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PMID: 11382805 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Early intermediates in the transport cycle of the neuronal excitatory amino acid carrier EAAC1.

The Journal of general physiology ·Vol. 117 ·No. 6 ·2001-06-00 ·Pages 547-62

Watzke N, Bamberg E, Grewer C

Abstract

Electrogenic glutamate transport by the excitatory amino acid carrier 1 (EAAC1) is associated with multiple charge movements across the membrane that take place on time scales ranging from microseconds to milliseconds. The molecular nature of these charge movements is poorly understood at present and, therefore, was studied in this report in detail by using the technique of laser-pulse photolysis of caged glutamate providing a 100-micros time resolution. In the inward transport mode, the deactivation of the transient component of the glutamate-induced coupled transport current exhibits two exponential components. Similar results were obtained when restricting EAAC1 to Na(+) translocation steps by removing potassium, thus, demonstrating (1) that substrate translocation of EAAC1 is coupled to inward movement of positive charge and, therefore, electrogenic; and (2) the existence of at least two distinct intermediates in the Na(+)-binding and glutamate translocation limb of the EAAC1 transport cycle. Together with the determination of the sodium ion concentration and voltage dependence of the two-exponential charge movement and of the steady-state EAAC1 properties, we developed a kinetic model that is based on sequential binding of Na(+) and glutamate to their extracellular binding sites on EAAC1 explaining our results. In this model, at least one Na(+) ion and thereafter glutamate rapidly bind to the transporter initiating a slower, electroneutral structural change that makes EAAC1 competent for further, voltage-dependent binding of additional sodium ion(s). Once the fully loaded EAAC1 complex is formed, it can undergo a much slower, electrogenic translocation reaction to expose the substrate and ion binding sites to the cytoplasm.

