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An optimized approach to membrane capacitance estimation using dual-frequency excitation.

机译:一种使用双频激励的膜电容估计的优化方法。

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摘要

We present an optimized solution to the problem of membrane impedance estimation when a patch-clamped cell is stimulated by a dual-frequency, sinusoidal excitation. The complete data set of raw whole-cell current samples is typically reduced, via digital lock-in detection, to measurements of the complex cell model admittance at the two stimulus frequencies. We describe a statistical model of both data sets and demonstrate that the admittance data adequately represent the essential features obtained from the raw data. The parameter estimates obtained by a nonlinear weighted least-squares solution (NWLS), which under normal recording conditions is equivalent to the maximum likelihood solution, essentially obtain the theoretical lower bound on variance established by the Cramér-Rao bound. Our software implementation of the NWLS solution produces estimates of the cell model parameters that are less noisy than other dual-frequency systems. Our system can be used 1) to measure slow changes in membrane capacitance-in the face of large, slow changes in membrane resistance, 2) to detect with confidence capacitance changes expected from the exocytosis of moderate-sized dense core granules, and 3) to reduce the cross-talk between transient changes in membrane conductance and membrane capacitance.
机译:当膜片夹细胞被双频正弦激励刺激时,我们提出了一种针对膜阻抗估计问题的优化解决方案。通常,通过数字锁定检测将原始全细胞电流样本的完整数据集减少为两个刺激频率下复杂细胞模型导纳的测量值。我们描述了两个数据集的统计模型,并证明了导纳数据足以代表从原始数据获得的基本特征。由非线性加权最小二乘解(NWLS)获得的参数估计值(在正常记录条件下等效于最大似然解)基本上获得了由Cramér-Rao界建立的方差的理论下界。我们对NWLS解决方案的软件实现可产生比其他双频系统低噪声的蜂窝模型参数估计值。我们的系统可用于1)测量膜电容的缓慢变化-面对大而缓慢的膜电阻变化; 2)可以放心地检测中型致密核颗粒的胞吐作用所预期的电容变化;以及3)以减少膜电导和膜电容的瞬态变化之间的串扰。

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