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T L Gerrard

Publications and source records attributed to T L Gerrard.

At least 37 records · Page 2Linked to original sources

Stimulation of EBV-activated human B cells by monocytes and monocyte products. Role of IFN-beta 2/B cell stimulatory factor 2/IL-6.

EBV infects human B lymphocytes and induces them to proliferate, to produce Ig, and to give rise to immortal cell lines. Although the mechanisms of B cell activation by EBV are largely unknown, the continuous proliferation of EBV-immortalized B cells is dependent, at least in part, upon autocrine growth factors produced by the same EBV-infected B cells. In the present studies we have examined the influence of monocytes on B cell activation by EBV and found that unlike peripheral blood T cells and B cells, monocytes enhance by as much as 30- to 50-fold virus-induced B cell proliferation and Ig production. Upon activation with LPS, monocytes secrete a growth factor activity that promotes both proliferation and Ig secretion in EBV-infected B cells and thus reproduces the effects of monocytes in these cultures. Unlike a number of other factors, rIFN-beta 2/B cell stimulatory factor 2 (BSF-2)/IL-6 stimulates the growth of human B cells activated by EBV in a manner similar to that induced by activated monocyte supernatants. In addition, an antiserum to IFN-beta that recognizes both IFN-beta 1 and IFN-beta 2 completely neutralizes the B cell growth factor activity of activated monocyte supernatants. These findings demonstrate that IFN-beta 2/BSF-2/IL-6 is a growth factor for human B cells activated by EBV and suggest that this molecule is responsible for B cell growth stimulation induced by activated monocyte supernatants. We have examined the possibility that IFN-beta 2/BSF-2/IL-6 might also be responsible for B cell growth stimulation by supernatants of EBV-immortalized B cells and thus may function as an autocrine growth factor. However, IFN-beta 2/BSF-2/IL-6 is not detectable in supernatants of EBV-immortalized B cells by immunoprecipitation. Also, an antiserum to IFN-beta that neutralizes IFN-beta 2/BSF-2/IL-6 fails to neutralize autocrine growth factor activity. This suggests that autocrine growth factors produced by EBV-immortalized B cells are distinct from IFN-beta 2/BSF-2/IL-6. Thus, the continuous proliferation of EBV-immortalized B cells is enhanced by either autocrine or paracrine growth factors. One of the mediators with paracrine growth factor activity is IFN-beta 2/BSF-2/IL-6.

B-Lymphocytes↗

Modulation of class I and class II histocompatibility antigens on human T cell lines by IFN-gamma.

IFN-gamma is an immunomodulatory agent which is known to induce or enhance the expression of class II histocompatibility Ag (Ia Ag) on many lymphoid cells and cell lines of diverse origin. However, we have observed that IFN-gamma did not induce the expression of Ia Ag on Ia- human T cell lines. Neither did IFN-gamma enhance the expression of Ia Ag on Ia+ T cells. However, IFN-gamma was able to enhance the expression of class I histocompatibility Ag (HLA-A,B,C Ag) on a number of the T cell lines tested. Experiments with 125I-labeled IFN-gamma showed a relatively small degree of specific binding to these T cell lines. More extensive studies on two of the T cell lines demonstrated 1000 and 2600 IFN-gamma binding receptor sites/cell and binding affinities of 4.0 X 10(-10) M and 7.3 X 10(-10) M. Thus, although IFN-gamma can bind to human T cell lines and enhance class I histocompatibility Ag on these cells, IFN-gamma alone does not appear to regulate expression of class II histocompatibility Ag on T cell lines.

Cell Line↗

The human interleukin 2 receptor beta chain (p70). Direct identification, partial purification, and patterns of expression on peripheral blood mononuclear cells.

IL-2 binds to high- and low-affinity receptors on activated T cells. The high-affinity receptor was hypothesized to consist of the noncovalent association between the alpha chain (IL-2-R-alpha, p55) and a beta chain (IL-2-R-beta, p70), whereas the low-affinity receptor consists of p55 without p70. We now directly identify p70 as a 65-77-kD glycoprotein doublet. Preparative quantities of the IL-2/p70 complex have been isolated. Further, we demonstrate that p70 is the principal IL-2 binding protein on both resting CD4+ and CD8+ T cells and that both p70 and p55 can be induced on normal B cells and monocytes.

