Analysis of the colloid osmotic step of complement-mediated immune hemolysis.
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Biomedical subjects
Publications and source records attributed to T Borsos.
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The intermediate product EAC1-7 released hemoglobin when incubated with high concentrations of GPC8 in the absence of C9. The reaction failed to reach an end point within 8 hr at 37 degrees C, and analysis of the kinetics indicated that it did not conform to the one-hit theory of immune hemolysis, and was not, therefore, the result of C9 contamination of the C8 preparation. The release of 86Rb from labeled EAC1-7 incubated at 30 degrees C with limiting C8 and excess C9 was paralleled, within 5 to 10 min, by release of hemoglobin. In the absence of C9 and with higher concentrations of C8, 86Rb was released rapidly, but hemoglobin release was delayed for several hours. Addition of excess C9 to concentrations of C8, which did not alone cause 86Rb release, resulted in substantial release of the isotope. These observations indicate that C9 acts by producing a distinct lesion in the cell membrane rather than by accelerating the release of hemoglobin from the C8-initiated 86Rb-releasing lesions. It is concluded that 86Rb release cannot be used as a reliable indicator of cell lysis and that C8- and C8/C9-mediated hemolysis are the result of mechanistically different processes.
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Methods for preparing chicken erythrocytes (CE) with C7 bound to their surface were devised by using either the classical pathway (CEA1-7) or an activated 56hu reagent (CE567) derived from inulin-treated human serum. These intermediates were used to study the lysis of CE by functionally purified C8 and C9 isolated from guinea pig and human serum. The results indicated that GPC9 was less efficient in lysing CEA1-8 or CE5678 than HuC9. This finding was observed irrespective of the species of C8 used. Experiments designed to analyze this difference indicated that there were two functionally distinct forms of C5b-8 that were randomly distributed among the cells but differed in their ability to generate a C lesion depending on the species of C9 used to complete the reaction. The implications of these results on the mechanism of generation of C lesions are briefly discussed.
Oral tumors with associated cervical lymph node metastases developed after injection of tumor cells into buccal pads of inbred guinea pigs. Intralesional injection of living BCG or BCG cell walls (CW) caused regression of established tumors, prevented the development of cervical lymph node metastases and led to the development of host resistance to the growth of subsequent tumor transplant.
The interaction between the complement components in human serum and the dye, Cibacron Blue F3GA, immobilized on cross-linked agarose (Affi-Gel Blue) has been studied. All nine components of the classical complement pathway bound to the dye and could be recovered using a linear salt gradient. With the exception of C5 and C8, all the components were eluted over a narrow NaCl concentration range, with the following yields: C1, 17%; C2, 69%; C3, 92%; C4, 87%; C6, 105%; C7, 109%; C9, 128%. C5 and C8 eluted throughout the NaCl gradient with yields of 103% and 14%, respectively. Since all components could be eluted without substantial contamination by albumin or IgG, this procedure may prove valuable as an initial step in the purification of complement components. In addition, the ability of immobilized Cibacron Blue F3GA to physicallly remove complement components may prove useful for both the decomplementation of serum and in elucidating the role of complement in immunological reactions.
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Line-10 guinea pig hepatoma cells are normally resistant to killing by antibody plus GPC but they are susceptible to killing by antibody plus HuC. Pretreatment of the cells with selected proteolytic enzymes renders the cells susceptible to killing by antibody plus GPC, whereas pretreatment with polypeptide, catecholamine, or steroid hormones renders the cells more resistant to killing by antibody plus HuC. Hormone pretreated tumor cells incubated with proteolytic enzymes remained resistant to antibody-GPC-mediated killing. Enzyme-pretreated cells incubated with hormones were either sensitive or resistant to antibody-GPC-mediated killing depending on the enzyme used to pretreat the cells, the enzyme concentration, the hormone class, and the specificity of the antibody used to sensitize the cells. The enzyme pretreated cells were able to bind amounts of hormone sufficient to render the cells resistant to humoral immune killing. These results suggest that the hormones exert their effects on certain areas of the tumor cell membrane rather than having a generalized effect on the cells. It is postulated that proteins, along with complex lipids, participate in the mechanism whereby tumor cells resist humoral immune killing.
