Abstract
Cholesterol-mediated lipid interactions are thought to have a functional role in many membrane-associated processes such as signalling events. Although several experiments indicate their existence, lipid nanodomains ('rafts') remain controversial owing to the lack of suitable detection techniques in living cells. The controversy is reflected in their putative size of 5-200 nm, spanning the range between the extent of a protein complex and the resolution limit of optical microscopy. Here we demonstrate the ability of stimulated emission depletion (STED) far-field fluorescence nanoscopy to detect single diffusing (lipid) molecules in nanosized areas in the plasma membrane of living cells. Tuning of the probed area to spot sizes approximately 70-fold below the diffraction barrier reveals that unlike phosphoglycerolipids, sphingolipids and glycosylphosphatidylinositol-anchored proteins are transiently ( approximately 10-20 ms) trapped in cholesterol-mediated molecular complexes dwelling within <20-nm diameter areas. The non-invasive optical recording of molecular time traces and fluctuation data in tunable nanoscale domains is a powerful new approach to study the dynamics of biomolecules in living cells.
MeSH Terms
Cell Line
Cell Membrane/chemistry,metabolism
Cell Survival
Cholesterol/analysis,metabolism
Diffusion
Epithelial Cells/cytology
Ethanolamines/analysis,metabolism
Glycosylphosphatidylinositols/metabolism
Membrane Lipids/analysis,metabolism
Microscopy, Fluorescence/methods
Nanotechnology/methods
Sphingomyelins/analysis,metabolism
Time Factors
Chemicals
Ethanolamines
Glycosylphosphatidylinositols
Membrane Lipids
Sphingomyelins
phosphorylethanolamine
Cholesterol
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
Eggeling Christian
Department of Nanobiophotonics, Max Planck Institute for Biophysical Chemistry, Am Fassberg 11, 37077 Göttingen, Germany. ceggeli@gwdg.de
Ringemann Christian
Medda Rebecca
Schwarzmann Günter
Sandhoff Konrad
Polyakova Svetlana
Belov Vladimir N
Hein Birka
von Middendorff Claas
Schönle Andreas
Hell Stefan W
References (29)
29 references, click to expand
-
Efficient fluorescence inhibition patterns for RESOLFT microscopy.
Opt Express. 2007 Mar 19;15(6):3361-71
PMID: 19532577
-
Structure and function of sphingolipid- and cholesterol-rich membrane rafts.
J Biol Chem. 2000 Jun 9;275(23):17221-4
PMID: 10770957
-
Micrometer-scale domains in fibroblast plasma membranes.
J Cell Biol. 1987 Aug;105(2):755-60
PMID: 3624308
-
Lipid rafts: elusive or illusive?
Cell. 2003 Nov 14;115(4):377-88
PMID: 14622593
-
STED microscopy reveals that synaptotagmin remains clustered after synaptic vesicle exocytosis.
Nature. 2006 Apr 13;440(7086):935-9
PMID: 16612384
-
Visualization of a system of filaments 7-10 nm thick in cultured cells of an epithelioid line (Pt K2) by immunofluorescence microscopy.
Proc Natl Acad Sci U S A. 1977 Jun;74(6):2490-4
PMID: 329288
-
Far-field optical nanoscopy.
Science. 2007 May 25;316(5828):1153-8
PMID: 17525330
-
Lipid rafts and membrane traffic.
FEBS Lett. 2007 May 22;581(11):2098-104
PMID: 17382322
-
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
-
Nanoscale resolution in GFP-based microscopy.
Nat Methods. 2006 Sep;3(9):721-3
PMID: 16896340
-
Functional rafts in cell membranes.
Nature. 1997 Jun 5;387(6633):569-72
PMID: 9177342
-
Single-particle tracking: applications to membrane dynamics.
Annu Rev Biophys Biomol Struct. 1997;26:373-99
PMID: 9241424
-
Lateral diffusion in planar lipid bilayers.
Science. 1977 Jan 21;195(4275):305-6
PMID: 831279
-
Fluorescence correlation spectroscopy diffusion laws to probe the submicron cell membrane organization.
Biophys J. 2005 Dec;89(6):4029-42
PMID: 16199500
-
Lipid rafts: now you see them, now you don't.
Nat Immunol. 2006 Nov;7(11):1139-42
PMID: 17053798
-
Rafts defined: a report on the Keystone Symposium on Lipid Rafts and Cell Function.
J Lipid Res. 2006 Jul;47(7):1597-8
PMID: 16645198
-
Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy.
Opt Lett. 1994 Jun 1;19(11):780-2
PMID: 19844443
-
Fluorescence correlation spectroscopy with single-molecule sensitivity on cell and model membranes.
Cytometry. 1999 Jul 1;36(3):176-82
PMID: 10404965
-
Phospholipids undergo hop diffusion in compartmentalized cell membrane.
J Cell Biol. 2002 Jun 10;157(6):1071-81
PMID: 12058021
-
Partitioning of lipid-modified monomeric GFPs into membrane microdomains of live cells.
Science. 2002 May 3;296(5569):913-6
PMID: 11988576
-
Internalization and sorting of a fluorescent analogue of glucosylceramide to the Golgi apparatus of human skin fibroblasts: utilization of endocytic and nonendocytic transport mechanisms.
J Cell Biol. 1994 May;125(4):769-81
PMID: 8188745
-
Demonstration of direct glycosylation of nondegradable glucosylceramide analogs in cultured cells.
J Biol Chem. 1995 Sep 8;270(36):21271-6
PMID: 7673162
-
Constrained diffusion or immobile fraction on cell surfaces: a new interpretation.
Biophys J. 1996 Jun;70(6):2767-73
PMID: 8744314
-
In vivo plasma membrane organization: results of biophysical approaches.
Biochim Biophys Acta. 2004 Aug 30;1664(2):119-31
PMID: 15328044
-
Lipid rafts: at a crossroad between cell biology and physics.
Nat Cell Biol. 2007 Jan;9(1):7-14
PMID: 17199125
-
Atomic force microscope.
Phys Rev Lett. 1986 Mar 3;56(9):930-933
PMID: 10033323
-
Lipid rafts: contentious only from simplistic standpoints.
Nat Rev Mol Cell Biol. 2006 Jun;7(6):456-62
PMID: 16625153
-
Diffusion analysis within single nanometric apertures reveals the ultrafine cell membrane organization.
Biophys J. 2007 Feb 1;92(3):913-9
PMID: 17085499
-
Gangliosides GM1 and GM3 in the living cell membrane form clusters susceptible to cholesterol depletion and chilling.
Mol Biol Cell. 2007 Jun;18(6):2112-22
PMID: 17392511