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PMID: 20964375 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Structural origins of nitroxide side chain dynamics on membrane protein α-helical sites.

Biochemistry ·Vol. 49 ·No. 47 ·2010-11-30 ·Pages 10045-60

Kroncke BM, Horanyi PS, Columbus L

Abstract

Understanding the structure and dynamics of membrane proteins in their native, hydrophobic environment is important to understanding how these proteins function. EPR spectroscopy in combination with site-directed spin labeling (SDSL) can measure dynamics and structure of membrane proteins in their native lipid environment; however, until now the dynamics measured have been qualitative due to limited knowledge of the nitroxide spin label's intramolecular motion in the hydrophobic environment. Although several studies have elucidated the structural origins of EPR line shapes of water-soluble proteins, EPR spectra of nitroxide spin-labeled proteins in detergents or lipids have characteristic differences from their water-soluble counterparts, suggesting significant differences in the underlying molecular motion of the spin label between the two environments. To elucidate these differences, membrane-exposed α-helical sites of the leucine transporter, LeuT, from Aquifex aeolicus, were investigated using X-ray crystallography, mutational analysis, nitroxide side chain derivatives, and spectral simulations in order to obtain a motional model of the nitroxide. For each crystal structure, the nitroxide ring of a disulfide-linked spin label side chain (R1) is resolved and makes contacts with hydrophobic residues on the protein surface. The spin label at site I204 on LeuT makes a nontraditional hydrogen bond with the ortho-hydrogen on its nearest neighbor F208, whereas the spin label at site F177 makes multiple van der Waals contacts with a hydrophobic pocket formed with an adjacent helix. These results coupled with the spectral effect of mutating the i ± 3, 4 residues suggest that the spin label has a greater affinity for its local protein environment in the low dielectric than on a water-soluble protein surface. The simulations of the EPR spectra presented here suggest the spin label oscillates about the terminal bond nearest the ring while maintaining weak contact with the protein surface. Combined, the results provide a starting point for determining a motional model for R1 on membrane proteins, allowing quantification of nitroxide dynamics in the aliphatic environment of detergent and lipids. In addition, initial contributions to a rotamer library of R1 on membrane proteins are provided, which will assist in reliably modeling the R1 conformational space for pulsed dipolar EPR and NMR paramagnetic relaxation enhancement distance determination.

