| Literature DB >> 9166429 |
Abstract
Terminal <span class="Chemical">sialic acids on cell surface glycoconjugates can carry <span class="Chemical">9-O-acetyl esters. For technical reasons, it has previously been difficult to determine their precise distribution on different cell types. Using a recombinant soluble form of the Influenza C virus hemagglutinin-esterase as a probe for 9-O-acetylated sialic acids, we demonstrate here their preferential expression on the CD4 T cell lineage in normal B10.A mouse lymphoid organs. Of total thymocytes, 8-10% carry 9-O-acetylation; the great majority of these are the more mature PNA-, HSA-, and TCRhi medullary cells. While low levels of 9-O-acetylation are seen on some CD4/CD8 double positive (DP) and CD8 single positive (SP) cells, high levels are present primarily on 80- 85% of CD4 SP cells. Correlation with CD4 and CD8 levels suggests that 9-O-acetylation appears as an early differentiation marker as cells mature from the DP to the CD4 SP phenotype. This high degree of 9-O-acetylation is also present on 90-95% of peripheral spleen and lymph node CD4 T cells. In contrast, only a small minority of CD8 T cells and B cells show such levels of 9-O-acetylation. Among mature peripheral CD4 T lymphocytes, the highly O-acetylated cells are Mel 14(hi), CD44(lo), and CD45R(exon B)hi, features typical of naive cells. Digestions with trypsin and O-sialoglycoprotease (OSGPase) and ELISA studies of lipid extracts indicate that the 9-O-acetylated sialic acids on peripheral CD4 T cells are predominantly on O-linked mucintype glycoproteins and to a lesser degree, on sialylated glycolipids (gangliosides). In contrast, sialic acids on mucin type molecules of CD8 T cells are not O-acetylated; instead these molecules mask the recognition of O-acetylated gangliosides that seem to be present at similar levels as on CD4 cells. The 9-O-acetylated gangliosides on mouse T cells are not bound by CD60 antibodies, which recognize O-acetylated gangliosides in human T cells. Tethering 9-O-acetylated mucins with the Influenza C probe with or without secondary cross-linking did not cause activation of CD4 T cells. However, activation by other stimuli including TCR ligation is associated with a substantial decrease in surface 9-O-acetylation, primarily in the mucin glycoprotein component. Thus, 9-O-acetylation of sialic acids on cell surface mucins is a novel marker on CD4 T cells that appears on maturation and is modulated downwards upon activation.Entities:
Mesh:
Substances:
Year: 1997 PMID: 9166429 PMCID: PMC2196344 DOI: 10.1084/jem.185.11.1997
Source DB: PubMed Journal: J Exp Med ISSN: 0022-1007 Impact factor: 14.307
Figure 1Expression of 9-O-acetylation on murine thymocytes. (A) Single-color flow cytometry showing cell surface 9-O-acetylation on total thymocytes. Thymocytes were stained with CHE-FcD or CHE-Fc as indicated within the panels, followed by phycoerythrin-conjugated goat anti–human IgG. One aliquot was pretreated with CHE-Fc to remove 9-O-acetyl groups before staining with CHE-FcD. The dashed line indicates the background level of staining with the secondary antibody alone. (B) Double-color flow cytometry comparing PNA and CHE-FcD staining on total thymocytes. Thymocytes were stained with CHE-FcD followed by phycoerythrin-conjugated goat anti–human IgG and FITC-conjugated PNA. Quadrant boundaries were determined based on background staining profiles seen with phycoerythrin-conjugated goat anti–human IgG alone or FITCconjugated PNA in the presence of 0.2 M galactose.
Figure 2CD4 and CD8 distribution on total thymocytes and on 9-Oacetyl+ cells. Three-color flow cytometry was done after staining with CHE-FcD, anti-CD4, and anti-CD8. The 9-O-acetyl positive cells were gated to obtain a selective CD4/CD8 profile. Since CD8 SP and CD4− CD8− DN cells constitute a low percentage of total thymocytes, 100,000 total events were acquired to analyze the small percentage of total 9-Oacetyl+ thymocytes.
