Relative CO 2 /NH 3 selectivities of AQP1, AQP4, AQP5, AmtB, and RhAG
- 31 March 2009
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 106 (13) , 5406-5411
- https://doi.org/10.1073/pnas.0813231106
Abstract
The water channel aquaporin 1 (AQP1) and certain Rh-family members are permeable to CO(2) and NH(3). Here, we use changes in surface pH (pH(S)) to assess relative CO(2) vs. NH(3) permeability of Xenopus oocytes expressing members of the AQP or Rh family. Exposed to CO(2) or NH(3), AQP1 oocytes exhibit a greater maximal magnitude of pH(S) change (DeltapH(S)) compared with day-matched controls injected with H(2)O or with RNA encoding SGLT1, NKCC2, or PepT1. With CO(2), AQP1 oocytes also have faster time constants for pH(S) relaxation (tau(pHs)). Thus, AQP1, but not the other proteins, conduct CO(2) and NH(3). Oocytes expressing rat AQP4, rat AQP5, human RhAG, or the bacterial Rh homolog AmtB also exhibit greater DeltapH(S)(CO(2)) and faster tau(pHs) compared with controls. Oocytes expressing AmtB and RhAG, but not AQP4 or AQP5, exhibit greater DeltapH(S)(NH(3)) values. Only AQPs exhibited significant osmotic water permeability (P(f)). We computed channel-dependent (*) DeltapH(S) or P(f) by subtracting values for H(2)O oocytes from those of channel-expressing oocytes. For the ratio DeltapH(S)(CO(2))*/P(f)*, the sequence was AQP5 > AQP1 congruent with AQP4. For DeltapH(S)(CO(2))*/DeltapH(S)(NH(3))*, the sequence was AQP4 congruent with AQP5 > AQP1 > AmtB > RhAG. Thus, each channel exhibits a characteristic ratio for indices of CO(2) vs. NH(3) permeability, demonstrating that, like ion channels, gas channels can exhibit selectivity.Keywords
This publication has 51 references indexed in Scilit:
- Concentration-Dependent Effects on Intracellular and Surface pH of Exposing Xenopus oocytes to Solutions Containing NH3/NH4 +The Journal of Membrane Biology, 2009
- Characterization of Human SLC4A10 as an Electroneutral Na/HCO3 Cotransporter (NBCn2) with Cl– Self-exchange ActivityJournal of Biological Chemistry, 2008
- The 1.3-Å resolution structure of Nitrosomonas europaea Rh50 and mechanistic implications for NH 3 transport by Rhesus family proteinsProceedings of the National Academy of Sciences, 2007
- Fast and Selective Ammonia Transport by Aquaporin-8Journal of Biological Chemistry, 2007
- The crystal structure of the Escherichia coli AmtB–GlnK complex reveals how GlnK regulates the ammonia channelProceedings of the National Academy of Sciences, 2007
- Aquaporin-1 Transports NO Across Cell MembranesHypertension, 2006
- Crystal structure of the archaeal ammonium transporter Amt-1 from Archaeoglobus fulgidusProceedings of the National Academy of Sciences, 2005
- The mechanism of ammonia transport based on the crystal structure of AmtB of Escherichia coliProceedings of the National Academy of Sciences, 2004
- Mechanism of Ammonia Transport by Amt/MEP/Rh: Structure of AmtB at 1.35 ÅScience, 2004
- Ammonium transport in Escherichia coli: localization and nucleotide sequence of the amtA geneJournal of General Microbiology, 1991