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M H Kosco

Publications and source records attributed to M H Kosco.

At least 19 recordsLinked to original sources

Immunoglobulin D-deficient mice can mount normal immune responses to thymus-independent and -dependent antigens.

To examine the in vivo function of IgD we generated mice deficient for IgD by gene targeting. The IgD-mice show a reduced B-cell compartment with 30-50% less B cells in the spleen and lymph nodes but show a normal pre-B-cell compartment. The surface-IgD- B cells express two to three times more surface IgM than B cells of control animals. Serum concentrations of the immunoglobulin isotypes of IgD- mice are almost normal, indicating that surface-IgD expression is not necessary for class switching of B cells. Immunization experiments showed that IgD- mice could respond well to thymus-dependent and -independent antigens. After immunization normal germinal centers developed in the IgD- mice. These data suggest that IgD is not necessary for the induction of immune responses but may be important in homeostasis of cells in the B-cell compartment.

Agammaglobulinemia↗

Follicular dendritic cell-dependent adhesion and proliferation of B cells in vitro.

In response to an antigenic challenge, B cells proliferate in germinal centers within secondary lymphoid tissue. Specialized accessory cells, follicular dendritic cells (FDC), and T cells are necessary to drive this reaction. Indirect evidence suggests that FDC provide signals which not only induce B cell proliferation but can rescue B cells programmed to die by apoptosis. An in vitro system was developed to: 1) define the role of FDC and 2) identify molecules involved in this response. Activated, low density B cells and T cells were coisolated with FDC from immune mouse lymph nodes. Upon culturing, large cellular aggregates formed, composed of 1 to 3 FDC interdigitating between 30 to 90 B cells and 1 to 5 T cells. Many of these B cells were undergoing DNA synthesis. Depleting FDC or T cells from the cultures immediately stopped cluster formation and proliferation. Separating clustered vs nonclustered cells revealed that the FDC-associated population remained viable, whereas cells in suspension became apoptotic. The adhesion/activation molecules ICAM-1, LFA-1, and CD44 supported both cluster formation and proliferation. In addition, anti-class II and anti-kappa L chain mAb interfered dramatically with DNA synthesis. This model mimics many of the features of a germinal center and can be used to further study B cell activation, proliferation, and differentiation in vitro.

Animals↗

Signals involved in germinal center reactions.

Many of the features observed in the in vitro cultures discussed in this review coincide with characteristics described for an in vivo germinal center response. FDC and T cells are required to maintain B-cell proliferation which is confined to a finite amount of time (i.e. less than 2 wk). Large cellular aggregated form which contain many blasting cells undergoing DNA synthesis. In addition to proliferation, apoptosis is also occurring in the cultures but appears to be limited to the population which is not in contact with the FDC. The system can be driven by specific antigen, suggesting that clonal expansion is occurring. As in other immunological systems, there is an important role for adhesion molecules both for cluster formation and DNA synthesis. Antigen processing and presentation is a major event since blocking this through several mechanisms ends the stimulation. The role of T cells is essential both in vivo and in vitro; however, their exact contribution is still not well understood. It is interesting that blocking IL4 usage either by neutralizing the molecule or its receptor by monoclonal antibodies has no effect on the system. Which interleukins are important for germinal centers remains on open question. Evidence continues to accumulate on the important role of FDC and the molecules they express. Not only are the immune complexes an essential part, but it seems that molecules yet to be defined have an effect. For many practical reasons these have remained a mystery, but using our various systems we are attempting to reveal them. Two intriguing questions which remain include: 1. the molecular nature of the signalling between the FDC and B cell; and 2. how does the FDC retain the antigen in a native form for such long periods of time? An understanding of both mechanisms will provide us with a better appreciation for the events leading to a germinal center response and the immunological phenomenon referred to as memory.

Animals↗

Chemotaxis of germinal center B cells in response to C5a.

An infiltrate of B cells and plasma cells is characteristic of certain chronic inflammatory lesions. However, mechanisms involved in the local accumulation of these cells have not been established. Efforts to demonstrate that B cells from normal animals can migrate in response to inflammation-induced chemoattractants have been inconclusive. The objective of this study was to determine if murine germinal center (GC) B cells could respond chemotactically to a C5a gradient. On successive days after secondary immunization, draining lymph nodes were harvested and the activated GC B cells isolated. These GC B cells were placed in modified Boyden chambers, incubated for 3 h and the distance the leading front of cells migrated through the filters was determined. The results show that GC B cells migrated to factors in zymosan- and lipopolysaccharide-activated serum. The migratory response demonstrated distinct kinetics. Cells isolated between 2 to 4 days after secondary immunization migrated, whereas cells isolated at day 0 and beyond day 6 did not. Checkerboard analysis revealed that the migratory response was attributable to both chemokinesis and chemotaxis. Anti-C5 inhibited the migration of day-3 GC B cells implicating C5 in the migration mechanism. Studies using recombinant C5a established that this C5 fragment was chemotactically active. In conclusion, GC B cells generally were not chemotactically active. However, at a particular stage of maturation B cells in the GC become responsive to C5a as a chemotactic agent. Thus, B cells from normal animals may respond chemotactically, and C5a may play a role in recruitment of recently activated B cells into inflammatory sites.

