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Biomedical subjects

C H Packman

Publications and source records attributed to C H Packman.

42 records · Page 3Linked to original sources

Attachment of particle-bound IgG and complement to human neutrophils.

The attachment of particle-bound IgG in a nonphagocytic system stimulates formation of a microfilament-rich, organelle-poor zone in the subjacent cytoplasm of human neutrophils. The attachment site is characterized by ruffling and invagination of the neutrophil membrane. Both IgG attachment and formation of the organelle-poor zone are inhibited by the microfilament inhibitor cytochalasin-B, but not by inhibitors of microtubules, such as colchicine or vinca alkaloids. In contrast, attachment of particle-bound complement is not inhibited by cytochalasin-B in doses known to disrupt actin filaments. There is no discernable change in the subjacent cytoplasm of the neutrophil in response to complement and the membrane attachment site is smooth, without ruffling or invagination. These studies disclose that both IgG-mediated attachment to neutrophils and its sequel, peripheral cytoplasmic reorganization, are mediated by cytochalasin-sensitive structures, possibly actin. Complement-mediated attachment to neutrophils is insensitive to high doses of cytochalasin, suggesting that actin integrity is not required.

Animals↗

Complement lysis of human erythrocytes. Differeing susceptibility of two types of paroxysmal nocturnal hemoglobinuria cells to C5b-9.

Although enhanced sensitivity of erythrocytes to complement-mediated lysis is a hallmark of paroxysmal nocturnal hemoglobinuria (PNH), subpopulations of erythrocytes in such patients vary significantly in this respect. One PNH erythrocyte subpopulation (termed type III) comprises exquisitely sensitive cells, whereas type II PNH erythrocytes are intermediate in complement sensitivity between PNH type III and normal human erythrocytes. Differences in the action of the terminal complement components that would account for the differing lytic behavior of types II and III PNH erythrocytes have been proposed but not directly demonstrated. The present studies, making use of carefully selected cases with pure populations of type II or type III erythrocytes, confirm a prior observation that antibody-coated PNH erythrocytes of both types II and III display comparably supranormal C3 binding in whole human serum. However, when lysis was induced by the isolated C5b-9 membrane attack mechanism, bypassing the requirement for C3 binding, only type III PNH cells exhibited greater than normal lysis. This finding suggests that type III PNH erythrocytes have an additional membrane abnormality not present in type II cells. Thus, the differing lytic behavior of these two cell types in whole serum may reflect the additive effects on type III cells of both exaggerated C3 binding and enhanced sensitivity to C5b-9, whereas the more moderate lysis of type II PNH cells may be determined mainly or entirely by the earlier-acting mechanism producing augmented C3 binding. The failure of guinea pig C8 and C9, as opposed to human C8 and C9, to reveal the true lytic sensitivity of PNH-III E in our earlier study is illustrated, and its implications briefly discussed.

Animals↗

Veno-occlusive disease of the liver after chemotherapy of acute leukemia. Report of two cases.

Two adult male patients with acute leukemia developed a fatal Budd-Chiari-like illness while receiving 6-thioguanine. Both had previously received cytosine arabinoside. Antemortem and postmortem specimens of liver showed changes characteristic of toxic veno-occlusive disease. Similar findings have been described after ingestion of certain plant alkaloids and after treatment with arsphenamine, urethane, and ionizing radiation to the liver. We are unaware of any published reports of veno-occlusive disease of the liver after treatment with either 6-thioguanine or cytosine arabinoside. Although 6-thioguanine was most likely responsible for this syndrome, it is not possible to eliminate cytosine arabinoside as the causative agent. Since both drugs are occasionally used for benign conditions, physicians should be aware of this possible complication.

Acute Disease↗

Complement-induced ultrastructural membrane lesions: requirement for terminal components.

The step in the complement (C) sequence at which 8- to 11-nm ring-shaped lesions are formed on antibody-coated erythrocytes (EA) has remained controversial. Some workers have concluded that these lesions appear at the C5 step and are not ultrastructural correlates of lysis; others hold that these lesions are formed only after the action of C8 and C9 in association with lysis. We have re-examined this problem by using sheep EA and human sera genetically lacking C5, C6, C7, or C8. Electron micrographs of negatively stained membranes (x 220,000) were read in blind fashion and the results correlated with 125I-C5 binding. Rare structures resemblind C-induced ring lesions were found on EA exposed to C5-deficient (C5D), C6D, C7D and C8D sera or to heated normal serum, with no significant differences among these sera (lesion density 0 to 0.26/mum2). Fresh normal serum (NHS) produced 140 to 220 ring lesions/mum2. C5 binding to EA in C8D serum was 60% of that observed in an NHS control; in C6D and C7D sera C5 binding was 4 to 11% of the normal value. Iodine treatment of sera (to enhance C5 uptake by C2 oxidation) increased C5 binding in C6D serum to 40 to 65% of that seen in native NHS; in iodine-treated C7D and C8D sera C5 binding was 250 and 440%, respectively, of the native NHS value. No increase in ring lesions was observed, however, except in the iodine-treated NHS. Thus, in whole serum, C5 binding is not sufficient to produce ultrastructural membrane rings in the absence of later-acting C components, at least through C8. The formation of ring lesions appears to have C requirements similar to those necessary for lysis.

Binding Sites↗