Fetal livers from inbred rat fetuses at 14 days' gestation were dispersed into a single-cell suspension by physical disruption and collagenase digestion. Pluripotent stem cells were characterized and partially purified by a combination of monoclonal antibodies. These included CD71 (anti-transferrin receptor, MRC-OX26, used for rosetting), Cdw90 (anti-Thy-1, MRC-OX7), and the newly described MRC-OX82 (reacting with myeloid cells in peritoneal exudate), employed in FACS sorting. Enrichment was monitored by long-term reconstitution of lethally irradiated congenic rats genetically distinguishable from the donor by an allelomorphic variant of the CD45 cell-surface antigen. At intervals from 3 months to 1 year, lymph-node cells and peritoneal exudate cells were biopsied for analysis by two-color flow cytometryNone color to determine donor origin, the other to identify Th cell
The transport of calcium ions (Ca(2+)) to the cytosol is essential for immunoreceptor signaling, regulating lymphocyte differentiation, activation, and effector function. Increases in cytosolic-free Ca(2+) concentrations are thought to be mediated through two interconnected and complementary mechanisms: the release of endoplasmic reticulum Ca(2+) "stores" and "store-operated" Ca(2+) entry via plasma membrane channels. However, the identity of molecular components conducting Ca(2+) currents within developing and mature T cells is unclear. Here, we have demonstrated that the L-type "voltage-dependent" Ca(2+) channel Ca(V)1.4 plays a cell-intrinsic role in the function, development, and survival of naive T cells. Plasma membrane Ca(V)1.4 was found to be essential for modulation of intracellular Ca(2+) stores and T cell receptor (TCR)-induced rises in cytosolic-free Ca(2+), impacting activation of Ras-extracellular signal-regulated kinase (ERK) and nuclear factor of activated T cells (NFAT) pathways. Collectively, these studies revealed that Ca(V)1.4 functions in controlling naive T cell homeostasis and antigen-driven T cell immune responses.
In this article, the formation of antibodies during enzyme replacement therapy (ERT) for lysosomal storage diseases (LSDs) is reviewed in the light of present-day immunological concepts of immunogenicity and tolerance. Except in Gaucher disease, anti-enzyme antibodies frequently form (mainly immunoglobulin G) in patients receiving ERT, though they tend to wane as treatment continues. If the therapeutic enzyme is inhibited by antibodies, no significant modification to treatment is normally warranted, in clear contrast to therapy of hemophilia with clotting factors. The main adverse consequences of ERT, observed in only some patients, are sporadic hypersensitivity reactions, which are likely to be humorally mediated. Some infusion-related reactions are probably due to antibodies. In order to minimize immunogenicity, infused enzymes should be deaggregated and administered at low doses. In addition, inadvertent exposure to co-stimuli that might activate antigen-specific T or B lymphocytes should be avoided. The presence of cross-reacting immunological material, such as in patients with low levels or missense mutations of a gene coding for a lysosomal enzyme, tends to correlate with immune tolerance to the administered enzyme. There is a need for reliable biomarkers for therapeutic efficacy: some directions for further exploration are suggested. In animal models of LSDs, gene therapy delivered via viral vectors can rectify the lysosomal defect, and regulatory T cells that suppress antibody formation can be induced. This is a promising strategy that warrants further investigation in patients with LSDs.
Ca2+, channels in the plasma membrane of T cells vitally influence Ca2+-dependent signals that lead ultimately to cytokine secretion, cellular proliferation and apoptosis. Conventional models depict the Ca2+ inrush across the T-cell membrane following T-cell receptor engagement as being due to Ca2+-release-activated Ca2+ (CRAC) channels. A poorly understood mechanism detects the lowered Ca2+ concentrations within intracellular stores that open CRAC channels. Mammalian homologs of the Drosophila transient receptor potential Ca2+ channels possibly help to gate the store-operated, Ca2+-borne CRAC current. In this article, we review evidence of a supplementary involvement of other Ca2+ channels, the opening of which does not necessarily reflect intracellular Ca2+-store depletion. We highlight a role for variants of L-type voltage-dependent Ca2+ channels in increasing intracellular Ca2+ concentrations during activation. For more-accurate modeling of lymphocyte activation and possible pharmacological interventions, future research should aim to identify physiologically relevant situations in which such channels help to shape the Ca2+ signal.
