Home LiteratureArticle Details
PMID: 19751742 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Zipping and unzipping of adenylate kinase: atomistic insights into the ensemble of open<-->closed transitions.

Journal of molecular biology ·Vol. 394 ·No. 1 ·2009-11-20 ·Pages 160-76

Beckstein O, Denning EJ, Perilla JR, Woolf TB

Abstract

Adenylate kinase (AdK), a phosphotransferase enzyme, plays an important role in cellular energy homeostasis. It undergoes a large conformational change between an open and a closed state, even in the absence of substrate. We investigate the apo-AdK transition at the atomic level both with free-energy calculations and with our new dynamic importance sampling (DIMS) molecular dynamics method. DIMS is shown to sample biologically relevant conformations as verified by comparing an ensemble of hundreds of DIMS transitions to AdK crystal structure intermediates. The simulations reveal in atomic detail how hinge regions partially and intermittently unfold during the transition. Conserved salt bridges are seen to have important structural and dynamic roles; in particular, four ionic bonds that open in a sequential, zipper-like fashion and, thus, dominate the free-energy landscape of the transition are identified. Transitions between the closed and open conformations only have to overcome moderate free-energy barriers. Unexpectedly, the closed state and the open state encompass broad free-energy basins that contain conformations differing in domain hinge motions by up to 40 degrees . The significance of these extended states is discussed in relation to recent experimental Förster resonance energy transfer measurements. Taken together, these results demonstrate how a small number of cooperative key interactions can shape the overall dynamics of an enzyme and suggest an "all-or-nothing" mechanism for the opening and closing of AdK. Our efficient DIMS molecular dynamics computer simulation approach can provide a detailed picture of a functionally important macromolecular transition and thus help to interpret and suggest experiments to probe the conformational landscape of dynamic proteins such as AdK.