Animals↗

Antigen presentation to B cells.

B lymphocytes encounter antigen within the body, which causes them to undergo clonal expansion, affinity maturation and differentiation to antibody-forming cells. How they come into contact with the immunogen, and the subsequent response induced is the subject of several recent reports.

Animals↗

Proliferation of germinal center B lymphocytes in vitro by direct membrane contact with follicular dendritic cells.

In secondary lymphoid organs, follicular dendritic cells (FDC) are located within B cell follicles and germinal centers. Through their cytoplasmic extensions they come into contact with a large number of neighboring lymphocytes. Using an enzyme cocktail to digest human tonsils followed by ultracentrifugation on bovine serum albumin gradients, single cell suspensions were obtained. Immunocytochemistry revealed that 7% of the cells were FDC, 5% T cells, and 5% macrophages. The remaining population were B cells with greater than 95% being of the germinal center phenotype (i.e. CD19-positive, CD39/sIgD negative). After 24 h of culture up to 44% of the lymphocytes were found in clusters centered around FDC. At the start of the culture as well as 24 and 72 h later, between 31 and 55% of the B cells within FDC associated clusters were in late G1 to M phase of the cell cycle. In contrast, less than 10% of the B cells not in contact with FDC (i.e. outside the clusters) were in an activated state. Autoradiography revealed that after three days of incubation the rate of proliferation was 26.2 times higher for the lymphocytes involved in cluster formation as compared to those cells not associated with FDC. Furthermore, the number of viable B cells after a 72 h mitogen-free culture period was determined. By adding FDC to these preparations, 31.9% of the lymphocytes were rescued from dying. These data show that FDC provide a microenvironment which can maintain the viability, activation and proliferation of germinal center B cells in vitro.

Antibodies, Monoclonal↗

Iccosomes and the secondary antibody response.

Iccosomes derived from follicular dendritic cells (FDC) are believed to play an important role in dispersion of antigen necessary for induction of anamnestic responses. Because FDC are aberrant and iccosome release has not been observed in aged mice, we hypothesized that these animals would be impaired in their ability to mount anamnestic responses. To test this, anamnestic responses were compared in aged and control mice. To ensure the presence of functional lymphocytes, some aged mice were reconstituted with T- and B-memory cells obtained from control mice. Anamnestic responses in aged mice were markedly depressed even when given functional memory cells. To more directly relate the impaired antibody response of aged mice to FDC function, antigen-bearing FDC from either aged or control mice were incubated with T- and B-memory cells from control mice to induce an anamnestic response. Antigen retained by FDC from aged mice was much less immunogenic than antigen retained by FDC from control mice. Since iccosome formation does not appear in aged mice, iccosome-like fragments were generated by sonicating FDC from aged mice and tested for their ability to induce an anamnestic response. This procedure restored the ability of antigen retained on FDC from aged mice to induce a normal anamnestic response. These data support the concept that the inability to form and disperse iccosomes contributes to the impaired ability of aged mice to mount anamnestic antibody responses and provides further support for the role of iccosomes in anamnestic responses.

Aging↗

Kinetics of germinal center development in lymph nodes of young and aging immune mice.

