We have determined the membrane topography of the high-affinity IgE receptor, FcεRI, and its associated tyrosine kinases, Lyn and Syk, by immunogold labeling and transmission electron microscopic (TEM) analysis of membrane sheets prepared from RBL-2H3 mast cells. The method of Sanan and Anderson (Sanan, D.A., and R.G.W. Anderson. 1991.
The discovery that different membrane proteins partition away from or into membrane that is internalized during phagocytosis provided early evidence that proteins can segregate nonrandomly in the plasma membrane and implicated cytoskeletal proteins in the segregation (
The high-affinity IgE receptor, FcεRI, is a tetrameric complex consisting of an IgE-binding α subunit, a tetraspan β subunit and two disulfide-linked γ subunits (
It has been suggested that FcεRI signaling may occur in microdomains.
In this report, signaling molecules were localized on native membrane sheets from the dorsal surface of RBL-2H3 mast cells by immunogold labeling and high-resolution TEM analysis. Our results show that a portion of monomeric FcεRI and Lyn are colocalized in small clusters in unstimulated cells and that Lyn is dramatically excluded from the large receptor clusters that form after FcεRI cross-linking. Moreover, cross-linked FcεRI encounter Syk and coated pits in topographically distinct membrane domains.
RBL-2H3 cells were grown in MEM (GIBCO BRL) supplemented with 15% fetal calf serum, penicillin-streptomycin, and
RBL-2H3 cells were allowed to settle overnight onto 15-mm round, clean glass coverslips in the presence of anti-DNP IgE (1 μg/ml) to prime cell surface FcεRI. After washing to remove excess IgE, FcεRI was cross-linked by incubation with DNP-BSA (0.1–1 μg/ml), with rabbit polyclonal anti-IgE (1 μg/ml) or with gold conjugates of these reagents (prepared as in
Micrographs from up to four separate experiments were sorted into six groups of at least 25 according to the following treatment and labeling conditions: labeled only with 5- or 10-nm gold particles marking FcεRI β; labeled with 5-nm gold particles marking Lyn plus 10-nm particles marking FcεRI β; labeled with 5-nm gold particles marking Syk plus 10-nm particles marking FcεRI β; resting and activated. A minimum of 3,000 gold particles per set of micrographs were counted for (a) numbers of gold particles marking FcεRI β distributed as singlets or as clusters (with cluster size), (b) numbers of gold particles marking Lyn distributed as singlets or as clusters (with cluster size), and (c) numbers of gold particles marking Lyn that were or were not colocalized with FcεRI β clusters (distinguishing, in activated cells, between gold particles marking Lyn that occurred within FcεRI clusters versus gold particles marking Lyn that instead surrounded these clusters). Our procedure simply involved highlighting singlets and clusters and recording their composition until no unmarked particle or group remained on the micrograph. Numbers of gold particles marking Syk were counted over 55 μm2 of membrane and scored for colocalization or not with FcεRI β.
The distribution of 5-nm gold particles marking FcεRI β in resting cells is illustrated in
After cross-linking for 2 min at 37°C with DNP-BSA (0.1 μg/ml), most FcεRI β is found in clusters that are moderately or substantially larger than the clusters on resting cells (
To establish the reliability of the membrane sheet technique for demonstrating topographical relationships between membrane-associated proteins, we labeled FcεRI from the extracellular as well as the cytoplasmic faces of the membrane and looked for colocalization of gold particles. In
Previous studies using the lower resolution techniques of fluorescence and scanning electron microscopy had not revealed FcεRI clusters in resting cells. Therefore, we performed further control experiments to ensure that the small clusters were not induced in the fixed samples by the labeling Abs. In one control experiment, membrane sheets were fixed with 2% paraformaldehyde for either the standard 10 min or for only 5 min, then labeled for 30 min with monoclonal anti–FcεRI β and polyclonal anti-Lyn followed by gold secondary antibodies for 30 min. In another, membrane sheets were fixed for 10 minutes with 0.5, 2, and 4% paraformaldehyde and labeled as above. As an additional control, sheets were fixed for 10 min with 2% paraformaldehyde and labeled with anti–FcεRI β, anti-Lyn, and gold secondary antibodies and held for up to 12 h before fixation with glutaraldehyde. Gold particle labeling densities and distributions were not altered by reducing the fixation time or fixative concentration. They also were not altered by increasing the holding time before the glutaraldehyde post-fixation step, that could conceivably promote reagent-induced clusters to form in lightly fixed samples.
