Sandtner Walter, Bezanilla Francisco, Correa Ana M
Department of Pediatrics, Institute for Molecular Pediatric Sciences, Gordon Center for Integrative Science, University of Chicago, Chicago, Illinois 60637, USA.
Biophys J. 2007 Nov 1;93(9):L45-7. doi: 10.1529/biophysj.107.119073. Epub 2007 Aug 31.
The function of membrane proteins occurs in the context of the cell membrane in living cells acting in concert with various cell components such as other proteins, cofactors, etc. The understanding of the function at the molecular level requires structural techniques, but high resolution structural studies are normally obtained in vitro and in artificial membranes or detergent. Ideally the correlation of structure and function should be carried out in the native environment but most of the techniques applicable in vivo lack the high resolution necessary to track conformational changes on a molecular level. Here we report on the successful application of an improved variant of lanthanide-based resonance energy transfer a fluorescent based technique, to Shaker potassium channels expressed in live Xenopus oocytes. Lanthanide-based resonance energy transfer is particularly suitable to measure intramolecular distances with high resolution. The improvements reported in this work are mainly based on the use of two different small genetically encoded tags (the Lanthanide Binding Tag and the hexa-histidine tag), which due to their small size can be encoded at will in many positions of interest without distorting the protein's function. The technique reported here has the additional improvement that the two tags can be placed independently in contrast to previously described techniques that rely on chemical labeling procedures of thiols.
膜蛋白的功能在活细胞的细胞膜环境中发挥作用,与各种细胞成分如其他蛋白质、辅因子等协同作用。在分子水平上理解其功能需要结构技术,但高分辨率结构研究通常是在体外、人工膜或去污剂中获得的。理想情况下,结构与功能的关联应在天然环境中进行,但大多数适用于体内的技术缺乏在分子水平上追踪构象变化所需的高分辨率。在此,我们报告了基于镧系元素的共振能量转移(一种基于荧光的技术)的改进变体在爪蟾卵母细胞中表达的Shaker钾通道上的成功应用。基于镧系元素的共振能量转移特别适合于高分辨率测量分子内距离。本工作中报道的改进主要基于使用两种不同的小的基因编码标签(镧系元素结合标签和六组氨酸标签),由于它们尺寸小,可以随意编码在许多感兴趣的位置而不扭曲蛋白质的功能。与先前依赖硫醇化学标记程序的技术相比,这里报道的技术还有一个额外的改进,即这两种标签可以独立放置。