Antigens, Surface↗

Differential effects of interferon-alpha and interferon-gamma on interleukin 1 secretion by monocytes.

We examined the effect of interferon (IFN)-alpha and IFN-gamma on the ability of human monocytes to secrete interleukin 1 (IL 1). IFN-alpha directly induced IL 1 secretion by monocytes. IFN-gamma did not induce any IL 1. IFN-gamma-stimulated monocyte supernatants were also negative for pyrogenic activity. However, IFN-gamma greatly enhanced the amount of IL 1 secreted when monocytes were stimulated by lipopolysaccharide or Staphylococcus aureus, even at concentrations which by themselves did not induce IL 1. IFN-alpha did not enhance IL 1 secretion induced by other stimuli. IFN-gamma enhanced IL 1 secretion by priming monocytes to be more sensitive to an IL 1-inducing stimulus. However, IFN-gamma does not enhance IL 1 induced by all stimuli, because there was no enhancement of IL 1 induced by PMA. Thus, IFN-alpha and IFN-gamma have very distinct roles in the induction and enhancement of IL 1 by monocytes.

Humans↗

Activated human T cells can present denatured antigen.

The requirements for activated, Ia-positive human T cells to present antigen were examined. Although activated T cells could present allo-Ia antigens, activated T cells could not present native, soluble protein antigens. We have now shown that activated T cells can present denatured protein antigens to stimulate proliferation of antigen-specific T-cell lines. Since denatured antigen may represent a processed form of antigen, the data suggest that activated T cells can present antigen but may not be able to process antigen as efficiently as other presenting cells. We have also shown that antigen-specific T-cell lines, which are also Ia positive, are able to present antigen to themselves, if the antigen is in a denatured form. Autopresentation requires a critical minimal cell number to stimulate proliferation, even with denatured antigen. The ability of activated T cells to present antigen may reflect an important amplification or feedback mechanism of immune regulation.

Antigen-Presenting Cells↗

Activated human T cells can present alloantigens but cannot present soluble antigens.

Human T cells, when activated by antigen or mitogen, express Ia antigens. We have examined the capacity of activated T cells to stimulate autologous and allogeneic T cells and their ability to present soluble antigen. Interleukin 2-dependent T-cell lines (TCL), free of accessory cells, were used for antigen-presenting cells. These activated T cells were potent stimulators in an autologous mixed lymphocyte reaction (AMLR), more so than autologous irradiated non-T mononuclear cells. Activated T cells were also able to stimulate proliferation of allogeneic T cells in the absence of any other accessory cells, and this stimulation was blocked by anti-Ia antibodies. Resting unstimulated T cells were unable to stimulate autologous or allogeneic responses. Thus, activated T cells were able to present self antigens and alloantigens. However, activated T cells could not present soluble antigens to autologous T cells or to antigen-specific TCL even if exogenous interleukin 1 was added to cultures. The ability of activated T cells to stimulate an AMLR in vitro may reflect an important immunologic amplification mechanism in vivo. The ability of activated T cells to present alloantigens but not soluble antigens suggests an inability to process antigen, and this may provide further insights into the complexities of antigen presentation.

Antigen-Presenting Cells↗

Synergy of helper factors in the differentiation of in vivo-preactivated antigen-specific human B cells.

After in vivo immunization with antigen, B cells appear in the peripheral blood which can be induced in vitro by nonspecific factors found in mixed lymphocyte culture supernatants (MLC-SN) to differentiate and secrete antibody specific for the immunizing antigen. In order to further delineate the nature of the factors involved in the differentiation of these in vivo-activated B cells, various helper factors, including interleukin 1 and interleukin 2 (IL-1 and IL-2), B-cell growth factor (BCGF), and B-cell differentiation factor (BCDF) were added separately and in combination to cultures of these preactivated B cells. T-cell-depleted fractions of peripheral blood mononuclear cells were obtained from normal individuals immunized in vivo with keyhole limpet hemocyanin. MLC-SN alone, without the addition of antigen, selectively triggered an antibody response specific for the antigen used to immunize in vivo in the absence of a polyclonal B-cell response. In order to obtain responses equal to those seen with MLC-SN, a combination of BCGF, IL-2, and BCDF was required, although any two factors partially reconstituted the response. Exogenous IL-1 had the least effect but was suppressive in the presence of optimal concentrations of monocytes. Thus, for maximal in vitro differentiation of in vivo-preactivated B cells, a combination of at least three helper factors is required and acts in a synergistic manner to induce antigen-specific antibody responses.

