Lingle Christopher J
Washington University School of Medicine, Department of Anesthesiology and Department of Anatomy and Neurobiology, St. Louis, MO 63110, USA.
J Neurosci Methods. 2006 Nov 15;158(1):121-32. doi: 10.1016/j.jneumeth.2006.05.027. Epub 2006 Jun 30.
Two fundamental properties of an ion channel are its single channel current (i) and its open probability (Po), which are most directly defined by single channel recordings. However, under some circumstances either practical limitations (e.g., extreme voltages) or unique channel properties may preclude the use of single channel recordings for definition of such properties. As an alternative, the variance in macroscopic currents (non-stationary noise analysis or variance-mean analysis) has been exploited to define fundamental elementary properties of the underlying channels. Although some limitations of the variance-mean approach have been considered in previous work by others, here simulation methods were used to define the conditions under which variance analysis can be suitable for providing estimates of i and Po. Of particular interest is the extent to which reasonably reliable estimates of Po can be obtained, even under conditions of Po less than 0.5. Empirically, the analysis indicates that, with sufficient numbers of sweeps and with constraints on initial estimates of i, reasonably reliable estimates of Po can be made down to 0.2. The impact of a number of other factors on the utility of variance-mean analysis are also considered, including effects of inactivation, filtering, and the consequences of particular gating schemes.
离子通道的两个基本特性是其单通道电流(i)和开放概率(Po),这两个特性最直接由单通道记录来定义。然而,在某些情况下,无论是实际限制(如极端电压)还是独特的通道特性,都可能使单通道记录无法用于定义这些特性。作为一种替代方法,宏观电流的方差(非平稳噪声分析或方差-均值分析)已被用于定义基础通道的基本特性。尽管其他人在先前的工作中已经考虑了方差-均值方法的一些局限性,但在此使用模拟方法来确定方差分析在何种条件下适用于提供i和Po的估计值。特别令人感兴趣的是,即使在Po小于0.5的条件下,能在多大程度上获得合理可靠的Po估计值。根据经验,分析表明,在有足够数量的扫描且对i的初始估计有约束的情况下,Po低至0.2时也能做出合理可靠的估计。还考虑了许多其他因素对方差-均值分析效用的影响,包括失活、滤波的影响以及特定门控方案的后果。