Lipid rafts in higher plant cells - Purification and characterization of triton X-100-insoluble microdomains from tobacco plasma membrane

被引:368
作者
Mongrand, S
Morel, J
Laroche, J
Claverol, S
Carde, JP
Hartmann, MA
Bonneu, M
Simon-Plas, F
Lessire, R
Bessoule, JJ
机构
[1] Univ Bordeaux 2, Lab Biogenese Membranaire, CNRS, FRE 2694, Bordeaux, France
[2] Univ Bourgogne, INRA, UMR 692, Phytopharm Lab, F-21065 Dijon, France
[3] Univ Bordeaux 2, Univ Bordeaux 1, INRA, UMR 6191,Inst Biol Vegetale Mol, F-33883 Villenave Dornon, France
[4] Univ Strasbourg, CNRS, UPR 2357, Inst Biol Mol Plantes, F-67083 Strasbourg, France
关键词
D O I
10.1074/jbc.M403440200
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
A large body of evidence from the past decade supports the existence of functional microdomains in membranes of animal and yeast cells, which play important roles in protein sorting, signal transduction, or infection by pathogens. They are based on the dynamic clustering of sphingolipids and cholesterol or ergosterol and are characterized by their insolubility, at low temperature, in nonionic detergents. Here we show that similar microdomains also exist in plant plasma membrane isolated from both tobacco leaves and BY2 cells. Tobacco lipid rafts were found to be greatly enriched in a sphingolipid, identified as glycosylceramide, as well as in a mixture of stigmasterol, sitosterol, 24-methylcholesterol, and cholesterol. Phospho- and glycoglycerolipids of the plasma membrane were largely excluded from lipid rafts. Membrane proteins were separated by one- and two-dimensional gel electrophoresis and identified by tandem mass spectrometry or use of specific antibody. The data clearly indicate that tobacco microdomains are able to recruit a specific set of the plasma membrane proteins and exclude others. We demonstrate the recruitment of the NADPH oxidase after elicitation by cryptogein and the presence of the small G protein NtRac5, a negative regulator of NADPH oxidase, in lipid rafts.
引用
收藏
页码:36277 / 36286
页数:10
相关论文
共 59 条
[1]  
Ames B. N., 1966, METHOD ENZYMOL, V8, P115, DOI DOI 10.1016/0076-6879(66)08014-5
[2]   Phosphate-deficient oat replaces a major portion of the plasma membrane phospholipids with the galactolipid digalactosyldiacylglycerol [J].
Andersson, MX ;
Stridh, MH ;
Larsson, KE ;
Lijenberg, C ;
Sandelius, AS .
FEBS LETTERS, 2003, 537 (1-3) :128-132
[3]   Subcellular localization of 14-3-3 proteins in Toxoplasma gondii tachyzoites and evidence for a lipid raft-associated form [J].
Assossou, O ;
Besson, F ;
Rouault, JP ;
Persat, F ;
Brisson, C ;
Duret, L ;
Ferrandiz, J ;
Mayençon, M ;
Peyron, F ;
Picot, S .
FEMS MICROBIOLOGY LETTERS, 2003, 224 (02) :161-168
[4]   Lipid rafts in protein sorting and cell polarity in budding yeast Saccharomyces cerevisiae [J].
Bagnat, M ;
Simons, K .
BIOLOGICAL CHEMISTRY, 2002, 383 (10) :1475-1480
[5]   Plasma membrane proton ATPase Pma1p requires raft association for surface delivery in yeast [J].
Bagnat, M ;
Chang, A ;
Simons, K .
MOLECULAR BIOLOGY OF THE CELL, 2001, 12 (12) :4129-4138
[6]  
Berczi Alajos, 2003, Acta Biologica Szegediensis, V47, P7
[7]  
BLIGH EG, 1959, CAN J BIOCHEM PHYS, V37, P911
[8]   Lipid composition and fluidity of plasma membranes isolated from corn (Zea mays L.) roots [J].
Bohn, M ;
Heinz, E ;
Lüthje, S .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2001, 387 (01) :35-40
[9]   IMMUNOLOCALIZATION OF THE PLASMA-MEMBRANE H+-ATPASE IN MINOR VEINS OF VICIA-FABA IN RELATION TO PHLOEM LOADING [J].
BOUCHEPILLON, S ;
FLEURATLESSARD, P ;
FROMONT, JC ;
SERRANO, R ;
BONNEMAIN, JL .
PLANT PHYSIOLOGY, 1994, 105 (02) :691-697
[10]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3