B-Lymphocytes↗

Effects of in vitro corticosteroids on B cell activation, proliferation, and differentiation.

The present study demonstrates the graded effect of in vitro corticosteroids (CSs) on the different phases of B cell activation, proliferation, and differentiation. Early events such as activation and proliferation of high-dose anti-mu or Staphylococcus aureus-stimulated B cells are profoundly suppressed by the presence of in vitro CSs. The suppressed proliferative response may be mediated by a direct effect on B cells and/or modulation of accessory cell function. Later events in the B cell cycle such as the proliferative response to B cell growth factor after either in vivo or in vitro activation are less sensitive to the suppressive effects of in vitro CSs. The final events in the B cell cycle; namely, the differentiation to the immunoglobulin-producing state, is not suppressed by in vitro CSs. Indeed, depending on the systems employed, there is either no effect or enhancement of immunoglobulin secretion by the presence of in vitro CSs. The graded effect of in vitro CSs on the discrete phases of the B cell activation, proliferation, and differentiation cycle provide new insights into the complex nature of CS-induced modulation of human B cell responses.

Adult↗

The in vitro regulation of human thyrocyte HLA-DR antigen expression.

The ability of endocrine organs to express human immune response-associated antigens (Ia), such as HLA-DR, is a subject of intense current interest. In this study, the effects of various potential modulators of thyroid follicular cell HLA-DR expression were examined using in vitro cultures. A culture supernatant containing T-cell-derived lymphokines caused DR antigen expression on 13-18% of thyroid cells; more consistent effects were produced by recombinant gamma-interferon, which led to 46-100% of the thyroid cells becoming HLA-DR positive after 3 days in culture. This effect was both time and concentration dependent and occurred in thyroid cells derived from patients with Graves' disease (n = 7) and Hashimoto's thyroiditis (n = 2) as well as from three subjects with no autoimmune thyroid disease. Thyroid cells stained with the monoclonal antibodies 4F2 and 5E9, which recognize cell activation antigens, regardless of whether they were treated with gamma-interferon. The lectin phytohemagglutinin also induced HLA-DR antigen expression (21-91% of cells positive). This response was dependent on T cell contamination of thyroid cell suspensions, since the effect was inhibited by cyclosporin A. HLA-DQ antigen expression, identified by the Leu-10 monoclonal antibody, was also induced on thyroid cells by gamma-interferon and phytohemagglutinin. In contrast, neither recombinant alpha-interferon nor interleukin-2 induced HLA-DR antigens. Irradiation reduced the response of thyroid cells to gamma-interferon, but two of the known inhibitors of macrophage Ia expression, prostaglandin E2 and (Bu)2cAMP, did not affect gamma-interferon-induced thyroid cell HLA-DR expression. We were unable to detect interleukin-1 production by thyroid cells. These results suggest that 1) under normal circumstances, thyroid cells are 4F2 and 5E9 positive, but are incapable of expressing Ia antigens and, thus, of activating T cells to initiate autoimmune thyroiditis; and 2) once activated, for example by a virus, T cells could release gamma-interferon and induce thyroid cell HLA-DR and -DQ antigen expression; these Ia-positive thyroid cells could then have a role in maintaining or enhancing the autoimmune response.

Adult↗

IL 1-like activity in antigen-presenting human B cell lines.

The secretion of interleukin 1 (IL 1) by an antigen-presenting cell (APC) may be essential to its function in the stimulation of T cell responses. However, the relevance of IL 1 is less clear in cases where the APC are from continuous B cell lines. We have shown that IL 1-like activity can be demonstrated in human B cell lines by using a cellular co-culture assay for IL 1. Significant IL 1 activity could not be detected in the supernatants of these B cell lines produced either constitutively or after stimulation with various mitogens. The failure to detect IL 1 activity in B cell supernatants was not due to secretion of a detectable inhibitor of IL 1. B cell supernatants or a co-culture assay with B cells failed to demonstrate any IL 2 activity. Co-culture experiments, in which B cells were added to known concentrations of IL 1, showed distinct patterns of stimulation and may suggest that the B cell activity is distinct from conventional IL 1. Not all B cell lines had equivalent levels of IL 1-like activity. However, all B cell lines tested were able to act as effective APC. Thus, B cells that function as APC may utilize a mediator with properties similar to IL 1.

