Literature DB >> 9723621

GPI-anchored proteins are organized in submicron domains at the cell surface.

R Varma1, S Mayor.   

Abstract

Lateral heterogeneities in the classical fluid-mosaic model of cell membranes are now envisaged as domains or 'rafts' that are enriched in (glyco)sphingolipids, cholesterol, specific membrane proteins and glycosylphosphatidylinositol (GPI)-anchored proteins. These rafts dictate the sorting of associated proteins and/or provide sites for assembling cytoplasmic signalling molecules. However, there is no direct evidence that rafts exist in living cells. We have now measured the extent of energy transfer between isoforms of the folate receptor bound to a fluorescent analogue of folic acid, in terms of the dependence of fluorescence polarization on fluorophore densities in membranes. We find that the extent of energy transfer for the GPI-anchored folate-receptor isoform is density-independent, which is characteristic of organization in sub-pixel-sized domains at the surface of living cells; however, the extent of energy transfer for the transmembrane-anchored folate-receptor isoform was density-dependent, which is consistent with a random distribution. These domains are likely to be less than 70 nm in diameter and are disrupted by removal of cellular cholesterol. These results indicate that lipid-linked proteins are organized in cholesterol-dependent submicron-sized domains. Our methodology offers a new way of monitoring nanometre-scale association between molecules in living cells.

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Year:  1998        PMID: 9723621     DOI: 10.1038/29563

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  346 in total

1.  Properties of lipid microdomains in a muscle cell membrane visualized by single molecule microscopy.

Authors:  G J Schütz; G Kada; V P Pastushenko; H Schindler
Journal:  EMBO J       Date:  2000-03-01       Impact factor: 11.598

Review 2.  Signaling through sphingolipid microdomains of the plasma membrane: the concept of signaling platform.

Authors:  D C Hoessli; S Ilangumaran; A Soltermann; P J Robinson; B Borisch
Journal:  Glycoconj J       Date:  2000 Mar-Apr       Impact factor: 2.916

3.  Raft association of SNAP receptors acting in apical trafficking in Madin-Darby canine kidney cells.

Authors:  F Lafont; P Verkade; T Galli; C Wimmer; D Louvard; K Simons
Journal:  Proc Natl Acad Sci U S A       Date:  1999-03-30       Impact factor: 11.205

4.  CD40 signaling in human dendritic cells is initiated within membrane rafts.

Authors:  P O Vidalain; O Azocar; C Servet-Delprat; C Rabourdin-Combe; D Gerlier; S Manié
Journal:  EMBO J       Date:  2000-07-03       Impact factor: 11.598

Review 5.  Functions of the Fc receptors for immunoglobulin G.

Authors:  B K Flesch; J Neppert
Journal:  J Clin Lab Anal       Date:  2000       Impact factor: 2.352

6.  Seeing is believing: visualization of rafts in model membranes.

Authors:  D A Brown
Journal:  Proc Natl Acad Sci U S A       Date:  2001-09-11       Impact factor: 11.205

7.  Partitioning of Thy-1, GM1, and cross-linked phospholipid analogs into lipid rafts reconstituted in supported model membrane monolayers.

Authors:  C Dietrich; Z N Volovyk; M Levi; N L Thompson; K Jacobson
Journal:  Proc Natl Acad Sci U S A       Date:  2001-09-04       Impact factor: 11.205

8.  Relationship of lipid rafts to transient confinement zones detected by single particle tracking.

Authors:  Christian Dietrich; Bing Yang; Takahiro Fujiwara; Akihiro Kusumi; Ken Jacobson
Journal:  Biophys J       Date:  2002-01       Impact factor: 4.033

9.  Cytoskeleton-dependent membrane domain segregation during neutrophil polarization.

Authors:  S Seveau; R J Eddy; F R Maxfield; L M Pierini
Journal:  Mol Biol Cell       Date:  2001-11       Impact factor: 4.138

10.  N-terminal protein acylation confers localization to cholesterol, sphingolipid-enriched membranes but not to lipid rafts/caveolae.

Authors:  J B McCabe; L G Berthiaume
Journal:  Mol Biol Cell       Date:  2001-11       Impact factor: 4.138

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