MeSH Terms
Amino Acid Transport System X-AG Animals Carrier Proteins/physiology Electrophysiology Excitatory Amino Acid Transporter 3 Glutamate Plasma Membrane Transport Proteins Glutamic Acid/metabolism Kinetics Membrane Potentials Models, Biological Patch-Clamp Techniques Photolysis Rats Retina Sodium/metabolism Sodium Channels/physiology Symporters
Chemicals
Amino Acid Transport System X-AG Carrier Proteins Excitatory Amino Acid Transporter 3 Glutamate Plasma Membrane Transport Proteins Slc1a1 protein, rat Sodium Channels Symporters Glutamic Acid Sodium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Watzke N
Max-Planck-Institut für Biophysik, D-60596 Frankfurt, Germany.
Bamberg E
Grewer C
References (41)
41 references, click to expand
  1. High-efficiency transformation of mammalian cells by plasmid DNA.
    Mol Cell Biol. 1987 Aug;7(8):2745-52 PMID: 3670292
  2. Voltage dependence of sodium-calcium exchange: predictions from kinetic models.
    J Membr Biol. 1987;99(1):1-11 PMID: 2448470
  3. Glutamate neurotoxicity and diseases of the nervous system.
    Neuron. 1988 Oct;1(8):623-34 PMID: 2908446
  4. Electrophysiology of glutamate and sodium co-transport in a glial cell of the salamander retina.
    J Physiol. 1990 Jul;426:43-80 PMID: 2231407
  5. Characterization of the glutamate transporter in retinal cones of the tiger salamander.
    J Neurosci. 1993 Jan;13(1):402-11 PMID: 8093715
  6. Steady states, charge movements, and rates for a cloned GABA transporter expressed in Xenopus oocytes.
    Neuron. 1993 Feb;10(2):177-88 PMID: 7679914
  7. Relaxation kinetics of the Na+/glucose cotransporter.
    Proc Natl Acad Sci U S A. 1993 Jun 15;90(12):5767-71 PMID: 8516326
  8. Electrogenic L-glutamate uptake in Xenopus laevis oocytes expressing a cloned rat brain L-glutamate/L-aspartate transporter (GLAST-1).
    J Biol Chem. 1993 Jul 15;268(20):14594-6 PMID: 8100815
  9. The neuronal and epithelial human high affinity glutamate transporter. Insights into structure and mechanism of transport.
    J Biol Chem. 1994 Aug 12;269(32):20599-606 PMID: 7914198
  10. Photolabile precursors of glutamate: synthesis, photochemical properties, and activation of glutamate receptors on a microsecond time scale.
    Proc Natl Acad Sci U S A. 1994 Sep 13;91(19):8752-6 PMID: 8090718
  11. Kinetics of a human glutamate transporter.
    Neuron. 1995 May;14(5):1019-27 PMID: 7748550
  12. An excitatory amino-acid transporter with properties of a ligand-gated chloride channel.
    Nature. 1995 Jun 15;375(6532):599-603 PMID: 7791878
  13. Electrogenic properties of the epithelial and neuronal high affinity glutamate transporter.
    J Biol Chem. 1995 Jul 14;270(28):16561-8 PMID: 7622462
  14. Ion fluxes associated with excitatory amino acid transport.
    Neuron. 1995 Sep;15(3):721-8 PMID: 7546750
  15. Flux coupling in a neuronal glutamate transporter.
    Nature. 1996 Oct 17;383(6601):634-7 PMID: 8857541
  16. Rapid charge translocation by the cardiac Na(+)-Ca2+ exchanger after a Ca2+ concentration jump.
    Biophys J. 1996 Nov;71(5):2473-85 PMID: 8913587
  17. Differential expression of three glutamate transporter subtypes in the rat retina.
    Cell Tissue Res. 1996 Dec;286(3):325-36 PMID: 8929335
  18. Glutamate-gated chloride channel with glutamate-transporter-like properties in cone photoreceptors of the tiger salamander.
    J Neurophysiol. 1995 Oct;74(4):1760-71 PMID: 8989410
  19. Contrasting modes of action of methylglutamate derivatives on the excitatory amino acid transporters, EAAT1 and EAAT2.
    Mol Pharmacol. 1997 May;51(5):809-15 PMID: 9145919
  20. Synaptic activation of glutamate transporters in hippocampal astrocytes.
    Neuron. 1997 Dec;19(6):1297-308 PMID: 9427252
  21. DL-threo-beta-benzyloxyaspartate, a potent blocker of excitatory amino acid transporters.
    Mol Pharmacol. 1998 Feb;53(2):195-201 PMID: 9463476
  22. The voltage dependence of a cloned mammalian renal type II Na+/Pi cotransporter (NaPi-2).
    J Gen Physiol. 1998 Jul;112(1):1-18 PMID: 9649580
  23. Voltage and cosubstrate dependence of the Na-HCO3 cotransporter kinetics in renal proximal tubule cells.
    Biophys J. 1998 Aug;75(2):810-24 PMID: 9675182
  24. Anion currents and predicted glutamate flux through a neuronal glutamate transporter.
    J Neurosci. 1998 Sep 15;18(18):7099-110 PMID: 9736633
  25. Macroscopic and microscopic properties of a cloned glutamate transporter/chloride channel.
    J Neurosci. 1998 Oct 1;18(19):7650-61 PMID: 9742136
  26. Two serine residues of the glutamate transporter GLT-1 are crucial for coupling the fluxes of sodium and the neurotransmitter.
    Proc Natl Acad Sci U S A. 1999 Feb 16;96(4):1710-5 PMID: 9990089
  27. Investigation of the alpha(1)-glycine receptor channel-opening kinetics in the submillisecond time domain.
    Biophys J. 1999 Aug;77(2):727-38 PMID: 10423421
  28. GAT1 (GABA:Na+:Cl-) cotransport function. Kinetic studies in giant Xenopus oocyte membrane patches.
    J Gen Physiol. 1999 Sep;114(3):445-57 PMID: 10469734
  29. Substrate turnover by transporters curtails synaptic glutamate transients.
    J Neurosci. 1999 Nov 1;19(21):9242-51 PMID: 10531428
  30. Isolation of current components and partial reaction cycles in the glial glutamate transporter EAAT2.
    J Neurosci. 2000 Apr 15;20(8):2749-57 PMID: 10751425
  31. Glutamate translocation of the neuronal glutamate transporter EAAC1 occurs within milliseconds.
    Proc Natl Acad Sci U S A. 2000 Aug 15;97(17):9706-11 PMID: 10931942
  32. On the mechanism of proton transport by the neuronal excitatory amino acid carrier 1.
    J Gen Physiol. 2000 Nov;116(5):609-22 PMID: 11055990
  33. Active transport of L-glutamate by membrane vesicles isolated from rat brain.
    Biochemistry. 1978 Sep 19;17(19):3949-53 PMID: 708689
  34. Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.
    Pflugers Arch. 1981 Aug;391(2):85-100 PMID: 6270629
  35. Binding order of substrates to the sodium and potassium ion coupled L-glutamic acid transporter from rat brain.
    Biochemistry. 1982 Nov 23;21(24):6327-30 PMID: 6129891
  36. The small-intestinal Na+, D-glucose cotransporter: an asymmetric gated channel (or pore) responsive to delta psi.
    J Membr Biol. 1983;76(1):27-56 PMID: 6315944
  37. Hydrogen ion cotransport by the renal brush border glutamate transporter.
    Biochemistry. 1983 Nov 8;22(23):5459-63 PMID: 6140027
  38. Gating of sodium and potassium channels.
    J Membr Biol. 1985;88(2):97-111 PMID: 2419568
  39. GAT1 (GABA:Na+:Cl-) cotransport function. Database reconstruction with an alternating access model.
    J Gen Physiol. 1999 Sep;114(3):459-75 PMID: 10469735
  40. Functional diversity of excitatory amino acid transporters: ion channel and transport modes.
    Am J Physiol. 1999 Oct;277(4 Pt 2):F481-6 PMID: 10516269
  41. Aspartate transport in synaptosomes from rat brain.
    J Biol Chem. 1983 Aug 10;258(15):9069-77 PMID: 6874678
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
2001-06-00
Pages
547-62
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2232401
Subset
IM
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