Home LiteratureArticle Details
PMID: 14695253 Published · ppublish English Comparative Study Evaluation Study Journal Article Research Support, U.S. Gov't, P.H.S. Validation Study

Gating gramicidin channels in lipid bilayers: reaction coordinates and the mechanism of dissociation.

Biophysical journal ·Vol. 86 ·No. 1 Pt 1 ·2004-01-00 ·Pages 92-104

Miloshevsky GV, Jordan PC

Abstract

The dissociation of gramicidin A (gA) channels into monomers is the simplest example of a channel gating process. The initial steps in this process are studied via a computational model that simulates the reaction coordinate for dimer-monomer dissociation. The nonbonded interaction energy between the monomers is determined, allowing for their free relative translational and rotational motion. Lowest energy pathways and reaction coordinates of the gating process are determined. Partial rupture of the six hydrogen bonds (6HB) at the dimer junction takes place by coupling monomer rotation and lateral displacement. Coupling rotation with axial separation is far more expensive energetically. The transition state for channel dissociation occurs when monomers are displaced laterally by approximately 4-6 A, separated by approximately 1.6-2 A, and rotated by approximately 120 degrees, breaking two hydrogen bonds. In membranes with significant hydrophobic mismatch there is a much greater likelihood of forming 4HB and possibly even 2HB states. In the 4HB state the pore remains fully open and conductive. However, transitions from the 6HB to 4HB and 4HB to 2HB states take place via intermediates in which the gA pore is closed and nonconductive. These lateral monomer displacements give rise to transitory pore occlusion at the dimer junction, which provides a rationale for fast closure events (flickers). Local dynamics of gA monomers also leads to lateral and rotational diffusion of the whole gA dimer, giving rise to diffusional rotation of the dimer about the channel axis.

