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PMID: 9083655 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Electrostatic interactions between transmembrane segments mediate folding of Shaker K+ channel subunits.

Biophysical journal ·Vol. 72 ·No. 4 ·1997-04-00 ·Pages 1489-500

Tiwari-Woodruff SK, Schulteis CT, Mock AF, Papazian DM

Abstract

In voltage-dependent Shaker K+ channels, charged residues E293 in transmembrane segment S2 and R365, R368, and R371 in S4 contribute significantly to the gating charge movement that accompanies activation. Using an intragenic suppression strategy, we have now probed for structural interaction between transmembrane segments S2, S3, and S4 in Shaker channels. Charge reversal mutations of E283 in S2 and K374 in S4 disrupt maturation of the protein. Maturation was specifically and efficiently rescued by second-site charge reversal mutations, indicating that electrostatic interactions exist between E283 in S2 and R368 and R371 in S4, and between K374 in S4 and E293 in S2 and D316 in S3. Rescued subunits were incorporated into functional channels, demonstrating that a native structure was restored. Our data indicate that K374 interacts with E293 and D316 within the same subunit. These electrostatic interactions mediate the proper folding of the protein and are likely to persist in the native structure. Our results raise the possibility that the S4 segment is tilted relative to S2 and S3 in the voltage-sensing domain of Shaker channels. Such an arrangement might provide solvent access to voltage-sensing residues, which we find to be highly tolerant of mutations.

