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A Gorter

Publications and source records attributed to A Gorter.

52 records · Page 3Linked to original sources

Clearance kinetics and tissue distribution of aggregated human serum IgA in rats.

In the present study the clearance kinetics and tissue distribution of human polyclonal heat-aggregated serum IgA (AIgA) of different sizes in rats was studied after intravenous administration of 125I-AIgA. The 125I-AIgA of different sizes disappeared from the circulation in a biphasic manner with an initial rapid half-life (T1/2) and a second slower T1/2. The first T1/2 was related to the size of the 125I-AIgA: high molecular weight (MW) 125I-AIgA was cleared much faster than 125I-AIgA with a low MW. Relatively more degradation products were observed in blood when high MW 125I-AIgA were injected as compared to low MW 125I-AIgA. The AIgA were mainly taken up by the liver. Eight minutes after injection of high MW 125I-AIgA, 90% of the injected dose was found in the liver, whereas less than 2% was detected in the spleen. Very little activity was detectable in other organs, such as lungs, heart and kidneys. In the present study 1-3% of the injected 125I-AIgA were found in the bile. Analysis of this material revealed that low MW 125I-AIgA were transported more efficiently to the bile than high MW 125I-AIgA. To obtain more insight into the receptors involved in the clearance of 125I-AIgA, rats were pretreated with ovalbumin or asialofetuin. The clearance of 125I-AIgA of different sizes was inhibited when rats were pretreated with asialofetuin. Pretreatment with ovalbumin had no effect on the clearance rates of 125I-AIgA. These results suggest a role for carbohydrate receptors, which recognize glycoprotein-containing galactose terminal residues on Kupffer cells, in the clearance of 125I-AIgA.

Animals↗

Complement-mediated enhancement of IgA-induced H2O2 release by human polymorphonuclear leucocytes.

In a previous study we have demonstrated that heat-killed Staphylococcus aureus opsonized with either purified human serum IgA or secretory IgA (sIgA) can induce a respiratory burst (measured as H2O2 release) in human polymorphonuclear leucocytes (PMN; Gorter et al., 1987). In the present study we have investigated whether opsonization of IgA-coated staphylococci with complement has an additional effect on the H2O2 release of PMN. It was demonstrated that staphylococci coated with IgA (or sIgA) and subsequently opsonized with complement induced at least a two-fold increase in the specific H2O2 release compared with bacteria coated with IgA (or sIgA) alone (P less than 0.05 and P less than 0.02, respectively). The co-operative effect of IgA and complement was also observed in the presence of 10 mM ethyleneglycoltetraacetic acid containing 5 mM MgCl2 (MgEGTA), suggesting that activation of the alternative pathway of complement is sufficient to exert this effect. Using D-deficient serum as a source of complement we could demonstrate that activation of the alternative pathway is essential for the co-operative effect of complement and IgA. The increase in specific H2O2 release caused by complement was found to be dependent on the amount of IgA initially used to opsonize the bacteria. Finally the co-operative effect of IgA and complement was not restricted to one IgA subclass, because an additional opsonization of S. aureus coated with sIgA1 or sIgA2 with complement resulted in both cases in a statistically significant enhanced specific H2O2 release by PMN (P less than 0.05).

Complement C3↗

Activation of complement by human serum IgA, secretory IgA and IgA1 fragments.

UNLABELLED: Activation of the complement (C) system by human IgA was studied. Both subclasses of IgA, IgA1 and IgA2, and secretory IgA were shown to activate C, as determined by deposition of C3 on glutaraldehyde-activated microwells coated with IgA. The activation of the C system occurred in the presence of MgEGTA and not in D-deficient serum. In addition to C3, deposition of properdin (P) but not of C4 was detected. These results indicate that C activation, as determined by measuring deposition of C3 and P, occurred by the alternative pathway (AP). The data further show that the major part of the hinge region, which is deleted in IgA2 as compared with IgA1 and which forms the major structural difference between the two subclasses, is not involved in C activation. Reduction and alkylation destroyed the ability of IgA to activate C, as has also been demonstrated for IgG. In order to define the C activating region of the IgA molecule, several fragments of IgA1 were tested. The four-chain molecules F(ab')2 and F(abc)2 were shown to activate the AP. No activation was observed with the two-chain fragments Fab and Fc. The Fc fragment of IgA also did not activate the CP, as does the Fc fragment of IgG. This indicates that activation of the AP of C by IgA is dependent on the presence of the F(ab')2 fragment. IN CONCLUSION: human IgA does activate C by the AP. This activation requires an intact F(ab')2 fragment.

Complement Activation↗

Binding and catabolism of aggregated immunoglobulins bearing C3b or iC3b by U937 cells.