MeSH Terms
Adenylate Kinase/chemistry Animals Computer Simulation Crystallography, X-Ray Fluorescence Resonance Energy Transfer Humans Protein Structure, Tertiary Salts/chemistry Surface Properties Thermodynamics
Chemicals
Salts Adenylate Kinase
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Beckstein Oliver
Department of Biochemistry, University of Oxford, Oxford OX1 3QU, UK. oliver.beckstein@bioch.ox.ac.uk
Denning Elizabeth J
Perilla Juan R
Woolf Thomas B
References (66)
66 references, click to expand
  1. High-resolution structures of adenylate kinase from yeast ligated with inhibitor Ap5A, showing the pathway of phosphoryl transfer.
    Protein Sci. 1995 Jul;4(7):1262-71 PMID: 7670369
  2. VMD: visual molecular dynamics.
    J Mol Graph. 1996 Feb;14(1):33-8, 27-8 PMID: 8744570
  3. Conformational transitions of adenylate kinase: switching by cracking.
    J Mol Biol. 2007 Mar 9;366(5):1661-71 PMID: 17217965
  4. Small- and large-scale conformational changes of adenylate kinase: a molecular dynamics study of the subdomain motion and mechanics.
    Biophys J. 2008 Dec 15;95(12):5901-12 PMID: 18931260
  5. Orchestration of cooperative events in DNA synthesis and repair mechanism unraveled by transition path sampling of DNA polymerase beta's closing.
    Proc Natl Acad Sci U S A. 2004 Apr 20;101(16):5970-5 PMID: 15069184
  6. Escherichia coli adenylate kinase dynamics: comparison of elastic network model modes with mode-coupling (15)N-NMR relaxation data.
    Proteins. 2004 Nov 15;57(3):468-80 PMID: 15382240
  7. Structures and analysis of highly homologous psychrophilic, mesophilic, and thermophilic adenylate kinases.
    J Biol Chem. 2004 Jul 2;279(27):28202-8 PMID: 15100224
  8. Effective atom volumes for implicit solvent models: comparison between Voronoi volumes and minimum fluctuation volumes.
    J Comput Chem. 2001 Nov 30;22(15):1857-1879 PMID: 12116417
  9. Efficient dynamic importance sampling of rare events in one dimension.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2001 Jan;63(1 Pt 2):016702 PMID: 11304388
  10. Adenylate kinase motions during catalysis: an energetic counterweight balancing substrate binding.
    Structure. 1996 Feb 15;4(2):147-56 PMID: 8805521
  11. Sequence logos: a new way to display consensus sequences.
    Nucleic Acids Res. 1990 Oct 25;18(20):6097-100 PMID: 2172928
  12. Conformational change of proteins arising from normal mode calculations.
    Protein Eng. 2001 Jan;14(1):1-6 PMID: 11287673
  13. Nonlinear elasticity, proteinquakes, and the energy landscapes of functional transitions in proteins.
    Proc Natl Acad Sci U S A. 2003 Oct 28;100(22):12570-5 PMID: 14566052
  14. Crystal structure of ADP/AMP complex of Escherichia coli adenylate kinase.
    Proteins. 2006 Feb 1;62(2):555-6 PMID: 16302237
  15. The Pfam protein families database.
    Nucleic Acids Res. 2004 Jan 1;32(Database issue):D138-41 PMID: 14681378
  16. Mechanism of adenylate kinase. Critical evaluation of the X-ray model and assignment of the AMP site.
    Biochemistry. 1990 Dec 11;29(49):10956-64 PMID: 2125496
  17. Conformational transition pathways explored by Monte Carlo simulation integrated with collective modes.
    Biophys J. 2008 Dec 15;95(12):5862-73 PMID: 18676657
  18. Geometry-based sampling of conformational transitions in proteins.
    Structure. 2007 Nov;15(11):1482-92 PMID: 17997973
  19. Minimum free energy pathways and free energy profiles for conformational transitions based on atomistic molecular dynamics simulations.
    J Chem Phys. 2007 Apr 28;126(16):164106 PMID: 17477588
  20. The atomistic mechanism of conformational transition in adenylate kinase: a TEE-REX molecular dynamics study.
    Structure. 2008 Aug 6;16(8):1175-82 PMID: 18682219
  21. Comparative protein modelling by satisfaction of spatial restraints.
    J Mol Biol. 1993 Dec 5;234(3):779-815 PMID: 8254673
  22. The closed conformation of a highly flexible protein: the structure of E. coli adenylate kinase with bound AMP and AMPPNP.
    Proteins. 1994 Jul;19(3):183-98 PMID: 7937733
  23. Molecular dynamics of apo-adenylate kinase: a distance replica exchange method for the free energy of conformational fluctuations.
    J Phys Chem B. 2006 Nov 30;110(47):24121-37 PMID: 17125384
  24. Multiple pathways in conformational transitions of the alanine dipeptide: an application of dynamic importance sampling.
    J Comput Chem. 2006 Aug;27(11):1136-41 PMID: 16721720
  25. Efficient and verified simulation of a path ensemble for conformational change in a united-residue model of calmodulin.
    Proc Natl Acad Sci U S A. 2007 Nov 13;104(46):18043-8 PMID: 17984047
  26. Domain closure in adenylate kinase.
    Biochemistry. 1996 May 21;35(20):6425-37 PMID: 8639589
  27. Single-molecule detection and identification of multiple species by multiparameter fluorescence detection.
    Anal Chem. 2006 Mar 15;78(6):2039-50 PMID: 16536444
  28. Statistical potential for assessment and prediction of protein structures.
    Protein Sci. 2006 Nov;15(11):2507-24 PMID: 17075131
  29. Long-timescale simulation methods.
    Curr Opin Struct Biol. 2005 Apr;15(2):151-6 PMID: 15837172
  30. T-Coffee: A novel method for fast and accurate multiple sequence alignment.
    J Mol Biol. 2000 Sep 8;302(1):205-17 PMID: 10964570
  31. Large-scale allosteric conformational transitions of adenylate kinase appear to involve a population-shift mechanism.
    Proc Natl Acad Sci U S A. 2007 Nov 20;104(47):18496-501 PMID: 18000050
  32. Finding transition pathways using the string method with swarms of trajectories.
    J Phys Chem B. 2008 Mar 20;112(11):3432-40 PMID: 18290641