MeSH Terms
Amino Acid Transport Systems/chemistry,genetics Bacterial Proteins/chemistry,genetics Crystallography, X-Ray Cyclic N-Oxides/chemistry Electron Spin Resonance Spectroscopy Models, Molecular Protein Structure, Secondary/drug effects Spin Labels
Chemicals
Amino Acid Transport Systems Bacterial Proteins Cyclic N-Oxides Spin Labels
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Kroncke Brett M
Department of Chemistry, University of Virginia,Charlottesville, Virginia 22904, United States.
Horanyi Peter S
Columbus Linda
References (50)
50 references, click to expand
  1. Mapping backbone dynamics in solution with site-directed spin labeling: GCN4-58 bZip free and bound to DNA.
    Biochemistry. 2004 Jun 15;43(23):7273-87 PMID: 15182173
  2. Side-chain contributions to membrane protein structure and stability.
    J Mol Biol. 2004 Jan 2;335(1):297-305 PMID: 14659758
  3. Site-directed parallel spin-labeling and paramagnetic relaxation enhancement in structure determination of membrane proteins by solution NMR spectroscopy.
    J Am Chem Soc. 2006 Apr 5;128(13):4389-97 PMID: 16569016
  4. Parametrization, molecular dynamics simulation, and calculation of electron spin resonance spectra of a nitroxide spin label on a polyalanine alpha-helix.
    J Phys Chem B. 2008 May 8;112(18):5755-67 PMID: 18412413
  5. Watching proteins move using site-directed spin labeling.
    Structure. 1996 Jul 15;4(7):779-83 PMID: 8805569
  6. Alternating access of the putative substrate-binding chamber in the ABC transporter MsbA.
    J Mol Biol. 2009 Oct 30;393(3):574-85 PMID: 19715704
  7. Coot: model-building tools for molecular graphics.
    Acta Crystallogr D Biol Crystallogr. 2004 Dec;60(Pt 12 Pt 1):2126-32 PMID: 15572765
  8. Site-directed spin labeling of a genetically encoded unnatural amino acid.
    Proc Natl Acad Sci U S A. 2009 Dec 22;106(51):21637-42 PMID: 19995976
  9. Toward high-resolution prediction and design of transmembrane helical protein structures.
    Proc Natl Acad Sci U S A. 2007 Oct 2;104(40):15682-7 PMID: 17905872
  10. Identifying conformational changes with site-directed spin labeling.
    Nat Struct Biol. 2000 Sep;7(9):735-9 PMID: 10966640
  11. Influence of proline upon the folding and geometry of the WALP19 transmembrane peptide.
    Biochemistry. 2009 Dec 22;48(50):11883-91 PMID: 19891499
  12. The CCP4 suite: programs for protein crystallography.
    Acta Crystallogr D Biol Crystallogr. 1994 Sep 1;50(Pt 5):760-3 PMID: 15299374
  13. Structural studies on transmembrane proteins. 2. Spin labeling of bacteriorhodopsin mutants at unique cysteines.
    Biochemistry. 1989 Sep 19;28(19):7806-12 PMID: 2558712
  14. A collision gradient method to determine the immersion depth of nitroxides in lipid bilayers: application to spin-labeled mutants of bacteriorhodopsin.
    Proc Natl Acad Sci U S A. 1994 Mar 1;91(5):1667-71 PMID: 8127863
  15. Structural heterogeneity in protein crystals.
    Biochemistry. 1986 Sep 9;25(18):5018-27 PMID: 3768328
  16. DaliLite workbench for protein structure comparison.
    Bioinformatics. 2000 Jun;16(6):566-7 PMID: 10980157
  17. Structural and dynamical examination of the low-temperature glass transition in serum albumin.
    Biophys J. 2006 Nov 15;91(10):3841-7 PMID: 16935952
  18. Analysis of side-chain rotamers in transmembrane proteins.
    Biophys J. 2004 Nov;87(5):3460-9 PMID: 15339811
  19. Crystal structure of a bacterial homologue of Na+/Cl--dependent neurotransmitter transporters.
    Nature. 2005 Sep 8;437(7056):215-23 PMID: 16041361
  20. Motion of spin-labeled side chains in T4 lysozyme: effect of side chain structure.
    Biochemistry. 1999 Mar 9;38(10):2947-55 PMID: 10074347
  21. MolProbity: all-atom contacts and structure validation for proteins and nucleic acids.
    Nucleic Acids Res. 2007 Jul;35(Web Server issue):W375-83 PMID: 17452350
  22. Hydrogen bonding in globular proteins.
    Prog Biophys Mol Biol. 1984;44(2):97-179 PMID: 6385134
  23. Structural and dynamical changes in an alpha-subunit of a heterotrimeric G protein along the activation pathway.
    Proc Natl Acad Sci U S A. 2006 Oct 31;103(44):16194-9 PMID: 17053066
  24. Processing of X-ray diffraction data collected in oscillation mode.
    Methods Enzymol. 1997;276:307-26 PMID: 27754618
  25. Structural origin of weakly ordered nitroxide motion in spin-labeled proteins.
    Protein Sci. 2009 May;18(5):893-908 PMID: 19384990
  26. The penultimate rotamer library.