Figure 3Progressive increase in 9-O-acetylation during maturation of CD4+ cells. Threecolor flow cytometry was done after staining with CHE-FcD, anti-CD4, and anti-CD8, as in Fig. 2. Individual gates (R1-R8) delineate cells with progressing maturity from the CD4−CD8− DN to CD4+CD8+ DP stage to the CD4+CD8− and CD4− CD8+ SP stages. 100,000 total events were acquired so that significant number of cells within the indicated regions could be gated. The percentage of 9-Oacetyl+ cells within each region was determined based on the background staining observed with phycoerythrin-conjugated goat anti–human IgG.
Figure 4Relationship of 9-O-acetylation to expression of TCR, HSA, CD69 and CD5 on CD4+ thymocytes. Three-color staining was done with anti-CD4 and CHE-FcD along with either anti-CD3, J11D (anti-HSA), anti-CD69 or anti-CD5 as the third color. Binding of antiCD3 mAb 2C11 was detected using phycoerythrin-conjugated goat anti– hamster IgG and mAb J11D was detected by FITC conjugated donkey anti–rat IgG. Anti-CD69 and anti-CD5 were directly conjugated to FITC and anti-CD4 to tricolor reagent. Only CD4+ thymocytes were gated to show the dot plots relating 9-O-acetylation with other thymocyte markers. Quadrant boundaries were determined based on the background staining profiles obtained by the secondary antibodies for each axis.
Figure 6Association of other markers with 9-O-acetylation among CD4 peripheral lymphocytes. Flow cytometry was done after three color staining using anti-CD4 and CHE-FcD along with anti-Mel14, anti-Pgp1 or anti-CD45R(exonB). All peripheral T cell markers were used as biotinylated antibodies and their binding was detected using streptavidin conjugated FITC. The data displayed here represents only CD4+ gated cells. Staining on each axis of the dot plot was determined after using the secondary fluorescent conjugated reagent alone without the primary antibody or probe.
Figure 7Changes in CD4 cell surface 9-O-acetylation after trypsinization, OSGPase treatment or activation. (A) Thymocytes were treated with trypsin or OSGPase and then washed before staining. Following OSGPase treatment, CD4+ SP cells were gated on a CD4/CD8 dot plot to examine the CHE-FcD staining profile (staining of CD4 and CD8 was unchanged by the OSGPase treatment, data not shown). To study the effect of trypsin on CHE-FcD binding to CD4+ SP cells, CD4+ SP thymocytes were first FACSorted® after two-color staining with anti-CD4 and anti-CD8 antibodies, prior to CHE-FcD staining. (B) CD4 cells from peripheral lymph nodes were purified by FACSorting® and treated with trypsin or OSGPase and then washed before staining (left). One aliquot of these cells were activated by cross-linking with anti-CD3 on a 96-well plate; the profiles displayed in the right panels represent gated CD4 cells from the third day after activation; similar patterns were seen thereafter for 10 d (data not shown). In each case, the percentage positivity of the cells is shown within the histogram display, and background level of staining is represented by the dashed line.
Figure 89-O-acetylated gangliosides are present in purified lipid extracts from CD4 T cells. Lipid extracts containing gangliosides from resting or activated CD4 cells were dried on to 96-well flat-bottomed plates and CHE-FcD was allowed to bind with or without base treatment (0.1 N sodium hydroxide for 15 min) to remove 9-O-acetyl groups. Binding was detected with HRPO-conjugated second antibody and substrate. Results shown are mean values from triplicates.