Counting gold particle numbers and distributions on replicate micrographs confirmed that indeed the majority (at least 85%) of gold particles marking Lyn are in clusters (
The redistribution of Lyn that follows FcεRI cross-linking with multivalent antigen or anti-IgE is demonstrated by the series of micrographs in
Counting gold particle numbers and distributions emphasized the topographical differences in Lyn distribution between resting and activated cells. First, Lyn clusters increase in size in response to 2 min of FcεRI cross-linking so that >50% of clusters now contain >6 gold particles (
The segregation of Lyn from highly clustered receptors was further demonstrated by comparing the topography of FcεRI and Lyn with the topography of clathrin and actin. As already noted, cross-linked FcεRI can be internalized through clathrin-coated pits that often bud from the edges of these clusters. These pits consistently label with gold particles marking the clathrin adaptin, AP-2, but they almost never label with gold particles marking Lyn (data not shown). Conversely, strings of Lyn are seen on fibrous structures that also label with phalloidin, a marker for F-actin (
Based principally on sucrose density fractionation of detergent-solubilized membranes, previous investigators have proposed that Lyn associates in resting cells with cholesterol and ganglioside GM-1–enriched microdomains that also accumulate GPI-linked proteins including Thy-1 (
Previous biochemical studies have shown that a second tyrosine kinase, Syk, couples the cross-linked FcεRI to downstream responses (
The distribution of Syk was determined in membrane sheets prepared from resting (
Results of counting gold particles specific for Syk are shown in
Results of previous biochemical studies have suggested a model for FcεRI signaling in which receptor cross-linking leads to the Lyn-mediated tyrosine phosphorylation of ITAMs within the cytoplasmic tails of the β and γ subunits of the FcεRI. FcεRI γ phosphorylation in turn provides binding sites for the binding and activation of Syk. Our goal was to determine the membrane topography of the high-affinity IgE receptor, FcεRI, and of its associated tyrosine kinases, Lyn and Syk, during this biochemical cascade. We used a modification of the method of
We found that the majority of gold particles marking FcεRI (>65%) and Lyn (>85%) in resting cells occur as clusters and that a significant proportion (20–25%) of these are mixed clusters, containing both FcεRI and Lyn. Neither FcεRI nor Lyn associated with clathrin-coated membrane in resting cells. The colocalization of Lyn and monomeric receptor is consistent with previous evidence from the Metzger laboratory (
While the unique composition of DRMs has provided strong evidence for the concept of membrane microdomains, previous investigators have also described discrepancies between the protein compositions of low-density sucrose fractions and the protein composition of microdomains in the native plasma membrane. In particular,
Previous studies by fluorescence, transmission, and scanning electron microscopy (
FcεRI cross-linking causes the formation of large receptor clusters seen previously by fluorescence, transmission, and scanning electron microscopy (
Syk, the cytoplasmic kinase that couples the cross-linked FcεRI to downstream responses (
Syk is dramatically recruited into the large receptor clusters that form on osmiophilic membrane patches within minutes after cross-linking. This recruitment is likely to occur both by the translocation of Syk from the cytosol to the membrane and by the recruitment of Syk from other sites of membrane association. We propose the Syk-enriched, Lyn-negative FcεRI clusters as the probable sites of downstream signaling. The identities of other components within these putative signaling domains are not yet known. However, their distinct appearance as darkened membrane patches suggests that they are not merely the products of the aggregation of smaller clusters but may instead contain a unique subset of membrane lipids and proteins that stain differently from bulk membrane with the combination of osmium, tannic acid, and uranyl acetate used here to provide contrast to the membrane sheets.
Because the Syk-enriched clusters are sufficiently large to be observed readily by fluorescence microscopy, they are very likely to correspond to the microdomains seen previously by
We observed that clathrin-coated vesicles internalize cross-linked receptors from membrane adjacent to the Syk-FcεRI complexes. Previous thin section TEM studies established that cross-linked FcεRI are internalized through coated pits that often have long necks and can support several clathrin-coated buds (
Previous thin section TEM studies in mast cells have not so far demonstrated clear increases in coated pit density induced by FcεRI cross-linking (
There is substantial evidence that efficient TCR signaling occurs by the segregation of the TCR and coreceptors like CD4 and CD28 to detergent-resistant membrane domains that accumulate GPI-linked proteins, Src kinases, Zap70, scaffolding proteins like LAT and molecules implicated in signal propagation such as PLC-γ (
In summary, we have discovered that FcεRI encounters Lyn, Syk, and coated pits in topographically distinct membrane domains. The sequence of events revealed to date is shown schematically in
We thank Graham MacKay and Zurab Surviladze for valuable discussion.
This study was supported in part by the National Institutes of Health grants RO1 GM49814 and PO1 HL56384.
Syk Distribution on Membrane Sheets
| Resting cells | Activated cells | |
|---|---|---|
| Total Syk-gold particles | 978 | 1,218 |
| % Increase in membrane Syk | — | 24.5% |
| Syk-gold particles colocalizedwith FcεRI-gold particles | 86 (8.7%) | 861 (70.6%) |
Membrane sheets were prepared from IgE-primed resting or activated (2 min with 0.1 mg/ml DNP-BSA) cells and labeled for Syk and RcεRI β. Numbers of gold particles marking Syk and their proximity to particles marking RcεRI β were counted for 55 μm2 of membrane. Micrographs were from four independent experiments.
