Search PubMedSearch

Biomedical subjects

R E Callard

Publications and source records attributed to R E Callard.

14 recordsLinked to original sources

CD19 regulation of human B cell responses. B cell proliferation and antibody secretion are inhibited or enhanced by ligation of the CD19 surface glycoprotein depending on the stimulating signal used.

The regulation of human B cell proliferation and differentiation by the CD19 surface glycoprotein was investigated. As expected, proliferation induced by costimulation with anti-IgM plus IL-4 or IL-2, or with G28.8 antibody plus IL-4 was inhibited by antibody ligation of CD19. In contrast, proliferation of tonsillar B cells to mitogenic doses of PMA (5 ng/ml) or to EBV were enhanced, and proliferation of B cell lines to BCGF(low) was unaffected. Similarly, specific antibody responses by tonsillar B cells to influenza virus, and Ig secretion by the CESS lymphoblastoid cell line in response to IL-6 were inhibited, whereas polyclonal Ig production in response to EBV was enhanced. These results show that human B cell responses may be inhibited or enhanced by CD19 depending on the stimulating signal used. The difference in response to CD19 ligation did not depend on whether proliferation or differentiation was being measured, or whether stimulation was by surface Ig. In experiments using PMA as a T cell independent mitogen, it was found that ligation of CD19 inhibited proliferation of B cells costimulated with low doses of PMA plus G28.5 (CD40) antibody, but enhanced the response to higher (mitogenic) doses with or without costimulation with G28.5. The change from inhibition to enhancement occurred over a very small increase in PMA dose (0.5-1.0 ng/ml) that corresponded exactly to the lowest dose required for mitogenic activity. Finally, we showed that CD19 ligation inhibited the increase in surface expression of CD23, but not IgM, induced by IL-4, showing that CD19 ligation can have opposed effects on different responses to the same signal. Together our results suggest that CD19 activation of human B cells interacts with other signaling events to enhance or inhibit the subsequent response.

Antibody Formation

Interleukin-4 stimulates immunoglobulin secretion by Epstein-Barr virus (EBV)-activated tonsillar B cells, and by EBV-transformed lymphoblastoid B cell lines without increasing cell division.

Freshly prepared Epstein-Barr virus-transformed B lymphoblastoid cell lines derived from five different donors were tested for their responses to recombinant human interleukin-4 and to low molecular weight B cell growth factor. In the absence of either cytokine, all five lines secreted immunoglobulin of more than one isotype (IgM, IgG, and IgA, but not IgE). Stimulation with interleukin-4 resulted in a significant increase in immunoglobulin secretion, but did not enhance cell division measured by tritiated-thymidine uptake or cell counts. In contrast, low molecular weight B cell growth factor increased both immunoglobulin secretion and cell division. The increase in immunoglobulin secretion stimulated by interleukin-4 occurred for each of the different isotypes (IgM, IgG and IgA) produced by the unstimulated line. No IgE secretion was detected for any of the five lines. It was also found that low (5 units/ml), but not high (100 units/ml), concentrations of interleukin-4 increased IgM, IgG and IgA secretion by tonsillar B cells polyclonally activated with Epstein-Barr virus. Again, no IgE was detected at any time. These results suggest that interleukin-4 can function as a late-acting B cell differentiation factor as well as a growth factor for human B cells.

Animals

Inhibition of B cell proliferation with anti-CD19 monoclonal antibodies: anti-CD19 antibodies do not interfere with early signaling events triggered by anti-IgM or interleukin 4.

The 95-kDa antigen recognized by the anti-CD19 panel of monoclonal antibodies is found on the surface of most cells of the B cell lineage. Anti-CD19 antibodies inhibit B cell proliferation in response to anti-Ig plus interleukin 4 (IL4), but enhance the response to mitogenic concentrations of either phorbol 12-myristate 13-acetate (PMA) or Epstein-Barr virus. This dichotomy in the effect of anti-CD19 antibodies suggested that the inhibitory action may be directed at the transmembrane signaling pathways utilized by anti-IgM and IL4. To investigate this hypothesis, an attempt was made to determine the mechanism of signal transduction utilized by the CD19 antigen, and elucidate its effect on transmembrane signaling invoked by anti-immunoglobulin and IL4. Binding of anti-CD19 antibody to B cells did not promote activation of either the phosphoinositide or cAMP signaling pathways. In addition, anti-CD19 antibody did not inhibit phosphatidylinositol bisphosphate (PIP2) hydrolysis induced by anti-IgM or IL4, nor did it interfere with cAMP induction by IL4. We also found that anti-CD19 antibody inhibited PMA plus calcium ionophore-induced B cell proliferation. This evidence indicates that anti-CD19 mAb interrupts the signaling cascade at a point distal to receptor-mediated breakdown of PIP2 and/or activation of adenyl cyclase. This conclusion was fully consistent with experiments in which anti-CD19 antibody was shown to inhibit DNA but not RNA synthesis, and the observation that anti-CD19 antibody must be present between 6 h and 20 h after the initiation of the culture suggesting that anti-CD19 mAb exerts its inhibitory effect in late G0 or G1, after the initial signaling events.

Antibodies, Anti-Idiotypic

The role of interleukin 4 in specific antibody responses by human B cells.

