Transmembrane asymmetry and lateral domains in biological membranes

被引:212
作者
Devaux, PF
Morris, R
机构
[1] Inst Biol Physicochim, F-75005 Paris, France
[2] Kings Coll London, MRC, Ctr Dev Neurobiol, London SE1 1UL, England
关键词
lipid asymmetry; lipid protein interactions; liquid ordered phase; rafts; transmembrane diffusion;
D O I
10.1111/j.1600-0854.2004.0170.x
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
It is generally assumed that rafts exist in both the external and internal leaflets of the membrane, and that they overlap so that they are coupled functionally and structurally. However, the two monolayers of the plasma membrane of eukaryotic cells have different chemical compositions. This out-of-equilibrium situation is maintained by the activity of lipid translocases, which compensate for the slow spontaneous transverse diffusion of lipids. Thus rafts in the outer leaflet, corresponding to domains enriched in sphingomyelin and cholesterol, cannot be mirrored in the inner cytoplasmic leaflet. The extent to which lipids contribute to raft properties can be conveniently studied in giant unilamellar vesicles. In these, cholesterol can be seen to condense with saturated sphingolipids or phosphatidylcholine to form mum scale domains. However, such rafts fail to model biological rafts because they are symmetric, and because their membranes lack the mechanism that establishes this asymmetry, namely proteins. Biological rafts are in general of nm scale, and almost certainly differ in size and stability in inner and outer monolayers. Any coupling between rafts in the two leaflets, should it occur, is probably transient and dependent not upon the properties of lipids, but on transmembrane proteins within the rafts.
引用
收藏
页码:241 / 246
页数:6
相关论文
共 41 条
[1]   Cholesterol dynamics in membranes of raft composition:: A molecular point of view from 2H and 31P solid-state NMR [J].
Aussenac, F ;
Tavares, M ;
Dufourc, EJ .
BIOCHEMISTRY, 2003, 42 (06) :1383-1390
[2]   Two photon fluorescence microscopy of coexisting lipid domains in giant unilamellar vesicles of binary phospholipid mixtures [J].
Bagatolli, LA ;
Gratton, E .
BIOPHYSICAL JOURNAL, 2000, 78 (01) :290-305
[3]   A correlation between lipid domain shape and binary phospholipid mixture composition in free standing bilayers: A two-photon fluorescence microscopy study [J].
Bagatolli, LA ;
Gratton, E .
BIOPHYSICAL JOURNAL, 2000, 79 (01) :434-447
[4]   Imaging coexisting fluid domains in biomembrane models coupling curvature and line tension [J].
Baumgart, T ;
Hess, ST ;
Webb, WW .
NATURE, 2003, 425 (6960) :821-824
[5]   TIME AND DISTANCE SCALES OF MEMBRANE DOMAIN ORGANIZATION [J].
BLOOM, M ;
THEWALT, JL .
MOLECULAR MEMBRANE BIOLOGY, 1995, 12 (01) :9-13
[6]   PHOSPHOLIPID TRANSMEMBRANE DOMAINS AND LATERAL DIFFUSION IN FIBROBLASTS [J].
CHAHINE, JMEH ;
CRIBIER, S ;
DEVAUX, PF .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (02) :447-451
[7]  
CRIBIER S, 1990, EUR BIOPHYS J, V18, P33, DOI 10.1007/BF00185418
[8]   Sphingomyelin/phosphatidylcholine/cholesterol phase diagram: Boundaries and composition of lipid rafts [J].
de Almeida, RFM ;
Fedorov, A ;
Prieto, M .
BIOPHYSICAL JOURNAL, 2003, 85 (04) :2406-2416
[9]   SPECIFICITY OF LIPID-PROTEIN INTERACTIONS AS DETERMINED BY SPECTROSCOPIC TECHNIQUES [J].
DEVAUX, PF ;
SEIGNEURET, M .
BIOCHIMICA ET BIOPHYSICA ACTA, 1985, 822 (01) :63-125
[10]   STATIC AND DYNAMIC LIPID ASYMMETRY IN CELL-MEMBRANES [J].
DEVAUX, PF .
BIOCHEMISTRY, 1991, 30 (05) :1163-1173