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Series resistance compensation for whole-cell patch-clamp studies using a membrane state estimator

机译:使用膜态估计器进行全细胞膜片钳研究的串联电阻补偿

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摘要

Whole-cell patch-clamp techniques are widely used to measure membrane currents from isolated cells. While suitable for a broad range of ionic currents, the series resistance (R(s)) of the recording pipette limits the bandwidth of the whole-cell configuration, making it difficult to measure rapid ionic currents. To increase bandwidth, it is necessary to compensate for R(s). Most methods of R(s) compensation become unstable at high bandwidth, making them hard to use. We describe a novel method of R(s) compensation that overcomes the stability limitations of standard designs. This method uses a state estimator, implemented with analog computation, to compute the membrane potential, V(m), which is then used in a feedback loop to implement a voltage clamp; we refer to this as state estimator R(s) compensation. To demonstrate the utility of this approach, we built an amplifier incorporating state estimator R(s) compensation. In benchtop tests, our amplifier showed significantly higher bandwidths and improved stability when compared with a commercially available amplifier. We demonstrated that state estimator R(s) compensation works well in practice by recording voltage-gated Na(+) currents under voltage-clamp conditions from dissociated neonatal rat sympathetic neurons. We conclude that state estimator R(s) compensation should make it easier to measure large rapid ionic currents with whole-cell patch-clamp techniques.
机译:全细胞膜片钳技术被广泛用于测量分离细胞的膜电流。尽管适用于广泛的离子电流,但记录移液器的串联电阻(R(s))限制了整个细胞配置的带宽,从而难以测量快速的离子电流。为了增加带宽,有必要补偿R(s)。 R(s)补偿的大多数方法在高带宽时变得不稳定,使其难以使用。我们描述了一种新颖的R(s)补偿方法,该方法克服了标准设计的稳定性局限性。该方法使用通过模拟计算实现的状态估计器来计算膜电位V(m),然后将其用于反馈环路中以实现电压钳位。我们将其称为状态估计器R(s)补偿。为了证明这种方法的实用性,我们构建了一个包含状态估计器R(s)补偿的放大器。在台式测试中,与市售放大器相比,我们的放大器显示出明显更高的带宽和更高的稳定性。我们证明了状态估计器R(s)的补偿在实践中可以很好地工作,它通过在电压钳制条件下记录离体新生大鼠交感神经元的电压门控Na(+)电流。我们得出的结论是,状态估计器R(s)的补偿应使使用全细胞膜片钳技术更容易测量大的快速离子电流。

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