Recent findings imply that germinal center paucity in old mice, at least in part, results from a defect in the mechanisms responsible for the transport of antigens to lymphoid nodules (follicles) and the consequent impairment of the antigen retaining reticulum (ARR) of follicular dendritic cells (FDCs). The present objective was to observe the kinetics of lymph node germinal center development in old mice having antigen transport and ARR deficits. Germinal center development was monitored in popliteal (PLN) and axillary (AXLN) lymph nodes of 6-8 wk and 23-mo-old horseradish peroxidase (HRP) immune C57BL/6 mice. Using the selective binding of germinal center B cells for peanut agglutinin (PNA), germinal centers were identified in serial vibratome sections following histochemical labeling with PNA-peroxidase conjugates at times 0, 15 min, 1, 3, 5, and 10 days after footpad challenge with 8 micrograms HRP. To follow the fate of preexisting (environmental antigen-induced) germinal centers and the development of de novo (HRP-induced) germinal centers, it was essential to distinguish between these germinal centers. Accordingly, PNA positive germinal centers associated with HRP-retaining (peroxidase positive) ARR were identified as de novo germinal centers and germinal centers not associated with a peroxidase positive ARR were classified as preexisting germinal centers. Kinetic analysis of PNA positive germinal centers showed the following: 1) Preexisting, environmentally-induced germinal centers dissociated and disappeared by day 3 as indicated by a decline in their numbers after antigen injection: the process of germinal center dissociation remained unaffected by aging. 2) The latency of de novo germinal center appearance was approximately equal in duration (approximately 3 days) to the disappearance of pre-existing germinal centers. 3) The number and size of de novo HRP-induced germinal centers increased through the experimental period in young lymph nodes, but in old mice these parameters were depressed, resulting in a significant germinal center deficit. 4) The ratio of HRP-retaining ARR to de novo induced germinal centers was 1:1 in young and responder old mice. This ratio was not affected by aging. This finding favored the concept that antigen retention in ARR is a requirement of germinal center development. The observations supported our hypothesis that germinal center development, at least in part, depends on a normal antigen transport by showing that in aged mice with defective antigen transport-related ARR and iccosome deficits there is an impaired development of germinal centers.

Aging↗

Germinal center B cells and mixed leukocyte reactions.

The present study was undertaken to determine if germinal center (GC) B cells are sufficiently activated to stimulate mixed leukocyte reactions (MLR). Percoll density fractionation and a panning technique with peanut agglutinin (PNA) were used to isolate GC B cells from the lymph nodes of immune mice. The GC B cells were treated with mitomycin C or irradiation and used to stimulate allogeneic or syngeneic splenic T cells in the MLR. Controls included high-density (HD) B cells prepared from spleens of the same mice and HD B cells activated with lipopolysaccharide (LPS) and dextran sulfate. GC B cells bound high amount sof PNA (i.e., PNAhi). Similarly, the LPS-dextran sulfate-activated B cells were PNAhi. Treatment with neuraminidase rendered the PNAlo HD B cells PNAhi. GC B cells and the LPS-dextran sulfate-activated HD B cells stimulated a potent MLR, while the untreated HD B cells did not. However, following neuraminidase treatment, the resulting PNAhi HD B cell population was able to induce an MLR. The PNA marker appeared to be an indicator of stimulatory activity, but incubating the cells with PNA to bind the cell surface ligand did not interfere with the MLR. GC B cells were also capable of stimulating a syngeneic MLR in most experiments although this was not consistently obtained. It appears that germinal centers represent a unique in vivo microenvironment that provides the necessary signals for B cells to become highly effective antigen-presenting cells.

Animals↗

The alternative antigen pathway.

In this article, John Tew, Marie Kosco and Andras Szakal describe progress in deciphering a novel antigen pathway that represents an alternative to classical clearance by phagocytes. Upon booster immunization, immune complexes form rapidly and these complexes are handled not only by phagocytes but also by a series of non-phagocytic cells in a distinct pathway. Ultimately, immunogen in this alternative pathway is delivered to antigen-specific B cells in lymphoid nodules which process and present antigen to T cells. B cells obtain immunogen from follicular dendritic cells in the form of immune complex coated bodies or 'iccosomes'. Antigen-specific B cells appear to find these newly discovered iccosomes especially palatable.

Animals↗

Antibody-forming cell induction during an early phase of germinal centre development and its delay with ageing.

The present study was initiated to determine if an early phase of germinal centre (GC) development is associated with the generation of antibody-forming cells (AFC). Germinal centres in draining lymph nodes from immune mice were examined histochemically after secondary immunization for the presence of AFC at both the light and electron microscopic levels. Additionally, peanut agglutinin (PNA) high (Hi) GC B cells were isolated, placed in cell culture and specific antibody production was monitored at successive intervals. Electron microscopy showed that plasma cells in all stages of differentiation were present within GC at 3-5 days and to a lesser extent at 7 days following antigenic challenge. Furthermore, PNAHi GC B cells obtained between Days 3 and 5 spontaneously produced specific IgG when placed in culture. Germinal centre B cells isolated either before or after this period did not produce antibody without the addition of T-cell cytokines. Induction of AFC in GC occurred at the time when GC B cells acquire follicular dendritic cell (FDC)-derived, immune complex-coated bodies (iccosomes) and process and present this antigen to helper T cells. This suggested a causal relationship between iccosome release and AFC induction. Support for this was obtained by examination of AFC induction in aged mice where iccosome release has not been observed. Peanut agglutinin-positive GC B cells isolated from aged mice on Days 3-5 after antigen challenge failed to spontaneously produce specific antibody. Collectively, these data show that GC development 3-5 days after booster immunization results in AFC generation and suggests a role for FDC iccosomes in their induction.

