Expression of a Renal Type I Sodium/Phosphate Transporter (NaPi-1) Induces a Conductance in Xenopus Oocytes Permeable for Organic and Inorganic Anions

Two distinct molecular types (I and II) of renal proximal tubular brush border Na+/Pi cotransporters have been identified by expression cloning on the basis of their capacity to induce Na+-dependent Pi influx in tracer experiments. Whereas the type II transporters (e.g., NaPi-2 and NaPi-3) resemble...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 1996-05, Vol.93 (11), p.5347-5351
Hauptverfasser: Busch, Andreas E., Schuster, Andreas, Waldegger, Siegfried, Wagner, Carsten A., Zempel, Günther, Broer, Stefan, Biber, Jürg, Murer, Heini, Lang, Florian
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Sprache:eng
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Zusammenfassung:Two distinct molecular types (I and II) of renal proximal tubular brush border Na+/Pi cotransporters have been identified by expression cloning on the basis of their capacity to induce Na+-dependent Pi influx in tracer experiments. Whereas the type II transporters (e.g., NaPi-2 and NaPi-3) resemble well known characteristics of brush border Na+/Pi cotransport, little is known about the properties of the type I transporter (NaPi-1). In contrast to type II, type I transporters produced electrogenic transport only at high extracellular Pi concentrations (≥ 3 mM). On the other hand, expression of NaPi-1 induced a Cl- conductance in Xenopus laevis oocytes, which was inhibited by Cl- channel blockers [5-nitro-2-(3-phenylpropylamino)benzoic acid (NPPB) > niflumic acid ≫ 4,4′-diisothiocyanatostilbene-2,2′ -disulfonic acid]. Further, the Cl- conductance was inhibited by the organic anions phenol red, benzylpenicillin (penicillin G), and probenecid. These organic anions induced outwardly directed currents in the absence of Cl-. In tracer studies, we observed uptake of benzylpenicillin with a Km of 0.22 mM; benzylpenicillin uptake was inhibited by NPPB and niflumic acid. These findings suggest that the type I Na+/Pi cotransporter functions also as a novel type of anion channel permeable not only for Cl- but also for organic anions. Such an apical anion channel could serve an important role in the transport of Cl- and the excretion of anionic xenobiotics.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.93.11.5347