Mononuclear cells play an important role in the elimination of immune complexes (IC). In the presence of complement (C) the binding and degradation of IC by mononuclear cells is enhanced at least two-fold. The enhancement of binding is caused by a synergistic interaction of the IC with cellular Fc and complement receptors (R). In the present study we have investigated the contribution of the complement receptors CR1 and CR3 of human monocyte cell line U937 on the complement-mediated binding and degradation of immune complexes and soluble aggregates of IgG (AIgG) bearing C3b or iC3b. It was found that deposition of C3b on AIgG enhanced the binding of AIgG to U937 cells at least two-fold. The C3b-mediated enhancement of binding was abolished by anti-CR1. iC3b-bound to AIgG also enhanced the binding of AIgG to the cells. This binding was only partially reduced by anti-CR3 antibodies, but the combination of anti-CR1 and anti-CR3 fully abolished the iC3b-mediated enhancement of binding. These results suggest that both CR1 and CR3 contribute to the complement-mediated binding and degradation of soluble IC by mononuclear phagocytes.

Antigen-Antibody Complex↗

Binding, internalization and degradation of soluble aggregates of human secretory IgA by resident rat peritoneal macrophages.

In the present study the in vitro binding, internalization and degradation of IgA immune complexes (IC) by phagocytes was studied. As a model for IgA IC, heat-aggregated human secretory IgA (AsIgA) was prepared and resident rat peritoneal macrophages (PM phi) were used as a source of phagocytes. First, binding of 125I-AsIgA to rat PM phi was investigated. Binding of 125I-AsIgA to PM phi at 4 degrees was saturable and reached plateau values after 2 hr. At 37 degrees, degradation of membrane-bound 125I-AsIgA into trichloroacetic acid (TCA)-soluble fragments occurred. Parallel experiments with unlabelled AsIgA and 125I-labelled anti-human IgA revealed that degradation of AsIgA was preceded by internalization of AsIgA. The specificity of binding of 125I-AsIgA to PM phi was investigated using human IgG, human serum IgA, human myeloma IgA1, human sIgA and the glycoproteins asialofetuin and ovalbumin. The binding of 125I-AsIgA to rat PM phi was inhibited in the presence of sIgA and asialofetuin. In contrast IgG and ovalbumin had no effect. These results suggest that receptors with a specificity for galactose on the rat PM phi are involved in the binding of AsIgA.

Animals↗

Binding of human IgA1 to rat peritoneal macrophages.

In the present study we have investigated whether bovine erythrocytes (Eb) specifically sensitized with human polyclonal IgA1 (Eb-IgA1) are able to bind to resident adherent rat peritoneal cells (PM phi). Rat PM phi formed rosettes with Eb-IgA1 at room temperature and at 37 degrees. The formation of these rosettes could be blocked completely by excess human serum IgA or myeloma IgA1. In contrast, human IgG or rat IgG did not inhibit the formation of rosettes, whereas human polymeric myeloma IgA2 only partially inhibited rosette formation. Complete inhibition of rosette formation was also induced by rat monomeric and polymeric myeloma IgA, suggesting species interchangeability. Furthermore, rosette formation could be completely blocked in the presence of excess asialofetuin or D-galactose, while excess ovalbumin or D-mannose had no effect. These results suggest that the oligosaccharides in the hinge region of human IgA1 are involved in the binding of Eb-IgA1 to rat PM phi.

Animals↗

Activation of the alternative pathway of complement by human serum IgA.

In order to study the activation of complement by soluble aggregates of human polyclonal serum IgA, lysis of sheep erythrocytes (E) coated with several IgA preparations was used as a model. A complement nonactivating monoclonal mouse IgG1 against IgA was used to coat the cells. IgA, isolated from normal human serum, was aggregated by either N-succinimidyl 3-(2-pyridyldithio)propionate (SPDP), glutaraldehyde, carbodiimide or heating. Depending on the size of the aggregates, and on the method of aggregation, E coated with aggregated IgA (E gamma 1.AIgA) could be lysed. The alternative pathway of complement appeared to mediate the lysis because the latter was observed in the presence of EGTA containing 5 mM Mg2+ (MgEGTA) and properdin (P) was deposited on the cells. Furthermore, no lysis was observed in C3-deficient serum. In the absence of AIgA the cells were not lysed, and no P deposition was observed. In another set of experiments E gamma 1.AIgA were first reacted with purified C3, B, D and P for 30 min at 30 degrees C, and subsequently in rat serum EDTA at 37 degrees C. Lysis occurred when E gamma 1.AIgA were prepared using SPDP-, glutaraldehyde- or carbodiimide-AIgA. Incubation of 100 micrograms/ml SPDP-AIgA with normal human serum for 30 min at 37 degrees C in the presence or absence of MgEGTA also induced consumption of total complement. The other soluble AIgA preparations were less effective in activating complement. These results suggest that polymeric serum IgA is capable of activating the alternative pathway of complement.

Complement Activation↗

The IgA-binding lectin jacalin induces complement activation by inhibition of C-1-inactivator function.