This study was designed to investigate the requirement for interleukin 4 (IL-4) in specific antibody responses by human lymphocytes. Addition of IL-4 to antigen (influenza virus)-stimulated cultures of tonsillar mononuclear cells was found to suppress specific antibody production significantly at doses as low as 10 units/ml. Specific immunoglobulin (IgG), IgA, and IgM antibodies were all equally inhibited by IL-4. Inhibition of the antibody response with IL-4 was completely abrogated by an IL-4 blocking antibody showing that the effect was specific for IL-4. It was also found that anti-IL-4 did not inhibit specific antibody production, showing that IL-4 was not required for responses to antigen. In contrast, significant inhibition was obtained with anti-Tac, indicating an important role for IL-2. In the absence of T helper cells antibody responses to influenza virus were completely restored with T cell replacing factor [TRF; IL-2 or low-molecular-weight B cell growth factor (BCGFlow)], but not with IL-4. In fact, IL-4 significantly suppressed the antibody response obtained when either IL-2 or BCGFlow was used as a TRF. Addition of IL-4 at different times after in vitro stimulation with antigen and IL-2 showed that the inhibitory activity of IL-4 was maximal during the first 3 days of culture and was lost by day 4. IL-4 therefore seems to inhibit an early activation event (possibly dependent on IL-2 or BCGFlow), or B cell proliferation essential for specific responses to antigen.(ABSTRACT TRUNCATED AT 250 WORDS)

Antibodies, Monoclonal

Independent regulation of interleukin 4 (IL-4)-induced expression of human B cell surface CD23 and IgM: functional evidence for two IL-4 receptors.

Activation of human B cells with interleukin 4 (IL-4) is known to result in increased expression of CD23 (the low-affinity receptor for IgE) and sIgM. However, whereas CD23 expression is increased by several B cell mitogens, including phorbol 12-myristate 13-acetate, Epstein-Barr virus, anti-immunoglobulin (Ig), and IL-4, surface IgM (sIgM) expression is increased only with IL-4, suggesting that expression of each surface antigen is regulated independently. This was confirmed in three different ways. First, in dose-response experiments, it was shown that 10 times the concentration of IL-4 was required for CD23 than for sIgM expression. Similar or even higher concentrations of IL-4 were required for proliferation. In fact, optimal sIgM expression was obtained in some experiments with concentrations of IL-4 (1-5 units/ml) which had little or no effect on either CD23 expression or B cell proliferation. Secondly, IL-4 is known to activate the phosphatidyl inositol pathway in human B cells followed 8-10 min later by an increase in cAMP. Pharmacologically mimicking this pathway by brief exposure of resting B cells to phorbol dibutyrate plus ionomycin followed 10 min later with dibutyryl cAMP resulted in an increase in expression of CD23 but not sIgM. Thirdly, CD19 monoclonal antibody, which inhibits B cell proliferation in response to IL-4 plus anti-Ig, was found to inhibit IL-4-induced CD23 but not sIgM expression. These results show that CD23 and sIgM expression are regulated independently and are consistent with the existence of two separate signal transduction pathways stimulated by IL-4, which may be coupled to distinct IL-4 receptors.

Antigens, CD19

Activation of human B cells through the CD19 surface antigen results in homotypic adhesion by LFA-1-dependent and -independent mechanisms.

Addition of CD19 monoclonal antibodies (mAb) to highly purified tonsillar B cells resulted in homotypic adhesion and the formation of cell clusters. This response was completely blocked by antibody to LFA-1, indicating an LFA-1-dependent adhesion mechanism. In contrast, aggregate formation by B cells activated with phorbol myristate acetate (PMA) was only partially inhibited by anti-LFA-1 antibody, and those formed in response to PMA plus CD19 antibody were not inhibited at all, suggesting aggregation of activated B cells stimulated with CD19 antibody was LFA-1 independent. This was confirmed with B-cell lines. The pre-B-cell line Nalm-6 formed aggregates in response to CD19 antibody which were not inhibited with anti-LFA-1. In addition, CD19 antibody induced aggregate formation by an Epstein-Barr virus (EBV)-transformed B-cell line derived from an LFA-1-deficient donor. These results suggest that different adhesion molecules may operate at different stages of B-cell activation, and that CD19 may be important in cell-cell interactions involved in regulation of antibody responses.

Antibodies, Monoclonal

Interleukin 4 activates human B lymphocytes via transient inositol lipid hydrolysis and delayed cyclic adenosine monophosphate generation.

We report from three independent centers that, in human tonsillar B lymphocytes, human IL4 switches on a series of second messenger changes, the precise sequence of which constitutes a novel signal transduction cascade. It involves an immediate and transient elevation of inositol 1,4,5-trisphosphate and Ca2+ levels. This is followed several minutes later by a sustained rise in cellular cyclic adenosine monophosphate concentration, the triggering of which involves both the Ca2+ rise and an additional, as yet unidentified, IL4-generated signal. Both the products of the initial inositol lipid hydrolysis and the delayed cyclic adenosine monophosphate accumulation are essential for the later induction of CD23 expression, a major phenotypic change promoted in these cells by IL4. The striking contrast between these findings and those that have been observed for the IL4 triggering of murine B cells is discussed.

Antigens, Differentiation, B-Lymphocyte

Specific in vitro antibody response to influenza virus by human blood lymphocytes.

Advances in understanding of human immune responses depend, for obvious reasons, on the use of in vitro techniques for culture of peripheral blood lymphocytes (PBL). We report here that specific antibody responses to influenza virus can readily be obtained using simple, reproducible methods. The system will be useful for the analysis of the cellular requirements for antibody production, the genetics of immune responsiveness and in clinical studies of immunosuppressed and immunodeficient patients.

Antibodies, Viral