    Proteins. 2000 Aug 15;40(3):389-408 PMID: 10861930
  27. A new spin on protein dynamics.
    Trends Biochem Sci. 2002 Jun;27(6):288-95 PMID: 12069788
  28. Motion of spin-labeled side chains in T4 lysozyme. Correlation with protein structure and dynamics.
    Biochemistry. 1996 Jun 18;35(24):7692-704 PMID: 8672470
  29. Recent advances and applications of site-directed spin labeling.
    Curr Opin Struct Biol. 2006 Oct;16(5):644-53 PMID: 16949813
  30. Molecular motion of spin labeled side chains in alpha-helices: analysis by variation of side chain structure.
    Biochemistry. 2001 Apr 3;40(13):3828-46 PMID: 11300763
  31. The Polymerase Incomplete Primer Extension (PIPE) method applied to high-throughput cloning and site-directed mutagenesis.
    Methods Mol Biol. 2009;498:91-103 PMID: 18988020
  32. Structural determinants of nitroxide motion in spin-labeled proteins: tertiary contact and solvent-inaccessible sites in helix G of T4 lysozyme.
    Protein Sci. 2007 Jun;16(6):1069-86 PMID: 17473014
  33. Structural determinants of nitroxide motion in spin-labeled proteins: solvent-exposed sites in helix B of T4 lysozyme.
    Protein Sci. 2008 Feb;17(2):228-39 PMID: 18096642
  34. A transmembrane form of annexin XII detected by site-directed spin labeling.
    Proc Natl Acad Sci U S A. 1998 Nov 24;95(24):14060-5 PMID: 9826653
  35. Structural imperatives impose diverse evolutionary constraints on helical membrane proteins.
    Proc Natl Acad Sci U S A. 2009 Oct 20;106(42):17747-50 PMID: 19815527
  36. Dynamics of the nitroxide side chain in spin-labeled proteins.
    J Phys Chem B. 2006 Dec 28;110(51):26248-59 PMID: 17181283
  37. Proline-induced distortions of transmembrane helices.
    J Mol Biol. 2002 Nov 8;323(5):951-60 PMID: 12417206
  38. Transmembrane protein structure: spin labeling of bacteriorhodopsin mutants.
    Science. 1990 Jun 1;248(4959):1088-92 PMID: 2160734
  39. Motion of spin label side chains in cellular retinol-binding protein: correlation with structure and nearest-neighbor interactions in an antiparallel beta-sheet.
    Biochemistry. 2004 Mar 23;43(11):3137-51 PMID: 15023065
  40. A general method for hyperquenching protein crystals.
    J Struct Funct Genomics. 2007 Dec;8(4):141-4 PMID: 17952628
  41. Structure, dynamics, and substrate-induced conformational changes of the multidrug transporter EmrE in liposomes.
    J Biol Chem. 2010 Aug 20;285(34):26710-8 PMID: 20551331
  42. Strength of the Calpha H..O hydrogen bond of amino acid residues.
    J Biol Chem. 2001 Mar 30;276(13):9832-7 PMID: 11152477
  43. Crystal structures of spin labeled T4 lysozyme mutants: implications for the interpretation of EPR spectra in terms of structure.
    Biochemistry. 2000 Jul 25;39(29):8396-405 PMID: 10913245
  44. Structural features and light-dependent changes in the cytoplasmic interhelical E-F loop region of rhodopsin: a site-directed spin-labeling study.
    Biochemistry. 1996 Sep 24;35(38):12470-8 PMID: 8823182
  45. Structure of the KcsA potassium channel from Streptomyces lividans: a site-directed spin labeling study of the second transmembrane segment.
    Biochemistry. 1999 Aug 10;38(32):10324-35 PMID: 10441126
  46. Methods for measuring the thermodynamic stability of membrane proteins.
    Methods Enzymol. 2009;455:213-36 PMID: 19289208
  47. Organization of diphtheria toxin T domain in bilayers: a site-directed spin labeling study.
    Science. 1996 Aug 9;273(5276):810-2 PMID: 8670424
  48. A scissors mechanism for stimulation of SNARE-mediated lipid mixing by cholesterol.
    Proc Natl Acad Sci U S A. 2009 Mar 31;106(13):5141-6 PMID: 19251653
  49. Stacked sets of parallel, in-register beta-strands of beta2-microglobulin in amyloid fibrils revealed by site-directed spin labeling and chemical labeling.
    J Biol Chem. 2010 May 28;285(22):17137-47 PMID: 20335170
  50. Explicit treatment of spin labels in modeling of distance constraints from dipolar EPR and DEER.
    J Am Chem Soc. 2005 Jul 6;127(26):9334-5 PMID: 15984837
Article Info
Journal
Biochemistry
Abbr.
Biochemistry
ISSN
1520-4995
Published
2010-11-30
Epub
2010-00-08
Pages
10045-60
Language
English
Region
United States
NLM ID
0370623
PMCID
PMC2991438
Subset
IM
Grants
NIGMS NIH HHS · R01 GM087828 · United States
NIGMS NIH HHS · R01GM087828 · United States
NIGMS NIH HHS · R01 GM079800 · United States
NIGMS NIH HHS · R01GM079800 · United States
NIGMS NIH HHS · R01 GM087828-01 · United States
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