Voltage Clamp Fluorometric Measurements on a Type II Na+-coupled Pi Cotransporter: Shedding Light on Substrate Binding Order
Open Access
- 24 April 2006
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 127 (5) , 539-555
- https://doi.org/10.1085/jgp.200609496
Abstract
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 (DeltaF), which suggested that this site lies in an environment that is affected by conformational change in the protein. DeltaF was substrate dependent (no DeltaF 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.Keywords
This publication has 32 references indexed in Scilit:
- Structure–Function Relations of the First and Fourth Predicted Extracellular Linkers of the Type IIa Na+/Pi CotransporterThe Journal of general physiology, 2004
- Structure–Function Relations of the First and Fourth Extracellular Linkers of the Type IIa Na+/Pi CotransporterThe Journal of general physiology, 2004
- Fluorometric measurements of conformational changes in glutamate transportersProceedings of the National Academy of Sciences, 2004
- The Voltage Dependence of a Cloned Mammalian Renal Type II Na+/Pi Cotransporter (NaPi-2)The Journal of general physiology, 1998
- Conformational changes couple Na + and glucose transportProceedings of the National Academy of Sciences, 1998
- Identification of Acetylcholine Receptor Channel-Lining Residues in the M1 Segment of the β-SubunitBiochemistry, 1997
- Characterizing Voltage-Dependent Conformational Changes in the K Channel with FluorescenceNeuron, 1997
- Electrophysiological Characterization of the Flounder Type II Na + /P i Cotransporter (NaPi-5) Expressed in Xenopus laevis OocytesThe Journal of Membrane Biology, 1997
- Ion Binding and Permeation at the GABA Transporter GAT1Journal of Neuroscience, 1996
- Direct Physical Measure of Conformational Rearrangement Underlying Potassium Channel GatingScience, 1996