The presence of voltage-dependent ion channels (particularly Ca2+ channels) on the surface of 'non excitable' cells such as human basophils is a matter of debate. Indeed, in basophils, Ca2+ entry or mobilization is not sufficient by itself to trigger secretion, although enhanced cytosolic Ca2+ concentration increases it. In order to address this question, we used a two-signal model and we report here experiments which suggest the presence of voltage-dependent structures directly or indirectly linked to membrane Ca2+ pathways. Indeed, it is known that, in the presence of PMA at threshold concentration (1st signal), elevation of cytosolic Ca2+ (2nd signal) induces histamine release. We observed that a depolarizing external solution (high K+) induced a Ca2+-dependent release of histamine from PMA/treated human basophils. High K+ alone did not induce histamine release.Although the voltage-sensitive component and the physiological relevance of this mechanism remain to be defined, these results suggest that this voltage-dependent Ca2+ influx in the human basophil could contribute to the up-regulation of histamine release.
The release of mediators from human basophils is strongly enhanced by IL-3. However, the signalling pathways of IL-3 are poorly defined in these cells. Since external Ca2+ and Na+ play important regulating roles in histamine release, the possibility that these cations could be involved in the potentiation by IL-3 of the anti-IgE-induced histamine release from human basophils was considered, and it was observed that: (i) IL-3 dramatically decreased the external Ca2+ requirement for IgE-mediated histamine release. However, histamine release from IL-3-treated basophils became only partially independent of external Ca2+, since addition of EGTA in the external medium abolished the effect of IL-3; (ii) decreasing Na+ influx by lowering external Na+ concentration in isosmotic medium inhibited the potentiating effect of IL-3 on IgE-mediated release; (iii) amiloride, an inhibitor of Na+/Ca2+ and Na+/H+ exchanges, and its derivative, benzamil, more specific for Na+/Ca2+ exchanges, inhibited the release potentiated by IL-3. In contrast, the amiloride derivative 5-(N, N-dimethyl)-amiloride, more specific for Na+/H+ exchanges, slightly increased the IL-3-enhanced release. Thus, the decreased requirement for external Ca2+ and the dependence on external Na+, taken with the effect of the Na+/Ca2+ exchange inhibitors, suggest that Na+/Ca2+ exchanges are involved in the IL-3-induced enhancement of IgE-mediated human basophil histamine-release.
We recently observed that external Na+ inhibited the IgE-dependent human basophil histamine release (HR) in normal subjects. In this article we report differences in the Na+ effect on basophil HR between normal subjects (n = 16) and age matched patients with allergic rhinitis (AR) (n = 18). As expected, in vitro anti-IgE-stimulated basophils from the group with AR released greater amounts of histamine than basophils from the normal group. However, removal of external Na+ (and replacement by N-methyl-D-glucamine) abolished this difference between the two groups. HR in the normal group increased to the same high level as that of the group with AR. By contrast, the release of histamine in the group with AR was not further increased by Na+ removal. Although high releasers were more frequent in the group with AR, the absence of effect after Na+ removal was not due to the high basal release level (in the presence of Na+) because no effect after Na+ removal was also observed with medium releasers. These results strongly suggest that increased basophil HR in populations with AR, and possibly in other allergic populations, is linked to a defect in the inhibitory effect of Na+.
Summary— In previous studies we observed that in vitro histamine release from human basophils could be dissociated from the loss of affinity of basophil granules for a cationic dye, toluidine blue. In the present study we further explored the intracellular signals leading to the decrease in toluidine blue positive basophil (TB+) numbers, with or without histamine release. Since Ca 2+ mobilization is a crucial event in secretion and particularly in histamine release, we studied the role of Ca 2+ in histamine release as compared to TB+ decrease. In the presence of external Ca 2+ (2 mM): i) Ca 2+ channel antagonists verapamil and nifedipine up to 10 μM were without effect on IgE‐mediated histamine release and TB+ decrease; ii) loading of the leucocytes with Quin2 or preincubation with TMP‐8, an internal Ca 2+ antagonist, significantly inhibited the release of histamine and the decrease of TB+ basophils. In the absence of added external Ca 2+ : i) histamine release was abolished whereas the decrease of TB+ was not modified, even in the presence of EGTA; ii) the decrease of TB+ could be inhibited by prolonged EGTA preincubation, by Quin2 loading and incubation with TMB‐8. We conclude that histamine release requires both external Ca 2+ influx and mobilization of internal Ca 2+ . In contrast, no influx of external Ca 2+ is required for TB+ decrease in which, however, internal Ca 2+ mobilization appears to play an important role.