Jacalin, a D-galactose-specific lectin from jackfruit, interacts with human IgA and one or two other serum proteins. Incubation of jacalin with fresh human serum was shown to result in activation of the complement system. Therefore the mechanism of complement activation by jacalin was studied. Jacalin was extracted from jackfruit seeds (crude preparation) and purified to homogeneity by affinity chromatography on IgA-Sepharose to yield a pure preparation of jacalin. Both crude and pure jacalin were able to activate complement, accompanied by conversion of C3. Consumption of C1, C4 and C-1-inactivator (C-1-In) indicated involvement of the classical pathway. Aggregated IgG (AIgG) caused partial (38%) and jacalin induced complete consumption of C1-In functional activity. It was found upon Ouchterlony analysis that jacalin forms a precipitation line with purified C-1-In. In addition binding of 125I-C-1-In to jacalin-Sepharose was observed, and this binding was inhibitable by either secretory IgA or D-galactose. Next to binding of jacalin to C-1-In, jacalin was also shown to inhibit the functional activity of C-1-In. These results indicate that jacalin induces complement activation by inhibition of C-1-In function and thereby facilitates the activation of precursor C1 in either the absence or presence of low amounts of C1 activators.

Complement C1 Inactivator Proteins↗

IgA- and secretory IgA-opsonized S. aureus induce a respiratory burst and phagocytosis by polymorphonuclear leucocytes.

The aim of the present study was to investigate whether corpuscular immune complexes containing human IgA were able to interact with human polymorphonuclear leucocytes (PMN). As a model for corpuscular IgA immune complexes (IgA IC), heat-killed Staphylococcus aureus (S. aureus) opsonized with either purified human serum IgA or purified secretory IgA (sIgA) isolated from human colostrum was used. In order to determine the capacity of IgA and sIgA to opsonize S. aureus the phagocytosis of these IgA IC by PMN was measured. S. aureus opsonized with IgA, sIgA, IgG, heat-inactivated serum or fresh serum was ingested by 23 +/- 8%; 28 +/- 9%; 39 +/- 7%; 31 +/- 10% and 78 +/- 10% of the PMN (S. aureus:PMN = 10:1, n = 4), respectively. These results were significantly different (P less than 0.05) from the percentage obtained with unopsonized S. aureus (9 +/- 3%), indicating that IgA and sIgA induce ingestion of S. aureus. The phagocytic index for PMN incubated with S. aureus opsonized with sIgA (231) was higher than for S. aureus opsonized with IgA (119), indicating a better uptake of S. aureus opsonized with sIgA in our system. Bacteria opsonized with either IgA or sIgA were also capable of triggering H2O2 release of PMN in a dose-dependent manner. The H2O2 release by PMN triggered with S. aureus opsonized with IgA could not be inhibited with a F(ab')2 anti-Fe gamma receptor monoclonal antibody, whereas the H2O2 release triggered with S. aureus opsonized with IgG was fully inhibited. Soluble heat-aggregated IgA (AIgA) also induced H2O2 release of PMN, suggesting that the IgA itself is essential for the induction of a respiratory burst.

Antigen-Antibody Complex↗

Antibody-mediated endocytosis of G250 tumor-associated antigen allows targeted gene transfer to human renal cell carcinoma in vitro.

Specific gene transfer into targeted tumor cells remains a critical issue for the development of systemic gene therapy protocols. With this end in view, we have tested the possibility of selectively directing genes to tumor cells through the recognition of tumor-associated antigens (TAA). This was approached in vitro on four human renal cell carcinoma (RCC) lines by means of the highly specific mouse G250 monoclonal antibody (mAb) chemically conjugated to a plasmid DNA conveying a reporter activity. This mAb directed to a TAA that is present on 95% of primary RCCs and on 60% of metastatic human RCCs was extensively characterized, including during clinical trials. Epifluorescence microscopy analysis indicated that upon specific binding to G250 TAA, G250 mAb alone or conjugated to plasmid DNA was internalized by an active endocytic process and colocalized with the transferrin concentrated in the late recycling perinuclear compartment. We also observed that both unconjugated G250 mAb or G250 mAb conjugated to plasmid DNA remained in the perinuclear region of the cells for > or = 20 hours and were not rapidly translocated to lysosomes or recycled to the plasma membrane. In contrast, unconjugated plasmid DNA was not internalized. After transfection of G250 TAA-positive RCC lines with G250 mAb conjugated to a plasmid cDNA encoding mouse interleukin-2, a significant and sustained production of mouse interleukin-2 protein was detected from days 5-15 and was abrogated by inhibiting the internalization process. Altogether, our data showed that endocytosis of G250 TAA should be the basis of gene transfer to RCC, suggesting that targeting of TAA capable of internalization may be the basis of new approaches for designing alternative cancer gene therapy procedures.

Animals↗