Labro Alain J, Raes Adam L, Bellens Iris, Ottschytsch Natacha, Snyders Dirk J
Laboratory for Molecular Biophysics, Physiology and Pharmacology, Department of Biomedical Sciences, University of Antwerp, Universiteitsplein 1, 2610 Antwerp, Belgium.
J Biol Chem. 2003 Dec 12;278(50):50724-31. doi: 10.1074/jbc.M306097200. Epub 2003 Sep 17.
The recent crystallization of a voltage-gated K+ channel has given insight into the structure of these channels but has not resolved the issues of the location and the operation of the gate. The conserved PXP motif in the S6 segment of Shaker channels has been proposed to contribute to the intracellular gating structure. To investigate the role of this motif in the destabilization of the alpha-helix, both prolines were replaced to promote an alpha-helix (alanine) or to allow a flexible configuration (glycine). These substitutions were nonfunctional or resulted in drastically altered channel gating, highlighting an important role of these prolines. Combining these mutations with a proline substitution scan demonstrated that proline residues in the midsection of S6 are required for functionality, but not necessarily at the positions conserved throughout evolution. These results indicate that the destabilization or bending of the S6 alpha-helix caused by the PXP motif apparently creates a flexible "hinge" that allows movement of the lower S6 segment during channel gating and opening.
最近电压门控钾离子通道的晶体结构已揭示了这些通道的结构,但尚未解决门控的位置和运作问题。有人提出,Shaker通道S6片段中保守的PXP基序有助于形成细胞内门控结构。为了研究该基序在α-螺旋不稳定中的作用,将两个脯氨酸都进行了替换,以促进α-螺旋形成(替换为丙氨酸)或形成灵活构象(替换为甘氨酸)。这些替换没有功能,或导致通道门控发生剧烈改变,突出了这些脯氨酸的重要作用。将这些突变与脯氨酸替换扫描相结合表明,S6中部的脯氨酸残基是通道功能所必需的,但不一定是在整个进化过程中保守的位置。这些结果表明,由PXP基序引起的S6α-螺旋的不稳定或弯曲显然形成了一个灵活的“铰链”,使得通道门控和开放过程中S6片段下部能够移动。