  33. Large amplitude conformational change in proteins explored with a plastic network model: adenylate kinase.
    J Mol Biol. 2005 Sep 30;352(4):807-22 PMID: 16139299
  34. Essential dynamics sampling study of adenylate kinase: comparison to citrate synthase and implication for the hinge and shear mechanisms of domain motions.
    Proteins. 2007 May 1;67(2):325-37 PMID: 17299745
  35. 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
  36. Crystal structures of two mutants of adenylate kinase from Escherichia coli that modify the Gly-loop.
    Proteins. 1993 Jan;15(1):42-9 PMID: 8451239
  37. A hierarchy of timescales in protein dynamics is linked to enzyme catalysis.
    Nature. 2007 Dec 6;450(7171):913-6 PMID: 18026087
  38. Experimental determination of upper bound for transition path times in protein folding from single-molecule photon-by-photon trajectories.
    Proc Natl Acad Sci U S A. 2009 Jul 21;106(29):11837-44 PMID: 19584244
  39. Illuminating the mechanistic roles of enzyme conformational dynamics.
    Proc Natl Acad Sci U S A. 2007 Nov 13;104(46):18055-60 PMID: 17989222
  40. Domain closure in adenylate kinase. Joints on either side of two helices close like neighboring fingers.
    J Mol Biol. 1993 Jan 20;229(2):494-501 PMID: 8429559
  41. Characterizing multiple molecular States in single-molecule multiparameter fluorescence detection by probability distribution analysis.
    J Phys Chem B. 2008 Jul 17;112(28):8361-74 PMID: 18570393
  42. WebLogo: a sequence logo generator.
    Genome Res. 2004 Jun;14(6):1188-90 PMID: 15173120
  43. Structure of a mutant adenylate kinase ligated with an ATP-analogue showing domain closure over ATP.
    J Mol Biol. 1996 Feb 23;256(2):223-7 PMID: 8594191
  44. Single molecule conformational dynamics of adenylate kinase: energy landscape, structural correlations, and transition state ensembles.
    J Am Chem Soc. 2008 Apr 9;130(14):4772-83 PMID: 18338887
  45. Crystal structures of Bacillus stearothermophilus adenylate kinase with bound Ap5A, Mg2+ Ap5A, and Mn2+ Ap5A reveal an intermediate lid position and six coordinate octahedral geometry for bound Mg2+ and Mn2+.
    Proteins. 1998 Aug 15;32(3):276-88 PMID: 9715904
  46. End-point targeted molecular dynamics: large-scale conformational changes in potassium channels.
    Biophys J. 2008 Jun;94(11):4307-19 PMID: 18310251
  47. Activation energy of catalysis-related domain motion in E. coli adenylate kinase.
    J Phys Chem B. 2006 Jun 15;110(23):11519-24 PMID: 16771428
  48. Coarse-grained free energy functions for studying protein conformational changes: a double-well network model.
    Biophys J. 2007 Dec 1;93(11):3860-71 PMID: 17704151
  49. Stability, activity and structure of adenylate kinase mutants.
    Eur J Biochem. 1995 Jul 15;231(2):405-13 PMID: 7635152
  50. Weighted-ensemble Brownian dynamics simulations for protein association reactions.
    Biophys J. 1996 Jan;70(1):97-110 PMID: 8770190
  51. Single-molecule FRET measures bends and kinks in DNA.
    Proc Natl Acad Sci U S A. 2008 Nov 25;105(47):18337-42 PMID: 19020079
  52. Molecular dynamics and protein function.
    Proc Natl Acad Sci U S A. 2005 May 10;102(19):6679-85 PMID: 15870208
  53. Intrinsic motions along an enzymatic reaction trajectory.
    Nature. 2007 Dec 6;450(7171):838-44 PMID: 18026086
  54. Linkage between dynamics and catalysis in a thermophilic-mesophilic enzyme pair.
    Nat Struct Mol Biol. 2004 Oct;11(10):945-9 PMID: 15334070
  55. String method in collective variables: minimum free energy paths and isocommittor surfaces.
    J Chem Phys. 2006 Jul 14;125(2):24106 PMID: 16848576
  56. Structure of the complex between adenylate kinase from Escherichia coli and the inhibitor Ap5A refined at 1.9 A resolution. A model for a catalytic transition state.
    J Mol Biol. 1992 Mar 5;224(1):159-77 PMID: 1548697
  57. Quantitative single-molecule conformational distributions: a case study with poly-(L-proline).
    J Phys Chem A. 2006 Apr 20;110(15):5191-203 PMID: 16610843
  58. In vivo molecular evolution reveals biophysical origins of organismal fitness.
    Mol Cell. 2006 May 19;22(4):441-9 PMID: 16713575
  59. Can morphing methods predict intermediate structures?
    J Mol Biol. 2009 Jan 16;385(2):665-74 PMID: 18996395
  60. Induced-fit movements in adenylate kinases.
    J Mol Biol. 1990 Jun 20;213(4):627-30 PMID: 2162964
  61. The structure of bovine mitochondrial adenylate kinase: comparison with isoenzymes in other compartments.
    Protein Sci. 1996 Mar;5(3):434-41 PMID: 8868479
  62. Movie of the structural changes during a catalytic cycle of nucleoside monophosphate kinases.
    Structure. 1995 May 15;3(5):483-90 PMID: 7663945
  63. The refined structure of the complex between adenylate kinase from beef heart mitochondrial matrix and its substrate AMP at 1.85 A resolution.
    J Mol Biol. 1991 Feb 5;217(3):541-9 PMID: 1994037
  64. Mechanism of adenylate kinase. Are the essential lysines essential?
    Biochemistry. 1990 May 8;29(18):4296-304 PMID: 2161682
  65. Transition-path sampling of beta-hairpin folding.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12129-34 PMID: 14523242
  66. Structure, catalysis and supramolecular assembly of adenylate kinase from maize.
    Eur J Biochem. 1997 Dec 1;250(2):326-31 PMID: 9428681
Article Info
Journal
Journal of molecular biology
Abbr.
J Mol Biol
ISSN
1089-8638
Published
2009-11-20
Epub
2009-00-12
Pages
160-76
Language
English
Region
England
NLM ID
2985088R
PMCID
PMC2803350
Subset
IM
Grants
NIGMS NIH HHS · R01 GM064746 · United States
NIGMS NIH HHS · R01 GM064746-04 · United States
NIGMS NIH HHS · GM064746 · 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