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MATLAB-based Simulation of Whole-Cell and Single-Channel Currents

机译:基于MATLAB的全电池和单通道电流仿真

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摘要

Mathematical models of electrophysiological data are used to investigate biophysical mechanisms that underlie electrical excitability. Although the resources and time required for obtaining experimental data to create these models may not be available to undergraduates enrolled in a biophysics course, computational tools that simulate cellular or single-channel responses to electrophysiological stimuli can be utilized to provide these data. We have developed two MATLAB-based simulation packages that are being used in a cellular electrophysiology course for upper-level undergraduate engineering students to demonstrate the design of electrophysiological stimuli, and the analysis and modeling of ionic currents in excitable tissues. The first package simulates a Hodgkin-Huxley style voltage-gated current elicited during voltage-clamp experiments. Users specify the duration and magnitude of a voltage waveform; the model returns a simulated whole-cell current traces with superimposed noise, and various measurements including peak current, steady state current, and time constants from exponential fits of the current time course. The second package simulates a voltage- or ligand-gated single-channel current as a stochastic process using a state transition matrix. Users specify the membrane voltage, ligand concentration, and number of trials; the model returns simulated single-channel current traces with superimposed noise, and various measurements including amplitude and dwell time histograms. This software has been used during lectures to demonstrate various principles in class, and for class projects in which students derive kinetic models that underlie currents obtained during whole-cell and single-channel recordings. These software packages are freely available and can be downloaded at .
机译:电生理数据的数学模型用于研究作为电兴奋性基础的生物物理机制。虽然获得生物模型课程实验数据所需的资源和时间可能不适用于生物物理学课程的大学生,但是可以使用模拟细胞或单通道对电生理刺激反应的计算工具来提供这些数据。我们已经开发了两个基于MATLAB的仿真程序包,这些程序包已在细胞电生理学课程中用于高年级本科工程专业学生,以演示电生理刺激的设计以及可兴奋组织中离子电流的分析和建模。第一个程序包模拟了在电压钳实验期间产生的霍奇金-赫克斯利(Hodgkin-Huxley)式电压门控电流。用户指定电压波形的持续时间和幅度;该模型返回带有叠加噪声的模拟全细胞电流轨迹,以及各种测量值,包括峰值电流,稳态电流和来自当前时间过程的指数拟合的时间常数。第二个程序包使用状态转移矩阵将电压或配体门控的单通道电流模拟为随机过程。用户指定膜电压,配体浓度和试验次数;该模型返回带有叠加噪声的模拟单通道电流轨迹,以及各种测量值,包括幅度和停留时间直方图。该软件已在演讲期间用于演示课堂上的各种原理,并用于课堂项目,在该项目中,学生可以得出动力学模型,该动力学模型是全细胞和单通道录音过程中获得的电流的基础。这些软件包是免费提供的,可以从下载。

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