Na+ and K+ are the major extra- and intracellular cations, respectively. We have thus studied the role of these ions on human basophil histamine release by modifying their transmembrane gradients or by increasing membrane ion fluxes using ionophores. 1) When external Na+ (reduced to 4 mM) was replaced by the nonpermeating Na+ substitute N-methyl-D-glucamine, the release of histamine was enhanced in 2 mM Ca2+ (from 37.5 +/- 8.0% in 140 mM Na+ to 68.5 +/- 9.1% in low Na+) and became possible in the presence of low Ca2+ (at 1 microM Ca2+: from 0.6 +/- 0.7% in 140 mM Na+ to 36.2 +/- 8.0% in low Na+); moreover, in low Na+, the release of histamine became partly independent on Ca2+ influx. 2) Increasing the Na+ influx with the cation channel-forming gramicidin D inhibited the release of histamine by 33.2 +/- 13.6% (n = 6) in an external Na(+)-dependent manner. 3) Decreasing K+ efflux using K+ channel blockers (4-aminopyridine, quinine, sparteine) inhibited histamine release in a dose-response manner. 4) The K+ ionophore valinomycin, which increases K+ efflux, slightly enhanced IgE-mediated histamine release when used alone, whereas it potentiated the release of histamine from leukocytes previously treated with 4-aminopyridine by 57.0 +/- 18.6% (n = 7). 5) Decreasing K+ efflux by increasing external K+ inhibited IgE-mediated release in a similar manner as Na+ did. The inhibitory effects of Na+ and high K+ were not additive, thus suggesting that both cations inhibited the release by a common mechanism. In conclusion 1) our data evidence that histamine release from human basophils is inhibited by Na+ influx and potentiated by K+ efflux; 2) they suggest that K+ channels are present on the basophil membrane and that Na+ and K+ fluxes act on histamine release most probably via modulation of membrane potential.
Human basophil activation was demonstrated by histamine release (HR) and by the decrease of the toluidine blue-positive basophils (TB+). In four experimental systems, TB+ number decreased in the absence of HR (1) in basophils from atopic subjects stimulated by allergen concentrations below the threshold for HR, (2) in basophils sensitized by anti-2,4-dinitrophenyl IgE stimulated by noncovalently linked 2,4-dinitrobenzene sulfonic acid-human serum albumin (also, the threshold for decrease of TB+ required lower concentrations of sensitizing anti-2,4-dinitrophenyl IgE than for HR), (3) in low Ca++ medium, and (4) in the presence of the Na+/H+ exchanger, monensin. These results suggest that (1) there is a lower threshold for TB+ decrease than for HR in allergen concentration, number of membrane IgE molecules, and number of IgE cross-linkings; moreover, external Ca++ requirement is lower for decrease of TB+ than for HR and (2) TB+ decrease reflects either granule exocytosis or, in the absence of HR, biochemical changes (most probably cation exchanges) altering the interaction of the basic dye with the granules. Thus, monitoring decrease in TB+ allows detection of basophil activation in the absence of HR.
The role of IgG4 antibodies in allergic disorders is suspected. Yet, their presence on human basophil membrane has not been demonstrated and the mechanism of the degranulation induced by anti-IgG4 antibodies remains unclear. As previously reported, we observed that monoclonal anti-IgG4 (10 to 100 micrograms/ml) induced histamine release in the presence of D2O from leukocytes of normal and atopic subjects. The release was accompanied by a decrease of the number of toluidine blue-positive basophils (TB+). Histamine release and TB+ decrease were also observed with lower concentrations of anti-IgG4 (1 to 100 pg/ml). Since basophil activation assessed by TB+ decrease was more sensitive than histamine release, we thus used the former method to further study the mechanisms of the anti-IgG4- vs anti-IgE-induced basophil activation. Basophil activation by anti-IgG4 at 1 to 100 pg/ml, but not by anti-IgG4 at 10 to 100 micrograms/ml or anti-IgE, required the presence of polymorphonuclear cells. Furthermore, anti-IgG4-stimulated purified eosinophils, but not neutrophils, released basophil-activating factors identified as cationic proteins from eosinophils. Thus, the human basophil can be activated by anti-IgG4 via two different mechanisms according to the antibody concentration. At high concentrations (10 to 100 micrograms/ml) basophil activation does not require the presence of polymorphonuclear cells whereas at lower concentrations (1 to 100 pg/ml) the presence of eosinophils is necessary. We propose that in the latter concentration range, basophil activation is a two-step process: 1) release by anti-IgG4 of eosinophil cationic proteins that 2) will, in turn, activate human basophils. This study lends support to the role of IgG4 and eosinophils in anaphylactic reactions.
Isolated perfused rat kidneys were passively sensitized by addition of either mouse ascitic fluid containing monoclonal IgE against dinitrophenol (DNP) or DNP-specific purified IgE. After washing the organ, defined doses of DNP-bovine serum albumin were given as bolus injection via the kidney artery. Antigen challenge of IgE-sensitized kidneys resulted in a dose-dependent increase of perfusion pressure starting with 5 micrograms antigen (2.46 +/- 0.2 mm Hg) and reaching a maximum at dose higher than 100 micrograms (10.3 +/- 1.6 mm Hg) (N = 4, means +/- 1 SD). A decrease of glomerular filtration rate was also observed which reached a plateau at 100 micrograms antigen (-68.5 +/- 2.9%) (N = 4). Regardless of the dose of antigen used, the urinary protein excretion markedly increased for the first five minutes following antigen injection and returned to basal values after 10 minutes. The total amounts of histamine, PGE2 and paf-acether (platelet-activating factor) released upon antigen challenge (1 mg) for 15 minutes reached maximal values of 405 +/- 21.1 ng, 286 +/- 19.4 pg and 12.3 +/- 3.2 ng (N = 5), respectively. None of these hemodynamic and biochemical effects were observed using IgG1 monoclonal antibodies or when the ascitic fluid containing monoclonal IgE used to sensitize the organ was heated at 56 degrees C for two hours. Thus, we have described a pure IgE-dependent rat kidney anaphylaxis. Antigen challenge markedly altered renal parameters and triggered the release of various mediators from the organ, suggesting that type I-hypersensitivity reactions may play a role in renal pathophysiology.