Rocheleau Jessica M, Gage Steven D, Kobertz William R
Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School, Worcester, MA 01605, USA.
J Gen Physiol. 2006 Dec;128(6):721-9. doi: 10.1085/jgp.200609657.
Type I transmembrane KCNE peptides contain a conserved C-terminal cytoplasmic domain that abuts the transmembrane segment. In KCNE1, this region is required for modulation of KCNQ1 K(+) channels to afford the slowly activating cardiac I(Ks) current. We utilized alanine/leucine scanning to determine whether this region possesses any secondary structure and to identify the KCNE1 residues that face the KCNQ1 channel complex. Helical periodicity analysis of the mutation-induced perturbations in voltage activation and deactivation kinetics of KCNQ1-KCNE1 complexes defined that the KCNE1 C terminus is alpha-helical when split in half at a conserved proline residue. This helical rendering assigns all known long QT mutations in the KCNE1 C-terminal domain as protein facing. The identification of a secondary structure within the KCNE1 C-terminal domain provides a structural scaffold to map protein-protein interactions with the pore-forming KCNQ1 subunit as well as the cytoplasmic regulatory proteins anchored to KCNQ1-KCNE complexes.
I型跨膜KCNE肽包含一个与跨膜片段相邻的保守C端胞质结构域。在KCNE1中,该区域是调节KCNQ1钾通道以产生缓慢激活的心脏I(Ks)电流所必需的。我们利用丙氨酸/亮氨酸扫描来确定该区域是否具有任何二级结构,并识别面向KCNQ1通道复合体的KCNE1残基。对KCNQ1-KCNE1复合体电压激活和失活动力学中突变诱导的扰动进行螺旋周期性分析表明,当在一个保守的脯氨酸残基处将KCNE1 C端一分为二时,它是α螺旋结构。这种螺旋结构将KCNE1 C端结构域中所有已知的长QT突变定位为面向蛋白质的突变。KCNE1 C端结构域内二级结构的鉴定为绘制与形成孔道的KCNQ1亚基以及锚定在KCNQ1-KCNE复合体上的胞质调节蛋白之间的蛋白质-蛋白质相互作用提供了一个结构支架。