Aging↗

A novel in vivo follicular dendritic cell-dependent iccosome-mediated mechanism for delivery of antigen to antigen-processing cells.

Recent scanning electron microscopic studies on isolated follicular dendritic cells (FDC) showed that dendrites of certain FDC were "beaded," i.e., consisting of a series of interconnected immune complex coated bodies (termed "iccosomes," measuring 0.3 to 0.7 micron diameter). In vitro these iccosomes detach from one another with ease. The major objectives herein were to establish whether these structures can be detected in sections and whether iccosomes serve to disseminate antigen in vivo. Beginning at day 1, the time point used for isolating beaded FDC, the popliteal lymph nodes of immune C3H mice were studied with light and transmission electron microscopy for 2 wk (i.e., at days 1, 3, 5, 8, and 14) after hind footpad injection of the histochemically detectable antigen, horseradish peroxidase (HRP). Iccosomes (0.25 to 0.38 micron diameter), contoured by a peroxidase (PO)-positive coat of HRP-anti-HRP complexes, were first detected by transmission electron microscopy at day 1 adjacent to cell bodies of certain FDC. Within their limiting membrane they contained flocculent material that was PO positive. At day 3 by light microscopy, germinal centers were seen enlarged and the antigen-retaining reticulum, composed of antigen-bearing FDC, appeared diffuse. This coincided with the transmission electron microscopic visualization of a dispersed state of iccosomes among the follicular lymphocytes. At that time iccosomes were seen attached to the surface of lymphocytes via PO-positive immune complexes and were surrounded by microvillous processes of these cells. Germinal center lymphocytes and tingible body macrophages both responded to contact with iccosomes by endocytosis. Antigen-containing tingible body macrophage were most conspicuous by light microscopy at day 5, when transmission electron microscopy showed that the majority of germinal center lymphocytes contained endocytosed HRP in secondary lysosome-like granules associated with the Golgi apparatus. The number of dispersed iccosomes was markedly reduced by day 5. In controls injected with HSA, a PO-negative antigen, lymphocytes and tingible body macrophages were PO-negative. The presence of antigen in both cell types was confirmed through the use of a gold-conjugated antigen (goat IgG). Simultaneous immunoperoxidase labeling of the same tissues with anti-Ia showed the gold conjugate containing B cells to be Ia+. Antigen-positive B cells and tingible body macrophages were greatly reduced in numbers by day 14, suggesting the intracellular fragmentation of the antigen.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

In vivo obtained antigen presented by germinal center B cells to T cells in vitro.

Shortly after secondary immunization germinal center (GC) B cells obtain antigen from follicular dendritic cells (FDC) in the form of immune complexes. This antigen appears to be degraded by the GC B cells and may be processed for presentation to T cells. The present study was undertaken to determine whether GC B cells can process and present antigen obtained from FDC in vivo to appropriate T cells in vitro. GC B cells were isolated from immune mice with the use of Percoll density separation followed by a panning procedure which utilizes the ability of the plant lectin, peanut agglutinin (PNA), to selectively bind to GC B cells. The enriched GC B cells were approximately 80% highly positive for PNA, 97% positive for Ia and surface IgM, but less than 0.01% positive for Thy-1.2 or esterase. In some experiments, this population was further purified to near 100% highly PNA-positive cells with the use of fluoresceinated PNA and a fluorescence-activated cell sorter. Cell sorting analysis indicated that the antigen (125I-labeled ovalbumin (OVA)) was restricted to the highly PNA-positive cell fraction. The capacity of these highly PNA-positive B cells to present antigen was assessed by monitoring interleukin 2 (IL-2) production by the OVA-specific T cell hybridoma, 3DO-54.8. GC B cells obtained from mice 3 wk or more after secondary immunization did not elicit IL-2 production in the absence of added OVA. However, GC B cells isolated as early as 1 day and for over 1 wk after a challenge with OVA, were able to stimulate high levels of IL-2 production, in the absence of adding OVA to the cell cultures. This response was maximal on day 5 and corresponded precisely with the kinetics of the ultrastructural studies which document the uptake of antigen by GC B cells in vivo. The FDC-derived antigen was remarkably immunogenic when compared with exogenous antigen. These findings demonstrated that antigen obtained in vivo by GC B cells could be processed and presented to T cells. In vivo, GC B cells may induce the T cell help needed for the germinal center reaction, generate B memory cells, and help induce the high titers of antibody associated with the secondary antibody response.

Animals↗