Home LiteratureArticle Details
PMID: 11331357 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Histidine scanning mutagenesis of basic residues of the S4 segment of the shaker k+ channel.

The Journal of general physiology ·Vol. 117 ·No. 5 ·2001-05-00 ·Pages 469-90

Starace DM, Bezanilla F

Abstract

The voltage sensor of the Shaker potassium channel is comprised mostly of positively charged residues in the putative fourth transmembrane segment, S4 (Aggarwal, S.K., and R. MacKinnon. 1996. Neuron. 16:1169-1177; Seoh, S.-A., D. Sigg, D.M. Papazian, and F. Bezanilla. 1996. Neuron. 16:1159-1167). Movement of the voltage sensor in response to a change in the membrane potential was examined indirectly by measuring how the accessibilities of residues in and around the sensor change with voltage. Each basic residue in the S4 segment was individually replaced with a histidine. If the histidine tag is part of the voltage sensor, then the gating charge displaced by the voltage sensor will include the histidine charge. Accessibility of the histidine to the bulk solution was therefore monitored as pH-dependent changes in the gating currents evoked by membrane potential pulses. Histidine scanning mutagenesis has several advantages over other similar techniques. Since histidine accessibility is detected by labeling with solution protons, very confined local environments can be resolved and labeling introduces minimal interference of voltage sensor motion. After histidine replacement of either residue K374 or R377, there was no titration of the gating currents with internal or external pH, indicating that these residues do not move in the transmembrane electric field or that they are always inaccessible. Histidine replacement of residues R365, R368, and R371, on the other hand, showed that each of these residues traverses entirely from internal exposure at hyperpolarized potentials to external exposure at depolarized potentials. This translocation enables the histidine to transport protons across the membrane in the presence of a pH gradient. In the case of 371H, depolarization drives the histidine to a position that forms a proton pore. Kinetic models of titrateable voltage sensors that account for proton transport and conduction are presented. Finally, the results presented here are incorporated into existing information to propose a model of voltage sensor movement and structure.

