Finkelstein A, Peskin C S
Biophys J. 1984 Nov;46(5):549-58. doi: 10.1016/S0006-3495(84)84053-9.
We consider a model for voltage-dependent gating of channels in which the gating charges are on the channel wall and move only a small distance. When this movement occurs across the closed gate, the charges move through the entire transmembrane potential, which is energetically equivalent to their moving across the entire membrane. The channel exists in two open states, O1 and O2, and two closed states, C1 and C2; each open and closed configuration is divided into two states because of the two possible positions of the gating charges. An unusual property of this model is that the electrical work in going from an open to a closed configuration (for example, in going from O1 to C2) is path dependent, and net work can result from going reversibly around a complete cycle. The model channel, like many biological channels, shows bursting activity. This flickering on and off of the channel enables the gate to sense the electric field and decide if it should be in the open or closed configuration. We prove here some general theorms concerning the electrical work associated with the movements of the walls of channels and the movements of charges on these walls.
我们考虑一种通道电压依赖性门控模型,其中门控电荷位于通道壁上,且仅移动很小的距离。当这种移动发生在关闭的门控区域时,电荷会穿越整个跨膜电位,这在能量上等同于它们穿越整个膜。通道存在两种开放状态,即O1和O2,以及两种关闭状态,即C1和C2;由于门控电荷的两种可能位置,每种开放和关闭构型又被分为两种状态。该模型的一个不寻常特性是,从开放构型转变为关闭构型时(例如,从O1转变为C2)的电功取决于路径,并且通过可逆地围绕一个完整循环可能会产生净功。该模型通道与许多生物通道一样,呈现出爆发性活动。通道的这种闪烁开启和关闭使得门控能够感知电场并决定其应处于开放还是关闭构型。我们在此证明一些关于与通道壁运动以及这些壁上电荷运动相关的电功的一般定理。