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Voltage Clamp Fluorometric Measurements on a Type II Na+-coupled Pi Cotransporter: Shedding Light on Substrate Binding Order

机译:II型Na +耦合的Pi共转运蛋白上的电压钳荧光法测量:照亮基质结合顺序

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摘要

Voltage clamp fluorometry (VCF) combines conventional two-electrode voltage clamp with fluorescence measurements to detect protein conformational changes, as sensed by a fluorophore covalently attached to the protein. We have applied VCF to a type IIb Na+-coupled phosphate cotransporter (NaPi-IIb), in which a novel cysteine was introduced in the putative third extracellular loop and expressed in Xenopus oocytes. Labeling this cysteine (S448C) with methanethiosulfonate (MTS) reagents blocked cotransport function, however previous electrophysiological studies (Lambert G., I.C. Forster, G. Stange, J. Biber, and H. Murer. 1999. J. Gen. Physiol. 114:637–651) suggest that substrate interactions with the protein can still occur, thus permitting study of a limited subset of states. After labeling S448C with the fluorophore tetramethylrhodamine MTS, we detected voltage- and substrate-dependent changes in fluorescence (ΔF), which suggested that this site lies in an environment that is affected by conformational change in the protein. ΔF was substrate dependent (no ΔF was detectable in 0 mM Na+) and showed little correlation with presteady-state charge movements, indicating that the two signals provide insight into different underlying physical processes. Interpretation of ion substitution experiments indicated that the substrate binding order differs from our previous model (Forster, I., N. Hernando, J. Biber, and H. Murer. 1998. J. Gen. Physiol. 112:1–18). In the new model, two (rather than one) Na+ ions precede Pi binding, and only the second Na+ binding transition is voltage dependent. Moreover, we show that Li+, which does not drive cotransport, interacts with the first Na+ binding transition. The results were incorporated in a new model of the transport cycle of type II Na+/Pi cotransporters, the validity of which is supported by simulations that successfully predict the voltage and substrate dependency of the experimentally determined fluorescence changes.
机译:电压钳荧光法(VCF)将常规的两电极电压钳与荧光测量相结合,以检测蛋白质构象变化,这是由与蛋白质共价连接的荧光团检测到的。我们已经将VCF应用于IIb型Na + 偶联的磷酸盐共转运蛋白(NaPi-IIb),其中在假定的第三个细胞外环中引入了一个新的半胱氨酸,并在非洲爪蟾卵母细胞中表达。用甲硫代磺酸盐(MTS)试剂标记该半胱氨酸(S448C)会阻止共转运功能,但是先前的电生理研究(Lambert G.,IC Forster,G.Stange,J.Biber和H.Murer。1999. J. Gen. Physiol。114 :637–651)表明底物与蛋白质的相互作用仍然可以发生,因此允许研究有限的状态子集。用荧光基团四甲基罗丹明MTS标记S448C之后,我们检测到电压和底物依赖性的荧光变化(ΔF),这表明该位点位于受蛋白质构象变化影响的环境中。 ΔF取决于底物(在0 mM Na + 中未检测到ΔF),并且与稳态电荷移动几乎没有相关性,表明这两个信号提供了对不同底层物理过程的洞察力。离子取代实验的解释表明,底物的结合顺序不同于我们以前的模型(Forster,I.,N。Hernando,J。Biber和H.Murer。1998. J. Gen. Physiol。112:1-18)。在新模型中,两个(而不是一个)Na + 离子先于Pi结合,并且仅第二个Na + 结合跃迁与电压有关。此外,我们显示不驱动共转运的Li + 与第一个Na + 结合转变相互作用。将结果整合到II型Na + / Pi共转运蛋白的转运周期的新模型中,其有效性得到了模拟的支持,该模拟成功预测了实验确定的荧光变化的电压和底物依赖性。

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