Figure 9CHE-FcD does not affect T cell activation mediated by PMA or by cross-linking with anti-CD3 antibodies. Total cells from mouse lymph nodes were activated with varying amounts of PMA, or by cross-linking with increasing amounts of anti-CD3 antibody. [3H]thymidine incorporation into the cells measured the proliferative response of the T cells. The effect of adding CHE-FcD or CHE-Fc in solution (final 50 μg/ml in all the wells) on the dose-response curve was plotted. Values represent the mean of triplicate values. Background values for sham treated cells were consistently lower than the smallest stimulating dose (not shown).
Figure 10Sialomucins on CD8 T cells can mask the recognition of 9-O-acetylated gangliosides by CHE-FcD probe. (A) Mouse spleen cells were stained with CHE-FcD before or after OSGPase or trypsin treatment and staining profiles were traced from gated CD4 and CD8 subpopulations. Trypsin treatment was done on CD4 and CD8 T cells that were pre-sorted on a FACSorter®. Loss of binding of anti-Mel14 was a positive control for trypsinization (data not shown). (B) Mouse thymocytes were treated with OSGPase as described earlier, washed and stained with anti-CD4, CD8, and CHE-FcD. Sham treated cells were incubated with an equal volume of buffer under identical conditions. 100,000 live events were acquired and CD4 and CD8 SP cells were gated from a CD4/CD8 dot plot. CHE-FcD binding within those populations was plotted in the histograms. The dotted line shows background staining with the second antibody.
Figure 11CD43 and CD45RB are sialomucins expressed on both CD8 cells and on CD4 cells. Freshly isolated mouse splenic lymphocytes were incubated with OSGPase or with buffer alone, under identical conditions. This was followed by three-color staining with anti-CD4, CD8, and either anti-CD43 (S7) or CD45RB (23G2) at dilutions of 5 μg/ml. The mean fluorescence intensity of staining on gated populations of CD4 and CD8 T cells was determined on a FACScan®.
Figure 12CD43 and CD45R (exonB) are among the 9-Oacetylated membrane mucins in splenic cells. The left panel shows a Western blot of splenic lymphocyte membrane proteins (15 μg each lane) probed with CHE-FcD (at 4°C) with (lane 1) or without (lane 2) prior treatment of the proteins with OSGPase. The right panel shows a Western blot of total membrane proteins, proteins precipitated by CHE-FcD, and CHE-Fc controls, each probed with antiCD43 and anti-CD45RB monoclonal antibodies as indicated. The expected positions of CD45RB (∼190 kD) and CD43 (∼115 kD) are indicated in each panel. The relatively bright band just above 115 kD in the right lanes of the right panel is nonspecific, since it was also seen on probing with the alkaline phosphatase conjugated secondary reagent alone.
Figure 13Expression of 9-Oacetylated sialic acids during T cell ontogeny in the adult thymus and on peripheral T cells. This figure summarizes the distribution of 9-O-acetylated sialic acids detected by CHEFcD on developing and on peripheral resting and activated T cells. Varying intensities of CHE-FcD binding are shown as low (lo), intermediate (int) and high (hi) along with a representative percentage of positive cells. Note that while ∼40% of CD4−CD8− DN cells are 9-Oacetyllo+, the phenotype of the cells that actually progress to a DP stage is not defined by our current data. Also note that the probe may not detect all ganglioside-bound 9-O-acetyl Sias (see Fig. 14 and Discussion).
Figure 14Model depicting the likely differential distribution of 9-Oacetylated sialoglycoconjugates between resting peripheral CD4 and CD8 T cells. Sialomucins are present on both CD8 and CD4 cells, but are only 9-O-acetylated in the latter. Cell surface sialomucin molecules usually have a rod like extended conformation and a high negative charge, and appears to prevent CHE-FcD access to O-acetylated glycolipids (gangliosides) that are much closer to the cell surface membrane. OSGPase recognizes sialylated clustered O-linked glycans and cleaves the adjacent polypeptide backbone, thus unmasking recognition of the enzyme-resistant O-acetylated gangliosides by the CHE-FcD probe.