MeSH Terms
Binding Sites Dimerization Gramicidin/chemistry Ion Channel Gating Kinetics Lipid Bilayers/chemistry Macromolecular Substances Membrane Proteins/chemistry Models, Molecular Motion Porosity Protein Binding Protein Conformation Structure-Activity Relationship
Chemicals
Lipid Bilayers Macromolecular Substances Membrane Proteins Gramicidin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Miloshevsky Gennady V
Department of Chemistry, Brandeis University, Waltham, Massachusetts 02454-9110, USA.
Jordan Peter C
References (54)
54 references, click to expand
  1. Voltage-dependent formation of gramicidin channels in lipid bilayers.
    Biophys J. 2001 Aug;81(2):827-37 PMID: 11463628
  2. A semi-microscopic Monte Carlo study of permeation energetics in a gramicidin-like channel: the origin of cation selectivity.
    Biophys J. 1996 Jan;70(1):121-34 PMID: 8770192
  3. Cation transport: an example of structural based selectivity.
    J Mol Biol. 1999 Feb 5;285(5):1993-2003 PMID: 9925780
  4. Recent Advances in the High Resolution Structures of Bacterial Channels: Gramicidin A.
    J Struct Biol. 1998;121(2):123-41 PMID: 9618340
  5. Macromolecular structural elucidation with solid-state NMR-derived orientational constraints.
    J Biomol NMR. 1996 Jul;8(1):1-14 PMID: 8810522
  6. High-resolution polypeptide structure in a lamellar phase lipid environment from solid state NMR derived orientational constraints.
    Structure. 1997 Dec 15;5(12):1655-69 PMID: 9438865
  7. Probing conformational changes of gramicidin ion channels by single-molecule patch-clamp fluorescence microscopy.
    Biophys J. 2003 Sep;85(3):1826-38 PMID: 12944296
  8. Influence of ion occupancy and membrane deformation on gramicidin A channel stability in lipid membranes.
    Biophys J. 1992 May;61(5):1306-15 PMID: 1376157
  9. Energetics of inclusion-induced bilayer deformations.
    Biophys J. 1998 Apr;74(4):1966-83 PMID: 9545056
  10. Gramicidin channel kinetics under tension.
    Biophys J. 1998 Jan;74(1):328-37 PMID: 9449333
  11. Influence of membrane thickness and ion concentration on the properties of the gramicidin a channel. Autocorrelation, spectral power density, relaxation and single-channel studies.
    Biochim Biophys Acta. 1977 Jan 4;464(1):127-41 PMID: 64260
  12. Deformation free energy of bilayer membrane and its effect on gramicidin channel lifetime.
    Biophys J. 1986 Dec;50(6):1061-70 PMID: 2432948
  13. Simultaneous optical and electrical recording of single gramicidin channels.
    Biophys J. 2003 Jan;84(1):612-22 PMID: 12524314
  14. Theoretical perspectives on ion-channel electrostatics: continuum and microscopic approaches.
    Q Rev Biophys. 1992 Nov;25(4):477-510 PMID: 1284092
  15. Energetics of heterodimer formation among gramicidin analogues with an NH2-terminal addition or deletion. Consequences of missing a residue at the join in the channel.
    J Mol Biol. 1993 Jun 20;231(4):1102-21 PMID: 7685829
  16. Voltage-induced thickness changes of lipid bilayer membranes and the effect of an electrin field on gramicidin A channel formation.
    Biochim Biophys Acta. 1976 Mar 19;426(3):570-80 PMID: 57801
  17. Hydrophobic coupling of lipid bilayer energetics to channel function.
    J Gen Physiol. 2003 May;121(5):477-93 PMID: 12719487
  18. Large Amplitude Elastic Motions in Proteins from a Single-Parameter, Atomic Analysis.
    Phys Rev Lett. 1996 Aug 26;77(9):1905-1908 PMID: 10063201
  19. Gramicidin channels.
    Annu Rev Physiol. 1984;46:531-48 PMID: 6201133
  20. Structural restraints and heterogeneous orientation of the gramicidin A channel closed state in lipid bilayers.
    Biophys J. 2004 May;86(5):2837-45 PMID: 15111401
  21. Ionic selectivity, saturation, and block in gramicidin A channels. II. Saturation behavior of single channel conductances and evidence for the existence of multiple binding sites in the channel.
    J Membr Biol. 1978 Apr 26;40(2):97-116 PMID: 77904
  22. Gating the selectivity filter in ClC chloride channels.
    Science. 2003 Apr 4;300(5616):108-12 PMID: 12649487
  23. The conformational preference of gramicidin channels is a function of lipid bilayer thickness.
    FEBS Lett. 1997 Jul 21;412(1):15-20 PMID: 9257681
  24. 2H NMR determination of the global correlation time of the gramicidin channel in a lipid bilayer.
    Biophys J. 1993 Sep;65(3):1162-7 PMID: 7694670
  25. Building-block approach for determining low-frequency normal modes of macromolecules.
    Proteins. 2000 Oct 1;41(1):1-7 PMID: 10944387