The gene activities in T lymphocytes that regulate immune responses are influenced by Ca2+ ([Ca2+]i). The intracellular calcium signals are highly heterogeneous and vitally important in determining the immune outcome. The signals in individual cells can be measured using fluorescence microscopy but to group the cells into classes with similar signal kinetics is currently laborious. Here, we demonstrate a method for the automated classification of the responses into four categories formerly identified by an expert's inspection. This method comprises characterising the response by a second-order model, performing frequency analysis, and using derived features as inputs to two multilayer perceptron neural networks (NNs). We compare the algorithm's performance on an example data set against the human classification: it was found to classify identically more than 70% of the data, despite small sample sizes in two categories and significant overlap between the other two classes. The group characterized by an oscillating signal showed the presence of a number of frequencies, which may be important in determining gene activation. A classification threshold enables the automatic identification of patterns with a low-classification certainty. Future refinement of the algorithm may allow the identification of more classes, which may be important in different immune responses associated with disease.
by F. Rosen and R. Geha, Garland 2002.
by Charles A. Janeway, Paul Travers, Mark Walport and Mark Shlomchik, Garland Publishing, 2001. £34.95 pbk (xviii + 732 pages) ISBN 0 4430 7098 9
Abstract General methods for separating subpopulations of cells involved in immune responses include those based on differences in cell density, surface adherence, and the presence or absence of characteristic cell surface molecules, especially those recognized by CD monoclonal antibodies. The choice of technique depends on the scale of the separation; the trade‐offs between starting fraction, purity and yield; and the sophistication and cost of reagents and apparatus. Licensing for clinical use may impose constraints on a method's suitability.
In contrast to excitable tissues where calcium channels are well characterized, the nature of the B lymphocyte calcium channel is unresolved. Here, we demonstrate by single cell analysis of freshly isolated rat B cells that the anti-immunoglobulin (Ig)-induced calcium influx takes place through a channel which shares pharmacologic and serologic properties with the L-type calcium channel found in excitable tissues. It is sensitive to the dihydropyridines nicardipine and Bay K 8644, to calciseptine, and to an anti-peptide antibody raised against the alpha1 subunit of the L-type calcium channel, but is voltage-insensitive. Anti-alpha1 and anti-alpha2 antibodies stain B but not T lymphocytes. Application of a cGMP agonist, measurement of cGMP levels in anti-Ig-stimulated B cells, and examining the effect of a guanylyl cyclase inhibitor on the anti-Ig response show that cGMP mediates the influx. This possibly involves a cGMP-dependent protein kinase. The anti-Ig-induced response is not abolished by prior treatment of B cells with a high dose of thapsigargin. These findings undermine the widely held belief of a categorical divide between excitable and non-excitable tissue calcium channels, demonstrate the limitations of the capacitative calcium influx theory, and point to a distinction between the calcium response mechanisms utilized by B and T lymphocytes.
Fetal livers from inbred rat fetuses at 14 days' gestation were dispersed into a single-cell suspension by physical disruption and collagenase digestion. Pluripotent stem cells were characterized and partially purified by a combination of monoclonal antibodies. These included CD71 (anti-transferrin receptor, MRC-OX26, used for resetting), Cdw90 (anti-Thy-1, MRC-OX7), and the newly described MRC-OX82 (reacting with myeloid cells in peritoneal exudate), employed in FAGS sorting. Enrichment was monitored by long-term reconstitution of lethally irradiated congenic rats genetically distinguishable from the donor by an allelomorphic variant of the CD45 cell-surface antigen. At intervals from 3 months to 1 year, lymph-node cells and peritoneal exudate cells were biopsied for analysis by two-color flow cytometry-one color to determine donor origin, the other to identify Th cell (CD4+), Tc cell (CD8+), B cell (sIg+ or CD45RC+), neutrophil (OX82+ or OX43-), and macrophage (OX43+) compartments. The degree of chimaerism was taken as the read out of stem-cell activity. No significant differentials between lymph-node and peritoneal exudate chimaerisms were detected in any of the recipients; therefore, the enrichment procedure revealed only pluripotent cells, not stem cells of restricted potency. All recovered stem-cell activity was in the OX26(CD71)-negative, OX7(CDw90)-positive OX82-positive fraction. In the optimum case, an enrichment of very roughly 200-fold in cell-for-cell activity was obtained.Rat bone-marrow colony-forming units in the spleen (CFUs-12) were found to lack the surface antigens recognized by the monoclonal antibodies CD53 (MRC-OX44), MRC-OX39, MRC-OX59, and 144.2.15. These would provide a strategy for their enrichment by depletion.
To gain insight into the clonal organization of lymphoid organs, we studied the distribution in situ of donor-derived cells in near-physiological chimeras. We introduced RT7b fetal liver cells into nonirradiated congenic RT7a neonatal rats. The chimerism 6-20 wk after injection ranged from 0.3 to 20%. The numbers of cell clones simultaneously contributing to cell generation in a particular histological feature were deduced from the variance in donor cell distribution. In bone marrow and thymus, donor-derived lymphoid cells were found scattered among host cells, indicating a high mobility of cells. In bone marrow, donor cells were evenly distributed over the entire marrow, even at low chimerism. This indicates that leukopoiesis is maintained by the proliferation of many clones. In the thymus, the various lobules showed different quantities of donor-derived lymphoid cells. Mathematical analysis of these differences indicated that 17-18 cell division cycles occur in the cortex. In spleen, the distribution of donor-derived cells over the germinal centers indicated that 5 d after antigenic stimulation, germinal centers develop oligoclonally. The main conclusions of this work are that (a) bone marrow and thymus are highly polyclonal; (b) 17-18 divisions occur between prothymocyte and mature T cell; and (c) lymphoid cells disperse rapidly while proliferating and differentiating.
