Perturbation of a lipid membrane by amphipathic peptides and its role in pore formation

被引:60
作者
Zemel, A
Ben-Shaul, A [1 ]
May, S
机构
[1] Hebrew Univ Jerusalem, Dept Phys Chem, IL-91904 Jerusalem, Israel
[2] Hebrew Univ Jerusalem, Fritz Haber Res Ctr, IL-91904 Jerusalem, Israel
[3] Univ Jena, Jr Res Grp Lipid Membranes, D-07743 Jena, Germany
来源
EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS | 2005年 / 34卷 / 03期
基金
以色列科学基金会;
关键词
D O I
10.1007/s00249-004-0445-9
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We study the structural and energetic consequences of (alpha-helical) amphipathic peptide adsorption onto a lipid membrane and the subsequent formation of a transmembrane peptide pore. Initially, each peptide binds to the membrane surface, with the hydrophobic face of its cylinder-like body inserted into the hydrocarbon core. Pore formation results from subsequent peptide crowding, oligomerization, and eventually reorientation along the membrane normal. We have theoretically analyzed three peptide-membrane association states: interfacially-adsorbed monomeric and dimeric peptides, and the multi-peptide transmembrane pore state. Our molecular-level model for the lipid bilayer is based on a combination of detailed chain packing theory and a phenomenological description of the headgroup region. We show that the membrane perturbation free energy depends critically on peptide orientation: in the transmembrane pore state the lipid perturbation energy, per peptide, is smaller than in the adsorbed state. This suggests that the gain in conformational freedom of the lipid chains is a central driving force for pore formation. We also find a weak, lipid-mediated, gain in membrane perturbation free energy upon dimerization of interfacially-adsorbed peptides. Although the results pertain mainly to weakly-charged peptides, they reveal general properties of the interaction of amphipathic peptides with lipid membranes.
引用
收藏
页码:230 / 242
页数:13
相关论文
共 49 条
[1]  
[Anonymous], 1992, INTERMOLECULAR SURFA
[2]   Conformation of alamethicin in oriented phospholipid bilayers determined by 15N solid-state nuclear magnetic resonance [J].
Bak, M ;
Bywater, RP ;
Hohwy, M ;
Thomsen, JK ;
Adelhorst, K ;
Jakobsen, HJ ;
Sorensen, OW ;
Nielsen, NC .
BIOPHYSICAL JOURNAL, 2001, 81 (03) :1684-1698
[3]   Bilayer thickness and lipid interface area in unilamellar extruded 1,2-diacylphosphatidylcholine liposomes:: a small-angle neutron scattering study [J].
Balgavy, P ;
Dubnicková, M ;
Kucerka, N ;
Kiselev, MA ;
Yaradaikin, SP ;
Uhriková, D .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2001, 1512 (01) :40-52
[4]   The structure, dynamics and orientation of antimicrobial peptides in membranes by multidimensional solid-state NMR spectroscopy [J].
Bechinger, B .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1999, 1462 (1-2) :157-183
[5]  
BENSHAUL A, 1994, MICELLES MEMBRANES M, P359
[6]   Size distribution of barrel-stave aggregates of membrane peptides: Influence of the bilayer lateral pressure profile [J].
Cantor, RS .
BIOPHYSICAL JOURNAL, 2002, 82 (05) :2520-2525
[7]  
CHEN L, 1997, BIOPHYS J, V73, P3
[8]   Effect of lipid characteristics on the structure of transmembrane proteins [J].
Dan, N ;
Safran, SA .
BIOPHYSICAL JOURNAL, 1998, 75 (03) :1410-1414
[9]   Enhanced membrane permeabilization and antibacterial activity of a disulfide-dimerized magainin analogue [J].
Dempsey, CE ;
Ueno, S ;
Avison, MB .
BIOCHEMISTRY, 2003, 42 (02) :402-409
[10]   RESTATEMENT OF ORDER PARAMETERS IN BIOMEMBRANES - CALCULATION OF C-C BOND ORDER PARAMETERS FROM C-D QUADRUPOLAR SPLITTINGS [J].
DOULIEZ, JP ;
LEONARD, A ;
DUFOURC, EJ .
BIOPHYSICAL JOURNAL, 1995, 68 (05) :1727-1739