Department of Molecular Pharmacology, Physiology and Biotechnology, Brown University, Providence, RI, USA.
Channels (Austin). 2010 Mar-Apr;4(2):115-23. doi: 10.4161/chan.4.2.10878. Epub 2010 Mar 8.
We report the first successful insertion of an engineered, high-affinity alpha-bungarotoxin (Bgtx) binding site into a voltage-gated ion channel, K(V)4.2, using a short, intra-protein embedded sequence (GGWRYYESSLEPYPDGG), derived from a previously described mimotope peptide, HAP. A major benefit to this approach is the ability to live-image the distribution and fate of functional channels on the plasma membrane surface. The Bgtx binding sequence was introduced into the putative extracellular loop between the S1 and S2 transmembrane domains of K(V)4.2. Following co-expression with KChIP3 in tsA201 cells, S1-S2 HAP-tagged channels express at levels comparable to wild-type K(V)4.2, and their activation and inactivation kinetics are minimally altered under most conditions. Binding assays, as well as live staining of surface-expressed K(V)4.2 channels with fluorescent-Bgtx, readily demonstrate specific binding of Bgtx to HAP-tagged K(V)4.2 expressed on the surface of tsA201 cells. Similar live-imaging results were obtained with HAP-tagged K(V)4.2 transfected into hippocampal neurons in primary culture suggesting applicability for future in vivo studies. Furthermore, the activation kinetics of S1-S2-tagged K(V)4.2 channels are minimally affected by the binding of Bgtx, suggesting a limited role if any for the S1-S2 loop in voltage sensing or gating associated conformational changes. Successful functional insertion of the HAP sequence into the S1-S2 linker of K(V)4.2 suggests that other related channels may similarly be amenable to this tagging strategy.
我们报告了首例成功将工程化的高亲和力α-银环蛇毒素(Bgtx)结合位点插入电压门控离子通道 K(V)4.2 的实例,该方法使用源自先前描述的模拟肽 HAP 的短的、蛋白内嵌入序列(GGWRYYESSLEPYPDGG)。这种方法的一个主要优点是能够实时成像质膜表面上功能性通道的分布和命运。Bgtx 结合序列被引入 K(V)4.2 的 S1 和 S2 跨膜结构域之间假定的细胞外环中。在与 KChIP3 在 tsA201 细胞中共表达后,S1-S2 HAP 标记的通道表达水平与野生型 K(V)4.2 相当,并且在大多数条件下,其激活和失活动力学几乎没有改变。结合测定以及用荧光 Bgtx 对表面表达的 K(V)4.2 通道进行的实时染色实验均证实了 Bgtx 与在 tsA201 细胞表面表达的 HAP 标记的 K(V)4.2 的特异性结合。用 HAP 标记的 K(V)4.2 转染原代培养的海马神经元中也获得了类似的实时成像结果,表明该方法适用于未来的体内研究。此外,S1-S2 标记的 K(V)4.2 通道的激活动力学受 Bgtx 结合的影响很小,这表明 S1-S2 环在电压感应或与门控相关的构象变化中即使有作用也非常有限。HAP 序列成功地功能性插入 K(V)4.2 的 S1-S2 接头中表明,其他相关通道可能也适用于这种标记策略。