Genetically marked thoracic duct B cell subpopulations rich in either IgD+ or IgD- B cells were transferred to non-irradiated, congenic rats in order to compare the capacities of IgD+ versus IgD- B cells to form germinal centers (GCs). This comparison was made quantitatively based on flow cytometric analyses of lymph node cells prepared from chimeric rats 7 days after s.c. immunization. Donor-origin and host-origin B cells were distinguished using anti-Igk antibodies, and GC B cells were distinguished from other B cells in suspension by their lack of labeling with the mAb HIS22. IgK+ HIS22- lymph node cells corresponded well to GC B cells: they contained many large cells, were IgM+ but mostly IgD-, expressed relatively lower levels of IgM than HIS22+ B cells, and increased in number and frequency in response to antigen. Results from flow cytometric analyses, corroborated by immunofluorescence histochemical studies, showed that cell-for-cell, IgD- B cells from GCs much more efficiently than IgD+ cells. B cell populations enriched for IgD- cells became relatively more distributed to GCs than to other lymph node B cell areas and gave rise to many more GC B cells of donor origin per transferred B cell than whole, unseparated thoracic duct B cells (for which greater than 97% were IgD+). IgD- B cells from rats primed deliberately with antigen also became relatively more distributed to GCs and gave rise to more GC B cells of donor origin than either IgD+ B cells from primed donors or IgD- B cells from unprimed donors.(ABSTRACT TRUNCATED AT 250 WORDS)
1. The effect of a range of fatty acids upon concanavalin A-stimulated [H-3]thymidine incorporation into rat lymphocytes was investigated.2. All fatty acids tested inhibited the response to mitogen but the extent of the inhibition was dependent upon the fatty acid concentration used, the time of addition of fatty acid and the duration of exposure of the cells to fatty acid.3. All fatty acids were inhibitory at concentrations of 50-mu-M or above; at lower concentrations some were inhibitory and some were stimulatory. Above 50-mu-M the inhibitory effect was concentration dependent; the greater the fatty acid concentration, the greater the inhibition.4. The longer the lymphocytes were exposed to the fatty acid the greater was the inhibitory effect. This was true if the fatty acids were added at the same time as the mitogenic stimulus or if they were added before or after the stimulus. Some fatty acids maintained their inhibitory effect when added 24 or 48 hr after the mitogenic stimulus.5. Generally unsaturated fatty acids were more inhibitory than saturated fatty acids; the greatest inhibition of proliferation was caused by eicosapentaenoate and arachidonate and the least inhibition by myristate and palmitate.6. Inhibition was greater in the absence of serum.7. Inhibition by unsaturated fatty acids could be partially or totally relieved by addition in combination with myristate or palmitate, suggesting that the inhibitory effect of fatty acids may be due to alteration of membrane fluidity caused by an imbalance of fatty acids presented to the cells.8. PGE2 levels were similar in the medium of cells grown in the presence of fatty acids with varying inhibitory effects, indicating that PGE2 production is not the sole mechanism of suppression of the proliferative response.9. Although the mechanism by which fatty acids exert their effect remains to be determined, these results indicate that lymphocyte proliferation and so an immune response could be influenced by dietary lipid manipulation.
Immigration of B lymphocytes into established germinal centers in the rat was studied by transferring genetically marked thoracic duct B cells to non‐irradiated congenic hosts at various times between 3 days before and 6 days after host immunization. Seven days after host immunization, the distribution of donor B cells to lymph node germinal centers (relative to their distribution to non‐germinal center lymph node areas) was measured by two‐color flow cytometry in which (a) donor and host B cells were distinguished by their Ig ϰ chain allotypes, and (b) germinal center B cells were distinguished by their lack of labeling with the monoclonal antibody HIS22. Thoracic duct B cells from long‐term antigen‐primed rats were found to immigrate into host germinal centers much better than B cells from unprimed donors. This effect was antigen specific: primed B cells only immigrated well into host germinal centers induced by the priming antigen. Although B cells localized in germinal centers most efficiently when injected before immunization, specifically primed donor B cells injected after immunization were still found to be at least as evenly distributed to germinal centers as to other lymph node areas, whereas unprimed B cells transferred after immunization localized poorly in host germinal centers. These findings are discussed in light of recent suggestions that memory B cell clones are maintained by continued antigenic stimulation within secondary lymphoid follicles.