Fan Zhuo, Ji Xuying, Fu Mingyu, Zhang Wanming, Zhang Du, Xiao Zhongju
Department of Physiology, School of Basic Medical Sciences, Southern Medical University, Guangzhou 510515, China.
Biochim Biophys Acta. 2012 Jan;1818(1):55-63. doi: 10.1016/j.bbamem.2011.09.028. Epub 2011 Oct 4.
Inactivation of potassium channels plays an important role in shaping the electrical signaling properties of nerve and muscle cells. The rapid inactivation of Kv1.4 has been assumed to be controlled by a "ball and chain" inactivation mechanism. Besides hydrophobic interaction between inactivation ball and the channel's inner pore, the electrostatic interaction has also been proved to participate in the "ball and chain" inactivation process of Kv1.4 channel. Based on the crystal structure of Kv1.2 channel, the acidic T1-S1 linker is indicated to be a candidate interacting with the positively charged hydrophilic region of the inactivation domain. In this study, through mutating the charged residues to amino acids of opposite polar, we identified the electrostatic interaction between the inactivation ball and the T1-S1 linker region of Kv1.4 channel. Inserting negatively charged peptide at the amino terminal of Kv1.4 channel further confirmed the electrostatic interaction between the two regions.
钾通道的失活在塑造神经和肌肉细胞的电信号特性中起着重要作用。Kv1.4的快速失活被认为受“球-链”失活机制控制。除了失活球与通道内部孔道之间的疏水相互作用外,静电相互作用也被证明参与了Kv1.4通道的“球-链”失活过程。基于Kv1.2通道的晶体结构,酸性的T1-S1连接子被认为是与失活结构域带正电的亲水区相互作用的候选者。在本研究中,通过将带电荷的残基突变为相反极性的氨基酸,我们确定了Kv1.4通道失活球与T1-S1连接子区域之间的静电相互作用。在Kv1.4通道的氨基末端插入带负电荷的肽进一步证实了这两个区域之间的静电相互作用。