Structure–Function Relations of the First and Fourth Predicted Extracellular Linkers of the Type IIa Na+/Pi Cotransporter
Open Access
- 25 October 2004
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 124 (5) , 475-488
- https://doi.org/10.1085/jgp.200409060
Abstract
The putative first intracellular and third extracellular linkers are known to play important roles in defining the transport properties of the type IIa Na+-coupled phosphate cotransporter (Kohler, K., I.C. Forster, G. Stange, J. Biber, and H. Murer. 2002b. J. Gen. Physiol. 120:693–705). To investigate whether other stretches that link predicted transmembrane domains are also involved, the substituted cysteine accessibility method (SCAM) was applied to sites in the predicted first and fourth extracellular linkers (ECL-1 and ECL-4). Mutants based on the wild-type (WT) backbone, with substituted novel cysteines, were expressed in Xenopus oocytes, and their function was assayed by isotope uptake and electrophysiology. Functionally important sites were identified in both linkers by exposing cells to membrane permeant and impermeant methanethiosulfonate (MTS) reagents. The cysteine modification reaction rates for sites in ECL-1 were faster than those in ECL-4, which suggested that the latter were less accessible from the extracellular medium. Generally, a finite cotransport activity remained at the end of the modification reaction. The change in activity was due to altered voltage-dependent kinetics of the Pi-dependent current. For example, cys substitution at Gly-134 in ECL-1 resulted in rate-limiting, voltage-independent cotransport activity for V ≤ −80 mV, whereas the WT exhibited a linear voltage dependency. After cys modification, this mutant displayed a supralinear voltage dependency in the same voltage range. The opposite behavior was documented for cys substitution at Met-533 in ECL-4. Modification of cysteines at two other sites in ECL-1 (Ile-136 and Phe-137) also resulted in supralinear voltage dependencies for hyperpolarizing potentials. Taken together, these findings suggest that ECL-1 and ECL-4 may not directly form part of the transport pathway, but specific sites in these linkers can interact directly or indirectly with parts of NaPi-IIa that undergo voltage-dependent conformational changes and thereby influence the voltage dependency of cotransport.Keywords
This publication has 30 references indexed in Scilit:
- Structure–Function Relations of the First and Fourth Extracellular Linkers of the Type IIa Na+/Pi CotransporterThe Journal of general physiology, 2004
- The Mitochondrial Citrate Transport ProteinJournal of Biological Chemistry, 2004
- Transport Function of the Renal Type IIa Na+/Pi Cotransporter Is Codetermined by Residues in Two Opposing Linker RegionsThe Journal of general physiology, 2002
- A Hydrophobic Domain in Glutamate Transporters Forms an Extracellular Helix Associated with the Permeation Pathway for SubstratesPublished by Elsevier ,2002
- Growth-related Renal Type II Na/Pi CotransporterPublished by Elsevier ,2002
- The Functional Unit of the Renal Type IIa Na+/Pi Cotransporter Is a MonomerJournal of Biological Chemistry, 2000
- Cysteine Residues and the Structure of the Rat Renal Proximal Tubular Type II Sodium Phosphate Cotransporter (Rat NaPi IIa)The Journal of Membrane Biology, 2000
- The Voltage Dependence of a Cloned Mammalian Renal Type II Na+/Pi Cotransporter (NaPi-2)The Journal of general physiology, 1998
- Identification of Acetylcholine Receptor Channel-Lining Residues in the M1 Segment of the β-SubunitBiochemistry, 1997
- Membrane Topology of the Human Na+/Glucose Cotransporter SGLT1Published by Elsevier ,1996