulting from delivery. In all, we show how combined electrophysiological and electrochemical measurements can relate information between domains and increase the power of neurochemical investigations.
机译:多模式记录描述了跨不同域的同时信息收集。与孤立的测量相比,此类研究可以更轻松地确定各种现象之间的关系。这对于神经化学研究很有用,因为神经化学研究会根据局部化学环境的变化检查细胞活性。在这项研究中,我们演示了一种使用光学隔离仪器通过快速扫描循环伏安法(FSCV)进行同时膜片钳测量的方法。模拟并行测量的模型电路用于预测仪器之间的电气干扰。预计方法之间不会产生重大影响,并且预测在很大程度上已通过实验得到证实。一个例外是由于FSCV电位波形电容耦合到膜片钳放大器中。然而,在全细胞电流钳记录中测得的电容瞬变远低于生物信号的水平,这使得细胞活性易于确定。接下来,在存在FSCV电极的情况下检查了中棘神经元(MSN)的活性,以确定外源电位如何影响附近的细胞。 FSCV波形不影响静止和活动MSN的活动。另外,用于局部递送药物和其他神经化学物质的离子电渗流的施加并未影响邻近细胞。最后,在谷氨酸(一种兴奋性神经递质)的离子电渗传递过程中监测MSN活性。观察到膜去极化和细胞放电,同时由于递送导致细胞周围的化学变化。总而言之,我们展示了电生理和电化学测量的组合如何能够关联域之间的信息并增加神经化学研究的力量。

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