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PMID: 15111412 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Role of cholesterol in the formation and nature of lipid rafts in planar and spherical model membranes.

Biophysical journal ·Vol. 86 ·No. 5 ·2004-05-00 ·Pages 2965-79

Crane JM, Tamm LK

Abstract

Sterols play a crucial regulatory and structural role in the lateral organization of eukaryotic cell membranes. Cholesterol has been connected to the possible formation of ordered lipid domains (rafts) in mammalian cell membranes. Lipid rafts are composed of lipids in the liquid-ordered (l(o)) phase and are surrounded with lipids in the liquid-disordered (l(d)) phase. Cholesterol and sphingomyelin are thought to be the principal components of lipid rafts in cell and model membranes. We have used fluorescence microscopy and fluorescence recovery after photobleaching in planar supported lipid bilayers composed of porcine brain phosphatidylcholine (bPC), porcine brain sphingomyelin (bSM), and cholesterol to map the composition-dependence of l(d)/l(o) phase coexistence. Cholesterol decreases the fluidity of bPC bilayers, but disrupts the highly ordered gel phase of bSM, leading to a more fluid membrane. When mixed with bPC/bSM (1:1) or bPC/bSM (2:1), cholesterol induces the formation of l(o) phase domains. The fraction of the membrane in the l(o) phase was found to be directly proportional to the cholesterol concentration in both phospholipid mixtures, which implies that a significant fraction of bPC cosegregates into l(o) phase domains. Images reveal a percolation threshold, i.e., the point where rafts become connected and fluid domains disconnected, when 45-50% of the total membrane is converted to the l(o) phase. This happens between 20 and 25 mol % cholesterol in 1:1 bPC/bSM bilayers and between 25 and 30 mol % cholesterol in 2:1 bPC/bSM bilayers at room temperature, and at approximately 35 mol % cholesterol in 1:1 bPC/bSM bilayers at 37 degrees C. Area fractions of l(o) phase lipids obtained in multilamellar liposomes by a fluorescence resonance energy transfer method confirm and support the results obtained in planar lipid bilayers.