MeSH Terms
Animals Histidine/genetics Hydrogen-Ion Concentration Ion Channel Gating/physiology Membrane Potentials/physiology Models, Biological Mutagenesis/physiology Oocytes/physiology Patch-Clamp Techniques Potassium/metabolism Potassium Channels/chemistry,genetics,metabolism Protein Structure, Quaternary Protons Shaker Superfamily of Potassium Channels Xenopus
Chemicals
Potassium Channels Protons Shaker Superfamily of Potassium Channels Histidine Potassium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Starace D M
Department of Physiology and Department of Anesthesiology, University of California Los Angeles School of Medicine, Los Angeles, California 90095, USA.
Bezanilla F
References (36)
36 references, click to expand
  1. 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
  2. Determination of the subunit stoichiometry of a voltage-activated potassium channel.
    Nature. 1991 Mar 21;350(6315):232-5 PMID: 1706481
  3. Voltage-dependent structural interactions in the Shaker K(+) channel.
    J Gen Physiol. 2000 Feb;115(2):123-38 PMID: 10653892
  4. A mammalian H+ channel generated through alternative splicing of the NADPH oxidase homolog NOH-1.
    Science. 2000 Jan 7;287(5450):138-42 PMID: 10615049
  5. Cut-open oocyte voltage-clamp technique.
    Methods Enzymol. 1998;293:300-18 PMID: 9711615
  6. Biophysical and molecular mechanisms of Shaker potassium channel inactivation.
    Science. 1990 Oct 26;250(4980):533-8 PMID: 2122519
  7. Gating of Shaker K+ channels: II. The components of gating currents and a model of channel activation.
    Biophys J. 1994 Apr;66(4):1011-21 PMID: 8038375
  8. Measurement of the movement of the S4 segment during the activation of a voltage-gated potassium channel.
    Pflugers Arch. 1996 Nov-Dec;433(1-2):91-7 PMID: 9019737
  9. Evidence that the product of the human X-linked CGD gene, gp91-phox, is a voltage-gated H(+) pathway.
    J Gen Physiol. 1999 Dec;114(6):771-86 PMID: 10578014
  10. Atomic scale movement of the voltage-sensing region in a potassium channel measured via spectroscopy.
    Nature. 1999 Dec 16;402(6763):809-13 PMID: 10617201
  11. Transmembrane movement of the shaker K+ channel S4.
    Neuron. 1996 Feb;16(2):387-97 PMID: 8789953
  12. A Resonance Model Gives the Response to Membrane Potential for an Ion Channel.
    J Theor Biol. 1998 Aug 7;193(3):475-483 PMID: 9735274
  13. Electrostatics and the gating pore of Shaker potassium channels.
    J Gen Physiol. 2001 Jan;117(1):69-89 PMID: 11134232
  14. Effective gating charges per channel in voltage-dependent K+ and Ca2+ channels.
    J Gen Physiol. 1996 Sep;108(3):143-55 PMID: 8882860
  15. The voltage sensor in voltage-dependent ion channels.
    Physiol Rev. 2000 Apr;80(2):555-92 PMID: 10747201
  16. Contribution of the S4 segment to gating charge in the Shaker K+ channel.
    Neuron. 1996 Jun;16(6):1169-77 PMID: 8663993
  17. Molecular basis of charge movement in voltage-gated sodium channels.
    Neuron. 1996 Jan;16(1):113-22 PMID: 8562074
  18. The size of gating charge in wild-type and mutant Shaker potassium channels.
    Science. 1992 Mar 27;255(5052):1712-5 PMID: 1553560
  19. Voltage-dependent proton transport by the voltage sensor of the Shaker K+ channel.
    Neuron. 1997 Dec;19(6):1319-27 PMID: 9427254
  20. Expression of functional potassium channels from Shaker cDNA in Xenopus oocytes.
    Nature. 1988 Jan 14;331(6152):143-5 PMID: 2448636
  21. Three transmembrane conformations and sequence-dependent displacement of the S4 domain in shaker K+ channel gating.
    Neuron. 1998 Jun;20(6):1283-94 PMID: 9655514
  22. A quantitative description of membrane current and its application to conduction and excitation in nerve.
    J Physiol. 1952 Aug;117(4):500-44 PMID: 12991237
  23. Evidence for voltage-dependent S4 movement in sodium channels.
    Neuron. 1995 Jul;15(1):213-8 PMID: 7619524
  24. Multiple potassium-channel components are produced by alternative splicing at the Shaker locus in Drosophila.
    Nature. 1988 Jan 14;331(6152):137-42 PMID: 2448635
  25. Permeation and activation of the M2 ion channel of influenza A virus.
    J Biol Chem. 2000 Oct 6;275(40):31038-50 PMID: 10913133
  26. Structural features in eukaryotic mRNAs that modulate the initiation of translation.
    J Biol Chem. 1991 Oct 25;266(30):19867-70 PMID: 1939050
  27. Currents related to movement of the gating particles of the sodium channels.
    Nature. 1973 Apr 13;242(5398):459-61 PMID: 4700900
  28. Spectroscopic mapping of voltage sensor movement in the Shaker potassium channel.
    Nature. 1999 Dec 16;402(6763):813-7 PMID: 10617202
  29. Electrostatic interactions of S4 voltage sensor in Shaker K+ channel.
    Neuron. 1995 Jun;14(6):1293-301 PMID: 7605638
  30. Electrostatic interactions between transmembrane segments mediate folding of Shaker K+ channel subunits.
    Biophys J. 1997 Apr;72(4):1489-500 PMID: 9083655
  31. Two identical noninteracting sites in an ion channel revealed by proton transfer.
    Science. 1994 Sep 23;265(5180):1852-6 PMID: 7522344
  32. Gating currents from a nonconducting mutant reveal open-closed conformations in Shaker K+ channels.
    Neuron. 1993 Aug;11(2):353-8 PMID: 8352943
  33. Voltage-sensing residues in the S2 and S4 segments of the Shaker K+ channel.
    Neuron. 1996 Jun;16(6):1159-67 PMID: 8663992
  34. Site-directed mutagenesis by overlap extension using the polymerase chain reaction.
    Gene. 1989 Apr 15;77(1):51-9 PMID: 2744487
  35. Kinetics and steady-state properties of the charged system controlling sodium conductance in the squid giant axon.
    J Physiol. 1974 Jun;239(2):393-434 PMID: 4414038
  36. Protonation dynamics of the alpha-toxin ion channel from spectral analysis of pH-dependent current fluctuations.
    Biophys J. 1995 Jul;69(1):94-105 PMID: 7545444
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
2001-05-00
Pages
469-90
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2233663
Subset
IM
Grants
NIGMS NIH HHS · R01 GM030376 · United States
NIGMS NIH HHS · R37 GM030376 · United States
NIGMS NIH HHS · GM30376 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com