MeSH Terms
Animals Cell Membrane/chemistry Electrophoresis, Polyacrylamide Gel Electrophysiology Gene Expression/genetics Ion Channel Gating Kinetics Models, Molecular Mutagenesis, Site-Directed Mutation Oocytes/metabolism Patch-Clamp Techniques Polymerase Chain Reaction Potassium Channels/chemistry,genetics,metabolism Protein Folding Protein Structure, Secondary Shaker Superfamily of Potassium Channels Xenopus
Chemicals
Potassium Channels Shaker Superfamily of Potassium Channels
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Tiwari-Woodruff S K
Department of Physiology, School of Medicine, University of California, Los Angeles 90095-1751, USA.
Schulteis C T
Mock A F
Papazian D M
References (58)
58 references, click to expand
  1. S4 mutations alter gating currents of Shaker K channels.
    Biophys J. 1994 Feb;66(2 Pt 1):345-54 PMID: 8161688
  2. Intersubunit interaction between amino- and carboxyl-terminal cysteine residues in tetrameric shaker K+ channels.
    Biochemistry. 1996 Sep 17;35(37):12133-40 PMID: 8810920
  3. Shaker potassium channel gating. III: Evaluation of kinetic models for activation.
    J Gen Physiol. 1994 Feb;103(2):321-62 PMID: 8189208
  4. Do salt bridges stabilize proteins? A continuum electrostatic analysis.
    Protein Sci. 1994 Feb;3(2):211-26 PMID: 8003958
  5. 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
  6. Voltage gating of ion channels.
    Q Rev Biophys. 1994 Feb;27(1):1-40 PMID: 7520590
  7. Images of purified Shaker potassium channels.
    Curr Biol. 1994 Feb 1;4(2):110-5 PMID: 7953509
  8. Specificity and promiscuity in membrane helix interactions.
    Q Rev Biophys. 1994 May;27(2):157-218 PMID: 7984776
  9. Conformational equilibria in -and -chymotrypsin. The energetics and importance of the salt bridge.
    J Mol Biol. 1972 Mar 14;64(2):497-509 PMID: 5023185
  10. Inactivation of the sodium channel. I. Sodium current experiments.
    J Gen Physiol. 1977 Nov;70(5):549-66 PMID: 591911
  11. Genetic analysis of staphylococcal nuclease: identification of three intragenic "global" suppressors of nuclease-minus mutations.
    Genetics. 1985 Aug;110(4):539-55 PMID: 3896923
  12. Molecular properties of voltage-sensitive sodium channels.
    Annu Rev Biochem. 1986;55:953-85 PMID: 2427018
  13. 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
  14. Expression of functional potassium channels from Shaker cDNA in Xenopus oocytes.
    Nature. 1988 Jan 14;331(6152):143-5 PMID: 2448636
  15. Engineering hybrid genes without the use of restriction enzymes: gene splicing by overlap extension.
    Gene. 1989 Apr 15;77(1):61-8 PMID: 2744488
  16. pH-induced denaturation of proteins: a single salt bridge contributes 3-5 kcal/mol to the free energy of folding of T4 lysozyme.
    Biochemistry. 1990 Mar 6;29(9):2403-8 PMID: 2337607
  17. Pursuing the structure and function of voltage-gated channels.
    Trends Neurosci. 1990 Jun;13(6):201-6 PMID: 1694324
  18. Intragenic suppressors reveal long distance interactions between inactivating and reactivating amino acid replacements generating three-dimensional constraints in the structure of mitochondrial cytochrome b.
    J Biol Chem. 1990 Sep 15;265(26):15750-7 PMID: 2203784
  19. Mutations affecting TEA blockade and ion permeation in voltage-activated K+ channels.
    Science. 1990 Oct 12;250(4978):276-9 PMID: 2218530
  20. Biophysical and molecular mechanisms of Shaker potassium channel inactivation.
    Science. 1990 Oct 26;250(4980):533-8 PMID: 2122519
  21. Restoration of inactivation in mutants of Shaker potassium channels by a peptide derived from ShB.
    Science. 1990 Oct 26;250(4980):568-71 PMID: 2122520
  22. A general method for rapid site-directed mutagenesis using the polymerase chain reaction.
    Gene. 1990 Nov 30;96(1):125-8 PMID: 2265750
  23. Alteration of voltage-dependence of Shaker potassium channel by mutations in the S4 sequence.
    Nature. 1991 Jan 24;349(6307):305-10 PMID: 1846229
  24. Mutations affecting internal TEA blockade identify the probable pore-forming region of a K+ channel.
    Science. 1991 Feb 22;251(4996):939-42 PMID: 2000494
  25. The interaction between aspartic acid 237 and lysine 358 in the lactose carrier of Escherichia coli.
    Biochim Biophys Acta. 1991 Feb 25;1062(2):177-86 PMID: 1848449
  26. Determination of the subunit stoichiometry of a voltage-activated potassium channel.
    Nature. 1991 Mar 21;350(6315):232-5 PMID: 1706481
  27. Membrane protein association by potential intramembrane charge pairs.
    Nature. 1991 May 30;351(6325):414-6 PMID: 1827877
  28. Putative receptor for the cytoplasmic inactivation gate in the Shaker K+ channel.
    Nature. 1991 Sep 5;353(6339):86-90 PMID: 1881453
  29. The inactivation gate of the Shaker K+ channel behaves like an open-channel blocker.
    Neuron. 1991 Nov;7(5):743-53 PMID: 1742023
  30. Protein folding in the cell.
    Nature. 1992 Jan 2;355(6355):33-45 PMID: 1731198