MeSH Terms
Animals Cell Membrane/metabolism Cholesterol/chemistry,metabolism,physiology Fluorescence Resonance Energy Transfer Light Lipid Bilayers/chemistry Lipids/chemistry Membrane Microdomains/metabolism Membranes Microscopy, Fluorescence Models, Statistical Phosphatidylcholines Photobleaching Protein Structure, Tertiary Spectrometry, Fluorescence Sphingomyelins/metabolism Swine Temperature Time Factors
Chemicals
Lipid Bilayers Lipids Phosphatidylcholines Sphingomyelins Cholesterol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Crane Jonathan M
Department of Molecular Physiology and Biological Physics and Biophysics Program, University of Virginia, Charlottesville, Virginia, USA.
Tamm Lukas K
References (53)
53 references, click to expand
  1. How does the plasma membrane participate in cellular signaling by receptors for immunoglobulin E?
    Biophys Chem. 1999 Dec 13;82(2-3):109-19 PMID: 10631794
  2. Nanoscale complexity of phospholipid monolayers investigated by near-field scanning optical microscopy.
    Science. 1995 Oct 27;270(5236):610-4 PMID: 7570018
  3. Properties of lipid microdomains in a muscle cell membrane visualized by single molecule microscopy.
    EMBO J. 2000 Mar 1;19(5):892-901 PMID: 10698931
  4. Sphingolipid-cholesterol rafts diffuse as small entities in the plasma membrane of mammalian cells.
    J Cell Biol. 2000 Mar 6;148(5):997-1008 PMID: 10704449
  5. Structure and function of sphingolipid- and cholesterol-rich membrane rafts.
    J Biol Chem. 2000 Jun 9;275(23):17221-4 PMID: 10770957
  6. Fluorescence-based evaluation of the partitioning of lipids and lipidated peptides into liquid-ordered lipid microdomains: a model for molecular partitioning into "lipid rafts".
    Biophys J. 2000 Aug;79(2):919-33 PMID: 10920023
  7. Tethered polymer-supported planar lipid bilayers for reconstitution of integral membrane proteins: silane-polyethyleneglycol-lipid as a cushion and covalent linker.
    Biophys J. 2000 Sep;79(3):1400-14 PMID: 10969002
  8. Insolubility of lipids in triton X-100: physical origin and relationship to sphingolipid/cholesterol membrane domains (rafts).
    Biochim Biophys Acta. 2000 Nov 23;1508(1-2):182-95 PMID: 11090825
  9. How cells handle cholesterol.
    Science. 2000 Dec 1;290(5497):1721-6 PMID: 11099405
  10. Lipid rafts reconstituted in model membranes.
    Biophys J. 2001 Mar;80(3):1417-28 PMID: 11222302
  11. Ternary phase diagram of dipalmitoyl-PC/dilauroyl-PC/cholesterol: nanoscopic domain formation driven by cholesterol.
    Biophys J. 2001 Jun;80(6):2775-88 PMID: 11371452
  12. Visualizing detergent resistant domains in model membranes with atomic force microscopy.
    FEBS Lett. 2001 Jul 13;501(1):92-6 PMID: 11457463
  13. Characterization of cholesterol-sphingomyelin domains and their dynamics in bilayer membranes.
    Biophys J. 2001 Sep;81(3):1486-500 PMID: 11509362
  14. Partitioning of Thy-1, GM1, and cross-linked phospholipid analogs into lipid rafts reconstituted in supported model membrane monolayers.
    Proc Natl Acad Sci U S A. 2001 Sep 11;98(19):10642-7 PMID: 11535814
  15. Relationship of lipid rafts to transient confinement zones detected by single particle tracking.
    Biophys J. 2002 Jan;82(1 Pt 1):274-84 PMID: 11751315
  16. The size of lipid rafts: an atomic force microscopy study of ganglioside GM1 domains in sphingomyelin/DOPC/cholesterol membranes.
    Biophys J. 2002 May;82(5):2526-35 PMID: 11964241
  17. Cell biology. The different hues of lipid rafts.
    Science. 2002 May 3;296(5569):855-7 PMID: 11988557
  18. A role for lipid shells in targeting proteins to caveolae, rafts, and other lipid domains.
    Science. 2002 Jun 7;296(5574):1821-5 PMID: 12052946
  19. Placental alkaline phosphatase is efficiently targeted to rafts in supported lipid bilayers.
    J Biol Chem. 2002 Jul 26;277(30):26966-70 PMID: 12011066
  20. Cholesterol at different bilayer concentrations can promote or antagonize lateral segregation of phospholipids of differing acyl chain length.
    Biochemistry. 1996 Dec 3;35(48):15198-208 PMID: 8952467
  21. Functional rafts in cell membranes.
    Nature. 1997 Jun 5;387(6633):569-72 PMID: 9177342
  22. On the origin of sphingolipid/cholesterol-rich detergent-insoluble cell membranes: physiological concentrations of cholesterol and sphingolipid induce formation of a detergent-insoluble, liquid-ordered lipid phase in model membranes.
    Biochemistry. 1997 Sep 9;36(36):10944-53 PMID: 9283086
  23. Infrared spectroscopy of proteins and peptides in lipid bilayers.
    Q Rev Biophys. 1997 Nov;30(4):365-429 PMID: 9634652
  24. Maximum solubility of cholesterol in phosphatidylcholine and phosphatidylethanolamine bilayers.
    Biochim Biophys Acta. 1999 Feb 4;1417(1):89-100 PMID: 10076038