Antigen-Presenting Cells↗

Increased expression of HLA-DR antigens in hydrocortisone-treated monocytes.

Human peripheral blood monocytes incubated overnight with hydrocortisone had an increased expression of HLA-DR antigens. This change was noted as an increased proportion of DR-positive staining monocytes at greater fluorescence intensities as determined on a fluorescence-activated cell sorter. Hydrocortisone treatment of monocytes did not alter the expression of another Ia antigen on monocytes, HLA-DS. Neither did hydrocortisone treatment alter the expression of either Mac 120 antigen or monocyte .2 antigen on monocytes. Thus, the effect of hydrocortisone on monocyte DR antigens may be somewhat selective. Hydrocortisone also caused an increase in monocyte cell size after 3 to 4 days as compared to untreated controls.

Flow Cytometry↗

Hydrocortisone-mediated inhibition of monocyte antigen presentation: dissociation of inhibitory effect and expression of DR antigens.

The suppressive effects of hydrocortisone (HC) on the human immune system are well known. The mediation of the immunosuppressive effects of HC on lymphocyte responses via inhibition of monocyte function has been examined by monocyte-dependent, antigen-induced lymphocyte proliferation. Monocytes that were first treated with HC and then washed were unaffected in their subsequent ability to present antigen. However, there was a dramatic inhibition of lymphocyte proliferative responses if HC was present while monocytes were pulsed with antigen. This was directly related to the dose of HC present. HC-mediated inhibition of monocyte antigen presentation could not be overcome by the addition of interleukin-1 (IL-1) to cultures, and thus inhibition of monocyte IL-1 secretion cannot totally account for the inhibition of monocyte antigen presentation. Although HC inhibits monocyte antigen presentation, HC increases the expression of HLA-DR antigens on monocytes. Other monocyte stimulants, including lipopolysaccharide (LPS), lymphokine, and gamma interferon, were examined for their effect on monocyte DR expression and their effect on monocyte antigen presentation. No correlation was found between the ability to increase monocyte DR antigen expression and the effect on antigen presentation. While HC, lymphokine, and gamma interferon all increased the expression of DR antigens on monocytes, HC, LPS, and lymphokine, but not gamma interferon, inhibited monocyte antigen presentation. Although HC can exert profound immunosuppressive effects via monocytes, it is not the only mechanism of inhibition. HC added to cultures after monocytes had been pulsed with antigen was also inhibitory.

Antigens↗

Modulation of human B cell responses by a monoclonal antibody to an activation antigen 4F2.

Antigen specific human antibody responses can be modulated in vitro by the addition of 4F2 antibody, a monoclonal antibody (MoAb) which recognizes an antigen on activated T cells and B cells. Specific antibody responses induced with the antigen are suppressed by the addition of 4F2. However, specific antibody responses induced with the polyclonal activator, pokeweed mitogen (PWM), are significantly enhanced by the addition of 4F2. Proliferative responses to both antigen and PWM are suppressed by the addition of 4F2. The enhancement of PWM stimulated responses by 4F2 is mediated by T cells. However, in the absence of T cells, 4F2 can directly inhibit antigen specific B cells. Polyclonal Ig production stimulated by PWM was also enhanced by 4F2. Thus, the immunomodulating effects of the 4F2 MoAb are the result of a balance of enhancement and suppression mediated at the T cell and the B cell level, respectively.

Antibodies, Monoclonal↗

Differential effect of monoclonal anti-DR antibody on monocytes in antigen- and mitogen-stimulated responses: mechanism of inhibition and relationship to interleukin 1 secretion.

A differential role for DR antigens on monocytes in antigen-stimulated as opposed to mitogen-stimulated human lymphocyte responses has been observed. A monoclonal anti-DR antibody used to treat monocytes caused inhibition of antigen-induced T-cell responses and of T-cell-dependent B-cell responses. However, anti-DR antibody treatment of monocytes did not inhibit mitogen-induced responses. Anti-DR treatment of monocytes did not induce suppression, as antigen-induced responses could be reconstituted with untreated monocytes. Anti-DR treatment of monocytes did not merely block interleukin 1 (IL-1) secretion since addition of IL-1 could not restore antigen-induced responses. Monoclonal anti-DR antibody did not directly inhibit monocyte secretion of IL-1. DR-negative monocytes, selected by antibody and complement, could not present antigen, even though they were capable of secreting IL-1. Thus, this monoclonal anti-DR antibody sterically blocks antigen presentation by monocytes without induction of suppression or inhibition of IL-1 secretion. Monocyte DR antigens appear essential for stimulation of antigen-induced responses, but DR antigens on monocytes may not be essential for mitogen-stimulated responses and do not appear to be related to the ability of monocytes to secrete IL-1.