  31. The size of gating charge in wild-type and mutant Shaker potassium channels.
    Science. 1992 Mar 27;255(5052):1712-5 PMID: 1553560
  32. Glycophorin A dimerization is driven by specific interactions between transmembrane alpha-helices.
    J Biol Chem. 1992 Apr 15;267(11):7683-9 PMID: 1560003
  33. Atomic scale structure and functional models of voltage-gated potassium channels.
    Biophys J. 1992 Apr;62(1):238-47; discussion 247-50 PMID: 1600096
  34. Possible salt bridges between transmembrane alpha-helices of the lactose carrier of Escherichia coli.
    J Biol Chem. 1992 Oct 15;267(29):20758-64 PMID: 1400392
  35. Sequence specificity in the dimerization of transmembrane alpha-helices.
    Biochemistry. 1992 Dec 29;31(51):12719-25 PMID: 1463743
  36. Properties of interacting aspartic acid and lysine residues in the lactose permease of Escherichia coli.
    Biochemistry. 1993 Sep 28;32(38):10027-35 PMID: 8399130
  37. Functional stoichiometry of Shaker potassium channel inactivation.
    Science. 1993 Oct 29;262(5134):757-9 PMID: 7694359
  38. Second-site suppressor mutations at glycine 218 and histidine 245 in the alpha subunit of F1F0 ATP synthase in Escherichia coli.
    J Biol Chem. 1994 Dec 23;269(51):32313-7 PMID: 7798232
  39. Conserved cysteine residues in the shaker K+ channel are not linked by a disulfide bond.
    Biochemistry. 1995 Feb 7;34(5):1725-33 PMID: 7849032
  40. Are buried salt bridges important for protein stability and conformational specificity?
    Nat Struct Biol. 1995 Feb;2(2):122-8 PMID: 7749916
  41. Genetic analysis of the folded structure of yeast mitochondrial cytochrome b by selection of intragenic second-site revertants.
    J Mol Biol. 1995 May 12;248(4):804-11 PMID: 7752241
  42. Electrostatic interactions of S4 voltage sensor in Shaker K+ channel.
    Neuron. 1995 Jun;14(6):1293-301 PMID: 7605638
  43. Evidence for voltage-dependent S4 movement in sodium channels.
    Neuron. 1995 Jul;15(1):213-8 PMID: 7619524
  44. A dimerization motif for transmembrane alpha-helices.
    Nat Struct Biol. 1994 Mar;1(3):157-63 PMID: 7656033
  45. Intragenic suppression among CDC34 (UBC3) mutations defines a class of ubiquitin-conjugating catalytic domains.
    Mol Cell Biol. 1995 Oct;15(10):5635-44 PMID: 7565715
  46. Direct physical measure of conformational rearrangement underlying potassium channel gating.
    Science. 1996 Jan 12;271(5246):213-6 PMID: 8539623
  47. Molecular basis of charge movement in voltage-gated sodium channels.
    Neuron. 1996 Jan;16(1):113-22 PMID: 8562074
  48. A structural vignette common to voltage sensors and conduction pores: canaliculi.
    Neuron. 1996 Apr;16(4):717-22 PMID: 8607990
  49. Contributions of the ionizable amino acids to the stability of staphylococcal nuclease.
    Biochemistry. 1996 May 21;35(20):6443-9 PMID: 8639591
  50. Importance of two buried salt bridges in the stability and folding pathway of barnase.
    Biochemistry. 1996 May 28;35(21):6786-94 PMID: 8639630
  51. New approach to the study of transient protein conformations: the formation of a semiburied salt link in the folding pathway of barnase.
    Biochemistry. 1996 May 28;35(21):6795-805 PMID: 8639631
  52. Coassembly of synthetic segments of shaker K+ channel within phospholipid membranes.
    Biochemistry. 1996 May 28;35(21):6828-38 PMID: 8639634
  53. Voltage-sensing residues in the S2 and S4 segments of the Shaker K+ channel.
    Neuron. 1996 Jun;16(6):1159-67 PMID: 8663992
  54. Contribution of the S4 segment to gating charge in the Shaker K+ channel.
    Neuron. 1996 Jun;16(6):1169-77 PMID: 8663993
  55. Protein stabilization by removal of unsatisfied polar groups: computational approaches and experimental tests.
    Biochemistry. 1996 Jun 18;35(24):7621-5 PMID: 8672461
  56. Roles of electrostatic interaction in proteins.
    Q Rev Biophys. 1996 Feb;29(1):1-90 PMID: 8783394
  57. Transmembrane movement of the shaker K+ channel S4.
    Neuron. 1996 Feb;16(2):387-97 PMID: 8789953
  58. Glycosylation of shaker potassium channel protein in insect cell culture and in Xenopus oocytes.
    Biochemistry. 1994 May 10;33(18):5607-13 PMID: 8180185
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1997-04-00
Pages
1489-500
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1184345
Subset
IM
Grants
NIGMS NIH HHS · R01 GM043459-15 · United States
NIGMS NIH HHS · GM43459 · United States
NIGMS NIH HHS · R01 GM043459-11 · United States
NIGMS NIH HHS · R01 GM043459-16 · United States
NIGMS NIH HHS · R01 GM043459-10 · United States
NINDS NIH HHS · NS0710115 · United States
NIGMS NIH HHS · R01 GM043459 · United States
NIGMS NIH HHS · R01 GM043459-13 · United States
NIGMS NIH HHS · R01 GM043459-17 · United States
NIGMS NIH HHS · R01 GM043459-14 · United States
NIGMS NIH HHS · R01 GM043459-12 · United States
NIGMS NIH HHS · R01 GM043459-15S1 · United States
NIGMS NIH HHS · R01 GM043459-09 · United States
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