Two homologous apolipoprotein AI mimetic peptides - Relationship between membrane interactions and biological activity

被引:19
作者
Epand, RM [1 ]
Epand, RF
Sayer, BG
Datta, G
Chaddha, M
Anantharamaiah, GM
机构
[1] McMaster Univ, Dept Biochem, Hamilton, ON L8N 3Z5, Canada
[2] McMaster Univ, Dept Biomed Sci, Hamilton, ON L8N 3Z5, Canada
[3] McMaster Univ, Dept Chem, Hamilton, ON L8N 3Z5, Canada
[4] Univ Alabama Birmingham, Dept Med, Birmingham, AL 35294 USA
[5] Univ Alabama Birmingham, Dept Biochem, Birmingham, AL 35294 USA
[6] Univ Alabama Birmingham, Dept Mol Genet, Birmingham, AL 35294 USA
[7] Univ Alabama Birmingham, Atherosclerosis Res Unit, Birmingham, AL 35294 USA
关键词
D O I
10.1074/jbc.M408581200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Two related 18-amino acid, class A, amphipathic helical peptides termed 3F-2 and 3F(14) were chosen for this study. Although they have identical amino acid compositions and many similar biophysical properties, 3F-2 is more potent than 3F(14) as an apolipoprotein AI mimetic peptide. The two peptides exhibit similar gross conformational properties, forming structures of high helical content on a membrane surface. However, the thermal denaturation transition of 3F-2 is more cooperative, suggesting a higher degree of oligomerization on the membrane. Both 3F-2 and 3F(14) promote the segregation of cholesterol in membranes containing phosphatidylcholine and cholesterol, but 3F-2 exhibits a greater selectivity for partitioning into cholesterol-depleted regions of the membrane. Magic angle spinning/NMR studies indicate that the aromatic residues of 3F-2 are stacked in the presence of lipid. The aromatic side chains of this peptide also penetrate more deeply into membranes of phosphatidylcholine with cholesterol compared with 3F(14). Using the fluorescent probe, 1,3-dipyrenylpropane, we monitored the properties of the lipid hydrocarbon environment. 3F-2 had a greater effect in altering the properties of the hydrocarbon region of the membrane. The results are consistent with our proposed model of the effect of peptide shape on the nature of the difference in peptide insertion into the bilayer.
引用
收藏
页码:51404 / 51414
页数:11
相关论文
共 20 条
  • [1] Ames B. N., 1966, METHOD ENZYMOL, V8, P115, DOI DOI 10.1016/0076-6879(66)08014-5
  • [2] ANANTHARAMAIAH GM, 1993, AMPHIPATHIC HELIX, P109
  • [3] 1H-NMR parameters of common amino acid residues measured in aqueous solutions of the linear tetrapeptides Gly-Gly-X-Ala at pressures between 0.1 and 200 MPa
    Arnold, MR
    Kremer, W
    Lüdemann, HD
    Kalbitzer, HR
    [J]. BIOPHYSICAL CHEMISTRY, 2002, 96 (2-3) : 129 - 140
  • [4] Aromatic residue position on the nonpolar face of class A amphipathic helical peptides determines biological activity
    Datta, G
    Epand, RF
    Epand, RM
    Chaddha, M
    Kirksey, MA
    Garber, DW
    Lund-Katz, S
    Phillips, MC
    Hama, S
    Navab, M
    Fogelman, AM
    Palgunachari, MN
    Segrest, JP
    Anantharamaiah, GM
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (25) : 26509 - 26517
  • [5] Datta G, 2001, J LIPID RES, V42, P1096
  • [6] Do proteins facilitate the formation of cholesterol-rich domains?
    Epand, RM
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2004, 1666 (1-2): : 227 - 238
  • [7] An apolipoprotein AI mimetic peptide: Membrane interactions and the role of cholesterol
    Epand, RM
    Epand, RF
    Sayer, BG
    Melacini, G
    Palgulachari, MN
    Segrest, JP
    Anantharamaiah, GM
    [J]. BIOCHEMISTRY, 2004, 43 (17) : 5073 - 5083
  • [8] Peptide-induced formation of cholesterol-rich domains
    Epand, RM
    Sayer, BG
    Epand, RF
    [J]. BIOCHEMISTRY, 2003, 42 (49) : 14677 - 14689
  • [9] SOME NEW DEVELOPMENTS IN SOLID-STATE NUCLEAR MAGNETIC-RESONANCE SPECTROSCOPIC STUDIES OF LIPIDS AND BIOLOGICAL-MEMBRANES, INCLUDING THE EFFECTS OF CHOLESTEROL IN MODEL AND NATURAL SYSTEMS
    FORBES, J
    BOWERS, J
    SHAN, X
    MORAN, L
    OLDFIELD, E
    MOSCARELLO, MA
    [J]. JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS I, 1988, 84 : 3821 - 3849
  • [10] Garber DW, 2001, J LIPID RES, V42, P545