  26. Ion movement through gramicidin A channels. Studies on the diffusion-controlled association step.
    Biophys J. 1983 Feb;41(2):147-65 PMID: 6188502
  27. Amino acid substitutions and ion channel function. Model-dependent conclusions.
    Biophys J. 1992 Apr;62(1):25-7 PMID: 1376168
  28. Crystal structure of the potassium channel KirBac1.1 in the closed state.
    Science. 2003 Jun 20;300(5627):1922-6 PMID: 12738871
  29. Structures of gramicidins A, B, and C incorporated into sodium dodecyl sulfate micelles.
    Biochemistry. 2001 Oct 2;40(39):11676-86 PMID: 11570868
  30. The effects of bilayer thickness and tension on gramicidin single-channel lifetime.
    Biochim Biophys Acta. 1983 Oct 26;735(1):95-103 PMID: 6194820
  31. The influence of phospholipid polar groups on gramicidin channels.
    Biochim Biophys Acta. 1977 Jan 4;464(1):37-44 PMID: 64261
  32. All-atom empirical potential for molecular modeling and dynamics studies of proteins.
    J Phys Chem B. 1998 Apr 30;102(18):3586-616 PMID: 24889800
  33. Structure of gramicidin a in a lipid bilayer environment determined using molecular dynamics simulations and solid-state NMR data.
    J Am Chem Soc. 2003 Aug 13;125(32):9868-77 PMID: 12904055
  34. Tandem gramicidin channels cross-linked by streptavidin.
    J Gen Physiol. 2003 May;121(5):463-76 PMID: 12719486
  35. Structure of a glycerol-conducting channel and the basis for its selectivity.
    Science. 2000 Oct 20;290(5491):481-6 PMID: 11039922
  36. The structure of the potassium channel: molecular basis of K+ conduction and selectivity.
    Science. 1998 Apr 3;280(5360):69-77 PMID: 9525859
  37. The gramicidin A transmembrane channel: characteristics of head-to-head dimerized (L,D) helices.
    Proc Natl Acad Sci U S A. 1971 Aug;68(8):1907-11 PMID: 5288776
  38. Structural basis of water-specific transport through the AQP1 water channel.
    Nature. 2001 Dec 20-27;414(6866):872-8 PMID: 11780053
  39. Kinetics of gramicidin channel formation in lipid bilayers: transmembrane monomer association.
    Science. 1990 Nov 30;250(4985):1256-9 PMID: 1700867
  40. Closed state of gramicidin channel detected by X-ray in-plane scattering.
    Biophys Chem. 1994 Feb;49(1):83-9 PMID: 7510532
  41. Molecular dynamics simulations of the gramicidin channel.
    Annu Rev Biophys Biomol Struct. 1994;23:731-61 PMID: 7522667
  42. Structural determinants of water permeation through aquaporin-1.
    Nature. 2000 Oct 5;407(6804):599-605 PMID: 11034202
  43. Ion movements in gramicidin pores. An example of single-file transport.
    Biochim Biophys Acta. 1980 Nov 4;602(2):331-54 PMID: 6159005
  44. On the origin of closing flickers in gramicidin channels: a new hypothesis.
    Biophys J. 2002 Mar;82(3):1329-37 PMID: 11867449
  45. Lateral diffusion of gramicidin C in phospholipid multibilayers. Effects of cholesterol and high gramicidin concentration.
    Biophys J. 1982 Nov;40(2):129-35 PMID: 6184082
  46. On the supramolecular organization of gramicidin channels. The elementary conducting unit is a dimer.
    Biophys J. 1992 Jan;61(1):189-203 PMID: 1371703
  47. Crystal structure and mechanism of a calcium-gated potassium channel.
    Nature. 2002 May 30;417(6888):515-22 PMID: 12037559
  48. X-ray structure of a voltage-dependent K+ channel.
    Nature. 2003 May 1;423(6935):33-41 PMID: 12721618
  49. Monovalent cation transport: lack of structural deformation upon cation binding.
    Biochemistry. 1996 Sep 17;35(37):11959-66 PMID: 8810900
  50. Modulation of gramicidin A open channel lifetime by ion occupancy.
    Biophys J. 1988 Apr;53(4):549-59 PMID: 2454677
  51. Gramicidin channel-induced lipid membrane deformation energy: influence of chain length and boundary conditions.
    Biochim Biophys Acta. 1996 Jan 31;1278(2):147-59 PMID: 8593271
  52. A coarse-grained normal mode approach for macromolecules: an efficient implementation and application to Ca(2+)-ATPase.
    Biophys J. 2002 Nov;83(5):2457-74 PMID: 12414680
  53. Spring constants for channel-induced lipid bilayer deformations. Estimates using gramicidin channels.
    Biophys J. 1999 Feb;76(2):889-95 PMID: 9929490
  54. X-ray structure of a ClC chloride channel at 3.0 A reveals the molecular basis of anion selectivity.
    Nature. 2002 Jan 17;415(6869):287-94 PMID: 11796999
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
2004-01-00
Pages
92-104
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1303840
Subset
IM
Grants
NIGMS NIH HHS · R01 GM028643 · United States
NIGMS NIH HHS · GM-28643 · 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: [email protected]