  25. Quantitative analysis of phospholipids in functionally important membrane domains from RBL-2H3 mast cells using tandem high-resolution mass spectrometry.
    Biochemistry. 1999 Jun 22;38(25):8056-63 PMID: 10387050
  26. Triton promotes domain formation in lipid raft mixtures.
    Biophys J. 2002 Nov;83(5):2693-701 PMID: 12414701
  27. Organization in lipid membranes containing cholesterol.
    Phys Rev Lett. 2002 Dec 23;89(26):268101 PMID: 12484857
  28. Sphingolipid partitioning into ordered domains in cholesterol-free and cholesterol-containing lipid bilayers.
    Biophys J. 2003 Jan;84(1):367-78 PMID: 12524290
  29. Measuring distances in supported bilayers by fluorescence interference-contrast microscopy: polymer supports and SNARE proteins.
    Biophys J. 2003 Jan;84(1):408-18 PMID: 12524294
  30. Binding of NAP-22, a calmodulin-binding neuronal protein, to raft-like domains in model membranes.
    Biochemistry. 2003 May 6;42(17):4780-6 PMID: 12718518
  31. Probing lipid mobility of raft-exhibiting model membranes by fluorescence correlation spectroscopy.
    J Biol Chem. 2003 Jul 25;278(30):28109-15 PMID: 12736276
  32. The state of lipid rafts: from model membranes to cells.
    Annu Rev Biophys Biomol Struct. 2003;32:257-83 PMID: 12543707
  33. Liquid-liquid immiscibility in membranes.
    Annu Rev Biophys Biomol Struct. 2003;32:469-92 PMID: 12574063
  34. Imaging coexisting fluid domains in biomembrane models coupling curvature and line tension.
    Nature. 2003 Oct 23;425(6960):821-4 PMID: 14574408
  35. Determination of molecular motion in membranes using periodic pattern photobleaching.
    Proc Natl Acad Sci U S A. 1978 Jun;75(6):2759-63 PMID: 275845
  36. Fluorescence energy transfer as a spectroscopic ruler.
    Annu Rev Biochem. 1978;47:819-46 PMID: 354506
  37. An analytic solution to the Förster energy transfer problem in two dimensions.
    Biophys J. 1979 Nov;28(2):197-210 PMID: 262548
  38. Phase equilibria in binary mixtures of phosphatidylcholine and cholesterol.
    Biochemistry. 1981 Jul 21;20(15):4505-10 PMID: 6269591
  39. Phospholipid distribution in human En(a-) red cell membranes which lack the major sialoglycoprotein, glycophorin A.
    FEBS Lett. 1981 Nov 30;135(1):53-5 PMID: 7319040
  40. Lipid bilayer thickness varies linearly with acyl chain length in fluid phosphatidylcholine vesicles.
    J Mol Biol. 1983 May 15;166(2):211-7 PMID: 6854644
  41. Supported phospholipid bilayers.
    Biophys J. 1985 Jan;47(1):105-13 PMID: 3978184
  42. The plasma membrane 'skeleton' of tumor and lymphoid cells: a role in cell lysis?
    Adv Exp Med Biol. 1985;184:387-400 PMID: 3898756
  43. Parallax method for direct measurement of membrane penetration depth utilizing fluorescence quenching by spin-labeled phospholipids.
    Biochemistry. 1987 Jan 13;26(1):39-45 PMID: 3030403
  44. Determination of lipid asymmetry in human red cells by resonance energy transfer.
    Biochemistry. 1987 Aug 11;26(16):5099-105 PMID: 3663645
  45. Lateral diffusion and fluorescence microscope studies on a monoclonal antibody specifically bound to supported phospholipid bilayers.
    Biochemistry. 1988 Mar 8;27(5):1450-7 PMID: 3365400
  46. Lipid sorting in epithelial cells.
    Biochemistry. 1988 Aug 23;27(17):6197-202 PMID: 3064805
  47. Interaction of cholesterol with various glycerophospholipids and sphingomyelin.
    Biochemistry. 1990 Nov 27;29(47):10670-5 PMID: 2176878
  48. Static and dynamic lipid asymmetry in cell membranes.
    Biochemistry. 1991 Feb 5;30(5):1163-73 PMID: 1991095
  49. Sorting of GPI-anchored proteins to glycolipid-enriched membrane subdomains during transport to the apical cell surface.
    Cell. 1992 Feb 7;68(3):533-44 PMID: 1531449
  50. Formation of supported planar bilayers by fusion of vesicles to supported phospholipid monolayers.
    Biochim Biophys Acta. 1992 Jan 31;1103(2):307-16 PMID: 1311950
  51. Interactions between saturated acyl chains confer detergent resistance on lipids and glycosylphosphatidylinositol (GPI)-anchored proteins: GPI-anchored proteins in liposomes and cells show similar behavior.
    Proc Natl Acad Sci U S A. 1994 Dec 6;91(25):12130-4 PMID: 7991596
  52. Effects of domain structure on in-plane reactions and interactions.
    Mol Membr Biol. 1995 Jan-Mar;12(1):157-62 PMID: 7767377
  53. The effect of sterol structure on membrane lipid domains reveals how cholesterol can induce lipid domain formation.
    Biochemistry. 2000 Feb 8;39(5):843-9 PMID: 10653627
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
2004-05-00
Pages
2965-79
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1304164
Subset
IM
Grants
NIGMS NIH HHS · P01 GM072694 · United States
NIAID NIH HHS · R01 AI030557 · United States
NIAID NIH HHS · R37 AI030557 · United States
NIAID NIH HHS · AI30557 · United States
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