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PMID: 12766402 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Analysis of local conformation of membrane-bound and polycrystalline peptides by two-dimensional slow-spinning rotor-synchronized MAS exchange spectroscopy.

Journal of biomolecular NMR ·Vol. 26 ·No. 1 ·2003-05-00 ·Pages 49-68

Gabrys CM, Yang J, Weliky DP

Abstract

2D slow-spinning, rotor-synchronized MAS exchange spectroscopy (SSRS-MASE) was applied to study local secondary structure of three structurally different peptides, two of which were membrane-bound. Each peptide was (13)C carbonyl labeled at two adjacent residues in the peptide backbone. In general, this methodology is attractive for membrane-bound peptides because of its lenient spinning, decoupling, and RF homogeneity requirements. For a single set of raw SSRS-MASE data, two linearly independent methods exist for obtaining a 2D spectrum and each spectrum can be fit to obtain conformational constraints. An approach is described for combining the results of these two fits and this method is shown to work for spectra with both resolved and unresolved labeled site resonances. A spectrum is often fit well to a few different conformations which have somewhat different values of the fitting parameter chi(2). A simple statistical theory is developed which relates the deltachi(2) difference between a local minimum and the global minimum chi(2) to the likelihood that the local minimum conformation is the correct structure. Because uncertainty in the simulated data can also contribute to the overall fitting uncertainty, an empirical method is described for incorporating the simulation uncertainty into the deltachi(2) analysis. These data analysis methods were tested on polycrystalline Ala-Gly-Gly and then applied to the membrane-bound melittin and HIV-1 fusion peptides. Melittin gave a best-fit alpha helical structure at Ala-4 while the fusion peptide gave a good-fit beta strand structure at Phe-8. The melittin analysis is in agreement with the known overall structure of this peptide.

