Lainé Muriel, Papazian Diane M, Roux Benoît
Rockefeller University, 1280 York Ave, New York, NY 10021, USA.
FEBS Lett. 2004 Apr 30;564(3):257-63. doi: 10.1016/S0014-5793(04)00273-X.
Detailed three-dimensional structures at atomic resolution are essential to understand how voltage-activated K(+) channels function. The X-ray crystallographic structure of the KvAP channel has offered the first view at atomic resolution of the molecular architecture of a voltage-activated K(+) channel. In the crystal, the voltage sensors are bound by monoclonal Fab fragments, which apparently induce a non-native conformation of the tetrameric channel. Thus, despite this significant advance our knowledge of the native conformation of a Kv channel in a membrane remains incomplete. Numerous results from different experimental approaches provide very specific constraints on the structure of K(+) channels in functional conformations. These results can be used to go further in trying to picture the native conformation of voltage-gated K(+) channels. However, the direct translation of all the available information into three-dimensional models is not straightforward and many questions about the structure of voltage-activated K(+) channels are still unanswered. Our aim in this review is to summarize the most important pieces of information currently available and to provide a critical assessment of the model of Shaker recently proposed by Lainé et al.
原子分辨率下的详细三维结构对于理解电压门控钾离子通道的功能至关重要。KvAP通道的X射线晶体结构首次提供了原子分辨率下电压门控钾离子通道分子结构的视图。在晶体中,电压传感器被单克隆Fab片段结合,这显然诱导了四聚体通道的非天然构象。因此,尽管取得了这一重大进展,但我们对膜中Kv通道天然构象的了解仍然不完整。来自不同实验方法的大量结果对功能构象下钾离子通道的结构提供了非常具体的限制。这些结果可用于进一步尝试描绘电压门控钾离子通道的天然构象。然而,将所有可用信息直接转化为三维模型并非易事,关于电压门控钾离子通道结构的许多问题仍然没有答案。我们撰写这篇综述的目的是总结目前可用的最重要信息,并对Lainé等人最近提出的Shaker模型进行批判性评估。