Antibodies, Monoclonal↗

Different requirements for Ia-bearing accessory cells in mitogen versus antigen induction of human B-cell responses.

The accessory cell requirements for the induction of proliferative and specific antibody responses of human lymphocytes stimulated with either antigen or mitogen were examined. An Ia-negative human myeloid tumor cell line, K562, could substitute for monocytes in the proliferation of monocyte-depleted lymphocytes in response to pokeweed mitogen (PWM) stimulation. K562 cells could also act as accessory cells in the PWM-induced anti-keyhole limpet hemocyanin (KLH) antibody synthesis of cells from a KLH-immunized donor. In contrast, only monocytes and not K562 cells could function as accessory cells in antigen-induced lymphocyte proliferation as well as in antigen-induced, antigen-specific antibody production. However, K562 cells, like monocytes, were able to positively and negatively regulate polyclonal immunoglobulin responses. Thus, Ia-bearing accessory cells can function in antigen-induced proliferation and antibody responses while non-Ia-bearing cells can function in mitogen-induced, but not antigen-induced responses. These studies indicate a dichotomy in the nature of required accessory cells in antigen-induced versus mitogen-induced human lymphocyte responses and strongly suggest an obligatory role of Ia or an Ia-related molecule on accessory cells in antigen-induced responses of human lymphocytes.

Animals↗

Gamma (immune) interferon production by leukocytes from a patient with a TG cell proliferative disease.

We report a patient with a disease characterized by proliferation of T cells with Fc receptors for IgG (TG). However, unlike lymphoid cells from normal individuals or from patients with other lymphoid malignancies, the patient's lymphocytes spontaneously produced gamma interferon (IFN-gamma) in vitro. The peripheral lymphocytes consisted of 95% TG cells, which exhibited the morphological characteristics of T-cell chronic lymphocytic leukemia (CLL) and were normal on cytochemical and chromosome analysis. The majority of TG cells were OKT3+, OKT8+, and OKT4-, 3A1-. These cells failed to express suppressor cell activity and displayed depressed levels of natural killer activity, but mediated antibody-dependent cell-mediated cytotoxicity. The spontaneous production of IFN-gamma by human peripheral lymphoid cells as demonstrated in this study may serve as a probe for studying the relationship between IFN-gamma and the proliferation of human T-cell subsets.

Cells, Cultured↗

Activation and immunoregulation of antigen-specific human b lymphocyte responses: multifaceted role of the monocyte.

The multifaceted role of the monocyte in the induction and modulation of antigen-specific antibody responses by human B cells was delineated. Monocytes were absolutely required for the induction of specific antibody responses to both TT and KLH in an antigen-induced in vitro assay. Monocytes were also required for the PWM induction of specific antibody in immunized subjects. Pulsing monocytes with specific antigen or with PWM consistently stimulated proliferation of T cells in absence of added antigen and could also stimulate specific antibody synthesis although less consistently. Stimulation of specific antibody responses with antigen required fewer numbers of monocytes than did stimulation of specific antibody responses with PWM. Polyclonal antibody synthesis induced by PWM was also dependent on monocytes. However, polyclonal antibody synthesis induced by supraoptimal concentrations of antigen was usually optimal in the absence of monocytes and was actually suppressed when increased numbers of monocytes were added to monocyte-depleted cultures. Monocyte supernatants could not replace the absolute requirements for monocytes in the induction of specific antibody synthesis. However, monocyte supernatants could profoundly modulate the antigen-specific as well as the polyclonal Ig response of lymphocytes to either antigen or PWM stimulation in a manner closely resembling monocytes themselves. Thus, we demonstrated that monocytes and their products play a critical role in the activation and immunoregulation of antigen-specific antibody responses of human B cells.

Antibody Formation↗