FcεRI is distributed nonrandomly on resting and activated mast cells. Membrane sheets were prepared from RBL-2H3 cells before (A and D) or after (B, C, and E) cross-linking the FcεRI with DNP-BSA or anti-IgE. The FcεRI α subunit was labeled from the outside of the membrane using 10-nm gold particles conjugated to DNP-BSA (C) or rabbit anti-IgE Ab (D and E). The FcεRI β subunit was labeled from the inside of the membrane using 5-nm gold particles conjugated to anti-FcεRI β mAb (A, B, D, and E). 5-nm gold particles marking FcεRI β are distributed in small dispersed clusters and strings (circled) in the membranes of resting cells (A) and as larger clusters in the membranes of IgE-primed cells that were activated for 2 min at 37°C with DNP-BSA (B). The endocytosis of cross-linked receptors through coated pits (arrows) is illustrated in (C), taken from an experiment where IgE-primed cells were activated for 2 min with 10-nm gold–conjugated DNP-BSA. In D, fixation (10 min at 37°C with 2% paraformaldehyde) preceded outside labeling with anti–IgE-gold particles. In E, cells were activated by incubation for 2 min at 37°C with anti–IgE-gold particles. In both micrographs, 10-nm gold particles marking FcεRI α colocalize with 5-nm particles marking FcεRI β (circles). Bars, 0.1 μm.
FcεRI and Lyn cluster sizes increase after receptor cross-linking. Gold particles marking either FcεRI (A) or Lyn (B) were scored for cluster size in membrane sheets prepared from resting cells or cells 2 min after FcεRI cross-linking. A minimum of 3,000 gold particles were counted for each experimental condition.
Lyn associates with FcεRI in resting mast cells. Membrane sheets were prepared from untreated RBL-2H3 cells and labeled from the inside with 5-nm gold particles specific for Lyn and with either 3- (A) or 10-nm (B) gold particles specific for FcεRI β. In both micrographs, a substantial portion of 5-nm gold particles marking Lyn are colocalized with FcεRI β (circles). (C) Demonstrates the absence of background binding when both sizes of gold particles are incubated with membrane sheets in the absence of specific antibodies. Bars, 0.1 μm.
Lyn segregates from FcεRI in activated mast cells. Membrane sheets were prepared from IgE-primed RBL-2H3 cells that were previously activated for 2 min with anti-IgE Ab. In each micrograph, the sheets were labeled from the inside with 5-nm gold particles specific for Lyn. Sheets were double labeled with: (A–C) 3-nm gold particles specific for FcεRI β; (D and E) 10-nm gold specific for FcεRI β; and (F) 15-nm phalloidin-conjugated particles specific for F-actin. In A, a portion of Lyn is associated with FcεRI β in membrane clusters of intermediate size (circles). The large clusters of cross-linked FcεRI β that are striking features of A–C (arrows) are almost completely lacking in colocalized Lyn. Lyn is found characteristically in strings and clusters at the periphery of the aggregates (rectangles in A, B, D, and E). In F, 5-nm gold particles marking Lyn strings are continuous with 15-nm gold-conjugated biotinylated-phalloidin marking F-actin. Bars, 0.1 μm.
Thy-1 is distributed in singlets and small clusters over the RBL cell surface but does not colocalize with Lyn or FcεRI. Membrane sheets were prepared from resting, prefixed RBL-2H3 cells that were labeled from the outside with 5-nm gold particles conjugated to anti–Thy-1 antibodies. The sheets were double labeled from the inside with 10-nm gold particles specific for either FcεRI β (A) or Lyn (B). Bar, 0.1 μm.
Syk and FcεRI do not colocalize in the membranes of resting cells. Membrane sheets were prepared from untreated RBL-2H3 cells and labeled from the inside with 5-nm gold particles specific for Syk and with 10-nm gold particles specific for FcεRI β. Examples of isolated Syk clusters are marked with circles. Bar, 0.1 μm.
Syk is recruited to FcεRI-rich osmiophilic membrane domains. Membrane sheets were prepared from IgE-primed RBL-2H3 cells that were previously activated for 2 min with anti-IgE Ab. The sheets were labeled from the inside with 5-nm gold particles specific for Syk and with 10-nm gold particles specific for FcεRI β. Arrows point to gold particles marking Syk that are strikingly colocalized with large clusters of gold particles marking FcεRI β in activated cells. Circles in A indicate isolated Syk clusters. Bars, 0.1 μm.
The FcεRI encounters Lyn, Syk, and coated pits in topographically distinct membrane domains. In this model, FcεRI and Lyn are loosely colocalized in resting cells in dispersed clusters that do not associate with clathrin-coated membrane (A). Syk does not colocalize with FcεRI in resting cells. FcεRI cross-linking (B) induces Lyn-mediated phosphorylation needed for Syk recruitment. Larger FcεRI aggregates (C) exclude Lyn by an actin-dependent process and include Syk to form functional signaling domains. The clathrin-coated vesicles that internalize cross-linked receptors bud from membrane adjacent to the Syk-FcεRI complexes.