PubMed HealthSearch

Biomedical subjects

E E Eynon

Publications and source records attributed to E E Eynon.

6 recordsLinked to original sources

Small B cells as antigen-presenting cells in the induction of tolerance to soluble protein antigens.

We have investigated the ability of resting B cells, acting as antigen-presenting cells, to induce tolerance to soluble protein antigens in mice, using an antigen targeted specifically to B cells. We inject mice intravenously with ultracentrifuged Fab fragments of rabbit anti-mouse immunoglobulin D (IgD) (Fab anti-delta). Treatment with Fab anti-delta results in profound tolerance to challenge with 100 micrograms Fab nonimmune rabbit Ig (Fab NRG), precipitated in alum, as measured by antibody production. Tolerance to rabbit Fab is antigen specific, since the treated mice make normal antibody responses to a control antigen, chicken Ig. Tolerance is dependent on antigen presentation by B cells, since intravenous injection of soluble Fab NRG, which is not targeted to B cells, results in a much lower frequency and degree of tolerance, especially at lower doses. T cell help in this system is affected, since T cells from Fab anti-delta-treated mice fail to provide help for an adoptive primary antibody response to Fab NRG when transferred together with normal B cells into severe combined immunodeficient (SCID) mice. The antigen-specific B cell compartment is also affected during tolerance induction, since B cells from treated animals make less antibody than normal B cells when transferred into SCID mice with normal T cells. Although the mechanism of nonresponsiveness in the helper T cell compartment remains to be determined, we think it is likely that the precursors of helper T cells are inactivated or deleted by encountering antigen presented by small, resting B cells, which lack accessory signals necessary to induce helper T cell proliferation and differentiation to effector function.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Antigen presentation in acquired immunological tolerance.

In acquired tolerance, previous exposure to antigen under certain conditions induces specific unresponsiveness instead of specific immunological memory. It has been studied as an approach to the mechanisms of self-tolerance that operate on immunocompetent T and B lymphocytes once they leave their sites of origin in the thymus and the bone marrow. Possible mechanisms involve induction of specific suppressor cells or inactivation of antigen-specific lymphocytes (clonal anergy) as a consequence of abortive antigen presentation, in which the antigen receptor is effectively engaged but certain poorly defined accessory signals the T lymphocytes require are lacking. We propose that small, resting B lymphocytes, which lack these accessory signals, are the inactivating antigen-presenting cells in acquired tolerance to proteins and to the class II transplantation antigens. B lymphocytes, which can use their antigen receptors to gather and process antigens that are present at very low concentrations, may play a role in self-tolerance. In addition, B lymphocytes and T lymphocytes rendered anergic by encounter with self antigens could persist as self-specific suppressor cells to block an autoimmune response of autoreactive clones that had escaped deletion or anergy.

Animals

Demonstration of the antiviral role of natural killer cells in vivo with a natural killer cell-specific monoclonal antibody (NK 1.1).

A monoclonal antibody (NK 1.1) to mouse natural killer (NK) cells selectively depleted NK cell activity in virus-infected mice without significantly depressing other immune functions, including the development of virus-specific cytotoxic T cells. NK cell depletion with this antibody resulted in markedly enhanced plaque-forming unit titers of some (murine cytomegalo, Pichinde) but not other (mouse hepatitis, lymphocytic choriomeningitis) viruses. This confirms that NK cells do play a role in regulating certain infections and shows that this antibody provides a convenient tool for examining the role of NK cells in viral infections.

Animals

Differential expression of T cell differentiation antigens and major histocompatibility antigens on activated T cells during the cell cycle.

In this report we have analyzed cell cycle-related fluctuations of both quantity and density of the T cell differentiation antigens, CD3 (T3), CD4 (T4) and CD8 (T8), as well as the major histocompatibility complex (MHC) antigens on the cell surface of activated T cells. Phytohemagglutinin-activated T cells cultured for 3 days with or without conditioned medium or for 10 days with conditioned medium and mixed lymphocyte culture-derived T cell clones were used for the analysis. Correlated measurements of the surface antigen quantity (immunofluorescence), DNA content (dye Hoechst 33342), and cell size (light scatter), not influenced by synchrony induction methods and cell fixation, were performed by dual-beam flow cytometry. Our results demonstrate that the T cell differentiation antigens, CD3, CD4 and CD8, and class I MHC antigens are increased in density in the G1 phase for all activated T cells tested. In contrast, class II MHC antigens are increased in density in the G2 phase of activated T cells maintained with conditioned medium. Since it is known that the T cell differentiation antigens and class I MHC antigens on activated T cells are necessary for proliferation of T cells, our study suggests that this effect is more significant in the G1 phase. The cell cycle changes in expression of class I and class II MHC antigens, but not of the T cell differentiation antigens, appear to be mediated by soluble factors, probably including interferon-gamma, which could produce a differential increase of class I and class II MHC antigens on G2 phase cells.

Antigens, Differentiation, T-Lymphocyte

Characterization of HLA-Bw73 by serology and one-dimensional isoelectric focusing patterns.

The HLA-Bw73 antigen has been characterized by antisera in the Ninth International Histocompatibility Workshop. The International Workshop antibodies 9w245, 9w246, and 9w247 detected HLA-B7 and one or more antigens of this group (HLA-B40, Bw22, Bw42, or Bw48) in addition to HLA-Bw73. We have serologically characterized three additional antibodies, in two family studies, which contain anti-Bw73 (two of the antisera also contain anti-B7 activity). We have performed absorption studies with the three antisera, which indicate that anti-Bw73 activity is removed by HLA-B7 positive lymphocytes in two of the antisera and that, in one case, anti-B7 activity is removed by HLA-Bw73 positive HLA-B7 negative lymphocytes. The third antiserum is cytotoxicity negative absorption positive for HLA-B7. Neither HLA-B27 positive nor HLA-B8 positive lymphocytes removed any antibody activity. Using one-dimensional isoelectric focusing, unique bands have been characterized for over 30 Caucasian allotypes, including HLA-B7 and HLA-B27. Lymphocytes from two families carrying the HLA-Bw73 antigen were analyzed by isoelectric focusing. These two families show that HLA-Bw73 has a band migrating in the gel very close to HLA-B35 but distant from the cross-reactive group HLA-B7. These studies indicate that HLA antigens which share common epitopes (including those recently characterized, such as HLA-Bw73 and HLA-B7), can be distinguished serologically and by isoelectric focusing.

Antibodies