MeSH Terms
Acrylic Resins Amino Acid Sequence Crystallization Indicators and Reagents Kinetics Magnetic Resonance Spectroscopy/methods Membrane Lipids/chemistry Oligopeptides/chemistry Peptides/chemistry Phospholipids/chemistry Protein Conformation Reproducibility of Results
Chemicals
Acrylic Resins Indicators and Reagents Membrane Lipids Oligopeptides Peptides Phospholipids
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Gabrys Charles M
Department of Chemistry, Michigan State University, East Lansing, MI 48824, USA.
Yang Jun
Weliky David P
References (35)
35 references, click to expand
  1. Amyloid fibril formation by A beta 16-22, a seven-residue fragment of the Alzheimer's beta-amyloid peptide, and structural characterization by solid state NMR.
    Biochemistry. 2000 Nov 14;39(45):13748-59 PMID: 11076514
  2. Solid state NMR measurements of conformation and conformational distributions in the membrane-bound HIV-1 fusion peptide.
    J Mol Graph Model. 2001;19(1):129-35 PMID: 11381522
  3. Conformational transitions of membrane-bound HIV-1 fusion peptide.
    Biochim Biophys Acta. 2002 Aug 19;1564(1):57-65 PMID: 12100996
  4. Interaction of the HIV-1 fusion peptide with phospholipid vesicles: different structural requirements for fusion and leakage.
    Biochemistry. 1994 Mar 22;33(11):3201-9 PMID: 8136355
  5. Dipolar recoupling in MAS spectra of biological solids.
    Nat Struct Biol. 1998 Jul;5 Suppl:508-12 PMID: 9665180
  6. Preparation and properties of Nalpha-9-fluorenylmethyloxycarbonylamino acids bearing tert.-butyl side chain protection.
    Int J Pept Protein Res. 1980 Jan;15(1):59-66 PMID: 7358458
  7. NMRPipe: a multidimensional spectral processing system based on UNIX pipes.
    J Biomol NMR. 1995 Nov;6(3):277-93 PMID: 8520220
  8. The interactions of the N-terminal fusogenic peptide of HIV-1 gp41 with neutral phospholipids.
    Eur Biophys J. 1999;28(5):427-36 PMID: 10413864
  9. The amino-terminal peptide of HIV-1 glycoprotein 41 fuses human erythrocytes.
    Biochim Biophys Acta. 1995 Jun 9;1271(2-3):304-14 PMID: 7605797
  10. Structure and orientation of the pore-forming peptide, melittin, in lipid bilayers.
    J Mol Biol. 1994 Aug 19;241(3):456-66 PMID: 8064858
  11. Liposome destabilization induced by the HIV-1 fusion peptide effect of a single amino acid substitution.
    FEBS Lett. 1995 Apr 3;362(2):243-6 PMID: 7720880
  12. Magic angle spinning NMR of the protonated retinylidene Schiff base nitrogen in rhodopsin: expression of 15N-lysine- and 13C-glycine-labeled opsin in a stable cell line.
    Proc Natl Acad Sci U S A. 1999 Jan 19;96(2):487-92 PMID: 9892660
  13. Structure and functions of channel-forming peptides: magainins, cecropins, melittin and alamethicin.
    J Membr Biol. 1997 Apr 1;156(3):197-211 PMID: 9096062
  14. Solid-state nuclear magnetic resonance evidence for an extended beta strand conformation of the membrane-bound HIV-1 fusion peptide.
    Biochemistry. 2001 Jul 10;40(27):8126-37 PMID: 11434782
  15. Permeabilization and fusion of uncharged lipid vesicles induced by the HIV-1 fusion peptide adopting an extended conformation: dose and sequence effects.
    Biophys J. 1997 Oct;73(4):1977-86 PMID: 9336193
  16. Observation of the glycines in elastin using (13)C and (15)N solid-state NMR spectroscopy and isotopic labeling.
    J Am Chem Soc. 2002 Jun 19;124(24):6832-3 PMID: 12059197
  17. Solid-state NMR evidence for an antibody-dependent conformation of the V3 loop of HIV-1 gp120.
    Nat Struct Biol. 1999 Feb;6(2):141-5 PMID: 10048925
  18. Lipid membrane fusion induced by the human immunodeficiency virus type 1 gp41 N-terminal extremity is determined by its orientation in the lipid bilayer.
    J Virol. 1996 Jan;70(1):298-304 PMID: 8523539
  19. Measurement of conformational constraints in an elastin-mimetic protein by residue-pair selected solid-state NMR.
    J Biomol NMR. 2002 Feb;22(2):175-9 PMID: 11883778
  20. Propagating structure of Alzheimer's beta-amyloid(10-35) is parallel beta-sheet with residues in exact register.
    Proc Natl Acad Sci U S A. 1998 Nov 10;95(23):13407-12 PMID: 9811813
  21. Dual processing of two-dimensional exchange data in magic angle spinning NMR of solids.
    J Magn Reson. 1999 Nov;141(1):141-7 PMID: 10527751
  22. Phospholipid interactions of synthetic peptides representing the N-terminus of HIV gp41.
    Biochemistry. 1990 Aug 28;29(34):7917-22 PMID: 2261447
  23. Requirement of N-terminal amino acid residues of gp41 for human immunodeficiency virus type 1-mediated cell fusion.
    J Virol. 1995 Jun;69(6):3308-14 PMID: 7745678
  24. Fusion peptides derived from the HIV type 1 glycoprotein 41 associate within phospholipid membranes and inhibit cell-cell Fusion. Structure-function study.
    J Biol Chem. 1997 May 23;272(21):13496-505 PMID: 9153194
  25. Conformational mapping of the N-terminal peptide of HIV-1 gp41 in membrane environments using (13)C-enhanced Fourier transform infrared spectroscopy.
    Biochim Biophys Acta. 2002 Feb 15;1559(2):96-120 PMID: 11853678
  26. Secondary structure and location of a magainin analogue in synthetic phospholipid bilayers.
    Biochemistry. 1996 Oct 1;35(39):12733-41 PMID: 8841117
  27. Characterization of the fusion domain of the human immunodeficiency virus type 1 envelope glycoprotein gp41.
    Proc Natl Acad Sci U S A. 1990 Jun;87(12):4650-4 PMID: 2191297
  28. A mutation in the human immunodeficiency virus type 1 transmembrane glycoprotein gp41 dominantly interferes with fusion and infectivity.
    Proc Natl Acad Sci U S A. 1992 Jan 1;89(1):70-4 PMID: 1729720
  29. Relationship between nuclear magnetic resonance chemical shift and protein secondary structure.
    J Mol Biol. 1991 Nov 20;222(2):311-33 PMID: 1960729
  30. Site-directed solid-state NMR measurement of a ligand-induced conformational change in the serine bacterial chemoreceptor.
    Biochemistry. 2001 Feb 6;40(5):1358-66 PMID: 11170463
  31. What studies of fusion peptides tell us about viral envelope glycoprotein-mediated membrane fusion (review).
    Mol Membr Biol. 1997 Jul-Sep;14(3):97-112 PMID: 9394290
  32. Solid state 15N NMR evidence for a complex Schiff base counterion in the visual G-protein-coupled receptor rhodopsin.
    Biochemistry. 1999 Jun 1;38(22):7195-9 PMID: 10353830
  33. The actions of melittin on membranes.
    Biochim Biophys Acta. 1990 May 7;1031(2):143-61 PMID: 2187536
  34. A repeated beta-turn structure in poly(Ala-Gly) as a model for silk I of Bombyx mori silk fibroin studied with two-dimensional spin-diffusion NMR under off magic angle spinning and rotational echo double resonance.
    J Mol Biol. 2001 Feb 16;306(2):291-305 PMID: 11237601
  35. Structural model for the beta-amyloid fibril based on interstrand alignment of an antiparallel-sheet comprising a C-terminal peptide.
    Nat Struct Biol. 1995 Nov;2(11):990-8 PMID: 7583673
Article Info
Journal
Journal of biomolecular NMR
Abbr.
J Biomol NMR
ISSN
0925-2738
Published
2003-05-00
Pages
49-68
Language
English
Region
Netherlands
NLM ID
9110829
Subset
IM
Grants
NIAID NIH HHS · R01 AI047153 · United States
NIAID NIH HHS · AI47153 · United States
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