The inhibitory effects of 0.1 M EDTA on the lysis of E prepared by incubating EA with whole GPC was studied. At high end point lysis (greater than 70%) 0.1 M EDTA failed to prevent hemoglobin release whereas at lower end point (less than 60%) 0.1 M EDTA was effective. In all cases hemoglobin release was inhibited by 25% BSA. When E were prepared by incubating EAC1-8 with C9, similar results were obtained. In this system the difference in the ability of 0.1 M EDTA to inhibit hemoglobin release at high or low end point lysis could not be correlated with the low end point lysis could not be correlated with the number of lesions/cell but appeared to be related to the C9 to SAC1-8 ratio. With limiting SAC1-8 and excess C9, E were produced from which hemoglobin release could not be prevented by 0.1 M EDTA whereas at lower C9 to SAC1-8 ratios hemoglobin release was prevented by 0.1 M EDTA. These differences most probably reflect functionally different sized transmembrane channels that were produced at different C9 to SAC1-8 ratios.
We have previously shown that 0.1 M EDTA could be used to distinguish functionally different transmembrane channels produced during complement-(C) mediated hemolysis of E. In this paper we have studied the ability of sugars of varying Stokes' radii to prevent hemoglobin release from E intermediates whose lysis was inhibitable or not inhibitable by EDTA. On the basis of these experiments we propose that the inhibition of E transformation by high molarity EDTA occurs by virtue of the size of the EDTA molecule in solution. Studies on the effect of EDTA on red cell lysis induced by polyene antibiotics that form transmembrane channels of a defined size support this conclusion. The results of these experiments were interpreted to mean: 1) The EDTA inhibitable lesion of E has a smaller effective radius than the noninhibitable lesion; 2) the effective radius of the smallest lesion that yields a lytic site was less than 3.6 A; 3) the lesions produced in the red cell membrane by C are not uniform but vary in size depending on the C9 to SACl-8 ratio used to produce E.
The inhibitory effect of metal salts on the formation and transformation of E to ghosts was studied. Ferrous and ferric salts inhibited the binding of C9 to EAC1-8 cells but had no other inhibitory role in the reaction. Uranly, copper, and zinc salts inhibited the transformation of the EAC1-9inserted intermediate to E ghosts. This inhibition occurred at a stage prior to detectable damage as measured by 86Rb or hemoglobin release and at a step prior to that inhibitable by high molarity EDTA. Consequently a further step in the reaction sequence of E to ghosts was identified. The reaction sequence leading from EAC1-9 to ghosts can be summarized as follows: formula: (see text).
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Agents that increase (certain metabolic inhibitors, chemotherapeutic agents, and x-irradiation), decrease (hormones), or have no effect (hyperthermia) on the susceptibility of line-1 and line-10 guinea pig hepatoma cells to humoral immune attack were studied for their effects on the ability of these tumor cells to synthesize macromolecules. A correlation was found between the drug-induced increase in sensitivity of these cells to antibody-C mediated killing and the loss of their ability to incorporate fatty acids into complex cellular lipids. Similarly, the hormone-induced increase in resistance of the cells to killing was accompanied by an enhancement in complex lipid synthesis by these cells was also observed after the cells were exposed to physical means of insult (x-irradiation or hyperthermia). No correlation was found between the sensitivity of the cells to antibody-C mediated killing and their ability to synthesize DNA, RNA, protein, or complex carbohydrate, or their capacity for de novo lipid synthesis as measured by incorporation of acetate and glycerol into cellular macromolecules. The assembly of free fatty acids into complex lipid moieties is therefore proposed to be of fundamental importance for the ability of the tumor cells to resist humoral immune killing.