Channel-forming activity of the low density lipoproteins

被引:0
|
作者
Grinfeldt, AE [1 ]
Gotlib, VA [1 ]
Kuznetsov, AS [1 ]
Rostovtseva, TK [1 ]
Schagina, LV [1 ]
Lev, AA [1 ]
Klimov, AN [1 ]
机构
[1] RUSSIAN ACAD MED SCI,EXPTL MED RES INST,ST PETERSBURG,RUSSIA
来源
BIOLOGICHESKIE MEMBRANY | 1995年 / 12卷 / 06期
关键词
D O I
暂无
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The increase in the background conductivity of the bilayer lipid membranes as well as the induction of the discrete current fluctuations, i.e. single ionic channels, as a response to the interaction of bilayers with low density lipoproteins (LDL) have been found. The mean values of the channel conductivities were 12.2 pS for LDL From healthy donors and 3.9 pS for LDL from patients with ischemic heart disease, the membrane background conductivities being increased by 7 and 100 pS respectively (0,1 M KCl, pH 7.4, 22 degrees C). The synthetic peptide of 11 amino acid residues that corresponds to the receptor domen (the amino acid sequence 3357-3367) of the LDL major protein (apoB-100) has provoked single channels of 13.0 pS amplitude, whereas the background conductivity increased up to 200 pS. Differential scanning calorimetry of multilamellar liposomes from dimyristoyl phosphatidylcholine has revealed the decomposition of the major phase transition peak into two components in the presence of the channel-forming compounds studied that allowed the suggestion of the lateral phase separation in the lipid bilayers. The increase in the background conductivity of the membranes may be considered as a result of disordering of the lipid molecule packing, whereas the appearance of discrete conductance fluctuations (single ion channels) may be ascribed to the formation of local defects in the lipid bilayer structure stabilized by LDL and the receptor fragment of apoB-100.
引用
收藏
页码:629 / 638
页数:10
相关论文
共 50 条
  • [21] Assembly modulation of channel-forming peptides
    Futaki, S
    SELF-ASSEMBLING PEPTIDE SYSTEMS IN BIOLOGY, MEDICINE AND ENGINEERING, 2001, : 87 - 104
  • [22] The design, synthesis and characterisation of channel-forming peptides
    Sanderson, JM
    Yazdani, S
    CHEMICAL COMMUNICATIONS, 2002, (10) : 1154 - 1155
  • [23] Channel-forming activity and channel size of the RTX toxins ApxI, ApxII, and ApxIII of Actinobacillus pleuropneumoniae
    Maier, E
    Reinhard, N
    Benz, R
    Frey, J
    INFECTION AND IMMUNITY, 1996, 64 (11) : 4415 - 4423
  • [24] Role of dipole potential in the channel-forming activity of cecropin A in planar lipid bilayers
    Efimova, S.
    Schagina, L.
    Ostroumova, O.
    FEBS JOURNAL, 2013, 280 : 188 - 188
  • [25] CHANNEL-FORMING ACTIVITY OF HUMAN DEFENSINS - DEPENDENCE ON N-TERMINAL RESIDUE
    MUNOZ, DM
    SOKOLOV, Y
    GANZ, T
    LEHRER, RI
    KAGAN, BL
    BIOPHYSICAL JOURNAL, 1994, 66 (02) : A222 - A222
  • [26] Channel-forming activity in the venom of the cockroach-hunting wasp, Ampulex compressa
    Gincel, D
    Haspel, G
    Libersat, F
    TOXICON, 2004, 43 (06) : 721 - 727
  • [27] IDENTIFICATION OF CHANNEL-FORMING ACTIVITY IN THE CELL-WALL OF CORYNEBACTERIUM-GLUTAMICUM
    NIEDERWEIS, M
    MAIER, E
    LICHTINGER, T
    BENZ, R
    KRAMER, R
    JOURNAL OF BACTERIOLOGY, 1995, 177 (19) : 5716 - 5718
  • [28] Channel-forming activity of nisin in two mercury-supported biomimetic membranes
    Becucci, Lucia
    Aloisi, Giovanni
    Papini, Anna Maria
    Guidelli, Rolando
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2018, 812 : 186 - 193
  • [29] STRUCTURE-FUNCTION OF THE CHANNEL-FORMING COLICINS
    CRAMER, WA
    HEYMANN, JB
    SCHENDEL, SL
    DERIY, BN
    COHEN, FS
    ELKINS, PA
    STAUFFACHER, CV
    ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 1995, 24 : 611 - 641
  • [30] Structural design and characterization of a channel-forming peptide
    Krittanai, C
    Panyim, S
    JOURNAL OF BIOCHEMISTRY AND MOLECULAR BIOLOGY, 2004, 37 (04): : 460 - 465