Baker O S, Larsson H P, Mannuzzu L M, Isacoff E Y
Group in Biophysics, University of California, Berkeley 94720-3200, USA.
Neuron. 1998 Jun;20(6):1283-94. doi: 10.1016/s0896-6273(00)80507-3.
We have acquired structural evidence that two components evident previously in the depolarization-evoked gating currents from voltage-gated Shaker K+ channels have their origin in sequential, two-step outward movements of the S4 protein segments. A point mutation greatly destabilizes the "fully retracted" state of S4 transmembrane translocation, causing instead an intermediate state to predominate at resting potentials. This state is distinguishable topologically and fluorometrically. That a point mutation effectively excludes half the range of S4 motion from physiological voltages suggests that the diverse sensitivities among voltage-gated channels might reflect not only differences in S4 valence, but also displacement. Existence of an intermediate subunit state helps explain why modeling channel activation has required positing greater than four closed states.
我们已经获得了结构证据,表明电压门控Shaker K+通道去极化诱发门控电流中先前明显的两个成分,起源于S4蛋白片段的连续两步向外移动。一个点突变极大地破坏了S4跨膜转运的“完全缩回”状态,反而导致中间状态在静息电位时占主导。这种状态在拓扑学和荧光测量上是可区分的。一个点突变有效地将S4运动范围的一半排除在生理电压之外,这表明电压门控通道之间的不同敏感性可能不仅反映了S4价态的差异,还反映了位移差异。中间亚基状态的存在有助于解释为什么对通道激活进行建模需要假设有超过四个的封闭状态。