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A fluorescence energy transfer method for analyzing protein oligomeric structure: application to phospholamban.

机译:用于分析蛋白质寡聚结构的荧光能量转移方法:在phosphorlamban中的应用。

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摘要

We have developed a method using fluorescence energy transfer (FET) to analyze protein oligomeric structure. Two populations of a protein are labeled with fluorescent donor and acceptor, respectively, then mixed at a defined donor/acceptor ratio. A theoretical simulation, assuming random mixing and association among protein subunits in a ring-shaped homo-oligomer, was used to determine the dependence of FET on the number of subunits, the distance between labeled sites on different subunits, and the fraction of subunits remaining monomeric. By measuring FET as a function of the donor/acceptor ratio, the above parameters of the oligomeric structure can be resolved over a substantial range of their values. We used this approach to investigate the oligomeric structure of phospholamban (PLB), a 52-amino acid protein in cardiac sarcoplasmic reticulum (SR). Phosphorylation of PLB regulates the SR Ca-ATPase. Because PLB exists primarily as a homopentamer on sodium dodecyl sulfate polyacrylamide gel electrophoresis, it has been proposed that the pentameric structure of PLB is important for its regulatory function. However, this hypothesis must be tested by determining directly the oligomeric structure of PLB in the lipid membrane. To accomplish this goal, PLB was labeled at Lys-3 in the cytoplasmic domain, with two different amine-reactive donor/acceptor pairs, which gave very similar FET results. In detergent solutions, FET was not observed unless the sample was first boiled to facilitate subunit mixing. In lipid bilayers, FET was observed at 25 degrees C without boiling, indicating a dynamic equilibrium among PLB subunits in the membrane. Analysis of the FET data indicated that the dye-labeled PLB is predominantly in oligomers having at least 8 subunits, that 7-23% of the PLB subunits are monomeric, and that the distance between dyes on adjacent PLB subunits is about 10 A. A point mutation of PLB (L37A) that runs as monomer on SDS-PAGE showed no energy transfer, confirming its monomeric state in the membrane. We conclude that FET is a powerful approach for analyzing the oligomeric structure of PLB, and this method is applicable to other oligomeric proteins.
机译:我们已经开发出一种使用荧光能量转移(FET)分析蛋白质寡聚结构的方法。分别用荧光供体和受体标记两个蛋白质种群,然后以定义的供体/受体比例混合。假设在环状均聚物中蛋白质亚基之间随机混合和缔合,通过理论模拟来确定FET对亚基数量,不同亚基上标记位点之间的距离以及剩余亚基比例的依赖性单体的。通过测量作为供体/受体比例的函数的FET,可以在其值的相当大的范围内解析出寡聚结构的上述参数。我们使用这种方法来研究phospholamban(PLB),一种在心脏肌质网(SR)中的52个氨基酸的蛋白质的寡聚结构。 PLB的磷酸化调节SR Ca-ATPase。由于PLB在十二烷基硫酸钠聚丙烯酰胺凝胶电泳上主要作为均戊烯存在,因此提出PLB的五聚体结构对其调节功能很重要。但是,必须通过直接确定脂质膜中PLB的寡聚结构来检验该假设。为了实现这一目标,PLB被标记在胞质域的Lys-3处,具有两个不同的胺反应性供体/受体对,这提供了非常相似的FET结果。在洗涤剂溶液中,除非先将样品煮沸以促进亚基混合,否则不会观察到FET。在脂质双层中,在25摄氏度下未观察到沸腾的FET,表明膜中PLB亚基之间存在动态平衡。 FET数据分析表明,染料标记的PLB主要存在于具有至少8个亚基的低聚物中,其中7-23%的PLB亚基是单体,相邻PLB亚基上的染料之间的距离约为10A。在SDS-PAGE上作为单体运行的PLB(L37A)的点突变未显示出能量转移,证实了其在膜中的单体状态。我们得出的结论是,FET是分析PLB寡聚结构的有力方法,该方法适用于其他寡聚蛋白。

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