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Modalities of distortion of physiological voltage signals by patch-clamp amplifiers: a modeling study.

机译:膜片钳放大器对生理电压信号失真的模态:模型研究。

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摘要

An extensive evaluation of the possible alterations affecting physiological voltage signals recorded with patch-clamp amplifiers (PCAs) working in the current-clamp (CC) mode was carried out by following a modeling approach. The PCA output voltage and current signals obtained during CC recordings performed under simplified experimental conditions were exploited to determine the equations describing the generation of error currents and voltage distortions by PCAs. The functions thus obtained were used to construct models of PCAs working in the CC mode, which were coupled to numerical simulations of neuronal bioelectrical behavior; this allowed us to evaluate the effects of the same PCAs on different physiological membrane-voltage events. The models revealed that rapid signals such as fast action potentials are preferentially affected, whereas slower events, such as low-threshold spikes, are less altered. Prominent effects of model PCAs on fast action potentials were alterations of their amplitude, duration, depolarization and repolarization speeds, and, most notably, the generation of spurious afterhyperpolarizations. Processes like regular firing and burst firing could also be altered, under particular conditions, by the model PCAs. When a cell consisting of more than one single intracellular compartment was considered, the model PCAs distorted fast equalization transients. Furthermore, the effects of different experimental and cellular parameters (series resistance, cell capacitance, temperature) on PCA-generated artifacts were analyzed. Finally, the simulations indicated that no off-line correction based on manipulations of the error-current signals returned by the PCAs can be successfully performed in the attempt to recover unperturbed voltage signals, because of alterations of the overall current flowing through the cell-PCA system.
机译:通过遵循一种建模方法,对在电流钳(CC)模式下工作的膜片钳放大器(PCA)记录的影响生理电压信号的可能变化的可能变化进行了广泛的评估。利用在简化的实验条件下进行CC记录期间获得的PCA输出电压和电流信号来确定描述PCA产生误差电流和电压失真的方程式。由此获得的功能被用于构建以CC模式工作的PCA模型,并与神经元生物电行为的数值模拟相结合。这使我们能够评估同一PCA对不同生理膜电压事件的影响。这些模型显示,诸如快速动作电位之类的快速信号会受到优先影响,而诸如低阈值尖峰之类的较慢事件则受到的影响较小。模型PCA对快速动作电位的突出影响是其幅度,持续时间,去极化和复极化速度的变化,最明显的是伪超极化的产生。在特定条件下,模型PCA也可以更改常规点火和突发点火等过程。当考虑由一个以上的单个细胞内区室组成的细胞时,模型PCA会使快速均衡瞬变失真。此外,分析了不同的实验和细胞参数(串联电阻,电池电容,温度)对PCA产生的伪影的影响。最后,模拟结果表明,由于流过电池PCA的总电流发生了变化,因此无法成功执行基于PCA返回的误差电流信号的离线校正,以尝试恢复不受干扰的电压信号。系统。

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