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Biomedical subjects

E R Podack

Publications and source records attributed to E R Podack.

At least 127 records · Page 7Linked to original sources

The membrane attack complex of complement: relation of C7 to the metastable membrane binding site of the intermediate complex C5b-7.

Isolated C7 (m.w. 120,000) in 1% deoxycholate (DOC) forms dimers with an apparent m.w. of 230,000 and a DOC-binding capacity of 82 mol per mol of dimer. Dimerization of C7 also occurs in the presence of DOC-phospholipid mixed micelles and eventuates in the insertion of C7 dimers into the lipid bilayer upon the removal of the detergent. C5b-7 complex formation in the fluid phase or on lipid vesicles likewise involves polymerization. C5b-7 sedimented with 17-40S, which suggests a dimeric to hexameric composition. In avidin-biotin binding experiments in which two differentially labeled forms of C5b,6 (biotinyl 125I-C5b,6, and 131I-C5b,6) were used in equimolar amounts to assemble C5b-7, more than 50% of the biotinyl 125I-C5b,6-containing complexes also contained 131I label; again suggesting that C5b-7 consisted of oligomers rather than monomers. The conformation of C7 in C5b-7 and in dimeric C7 appeared similar by the following criteria. On formation of C5b-7 from C5b,6 and C7, a 20% increase in beta-pleated sheet structure was observed by circular dichroism spectroscopy, and a similar change occurred on dimerization of isolated C7. Tryptic and thermolytic digests of C5b-7 and C7 dimers containing 125I-C7 were analyzed by autoradiography after SDS-polyacrylamide gel electrophoresis and were found to contain similar peptides that were distinct from those in the digests of monomeric C7. Direct evidence showing that the metastable membrane binding site of the C5b-7 complex resides in the C7 subunit was obtained by using the conjugates of C5b,6 and colloidal gold. Viewed in the electron microscope, these conjugates were aggregated upon the addition of isolated C7. In contrast, when conjugates of C7 and colloidal gold were treated with soluble C5b,6, no such aggregates occurred, but instead, individual C5b-7 complexes were observed arranged around single gold particles, resulting in star-like structures. The results strongly suggest that structures of C7 are responsible for the expression of the membrane binding site of metastable C5b-7.

Binding Sites↗

Self-association of the seventh component of human complement (C7): dimerization and polymerization.

Two association reactions of isolated C7 are described. The incubation of isolated C7 in 1% deoxycholate results in hemolytically inactive dimeric C7 that has a sedimentation coefficient of 7.3S. Dimeric C7 expressed hydrophobic domains that bound 41 +/- 4 mol deoxycholate per mol C7 and that aggregated upon removal of the detergent. The dimeric nature of the deoxycholate-treated C7 was demonstrated by analytical ultracentrifugation and by gel filtration, and yielded the following parameters: Mr = 230,000; diffusion coefficient, D = 2.9 X 10(-7) cm2/sec, and Stokes' radius, rH = 7.3 nm. Dimeric C7 exhibits an increased electrophoretic mobility and an increased beta-sheet structure, as compared with monomeric C7. Upon incubation with deoxycholate-phospholipid mixed micelles and removal of the detergent, the dimeric C7 became firmly associated with the lipid vesicles and was partially aggregated in the lipid bilayer. Trypsin treatment released approximately 50% of the protein material from the C7 vesicle complex. The other association reaction of isolated C7 occurs upon incubation with 1 M guanidine HC1; C7 forms soluble, linear protein polymers that have sedimentation coefficients ranging from 20 to 30S. The strands are 5 to 8 nm wide and vary in length between 20 to 100 nm. They tend not to aggregate, they are hemolytically inactive, and they exhibit increased beta-sheet structure, as compared with monomeric C7. They can be dissociated to hemolytically active monomers by exposure to 4 M guanidine HC1 and by subsequent 100-fold dilution with buffer. Isolated C5 or C6 did not exhibit any of these properties. The results suggest that the properties acquired by C7 in the hydrophilic-amphiphilic transition may be responsible for the expression of the membrane binding site of "metastable" C5b-7 and for the polymerization of C5b-7 within the target membrane.

Complement Activation↗

Cytolytic T cell granules. Isolation, structural, biochemical, and functional characterization.

The cytoplasmic, dense granules of cloned T cell lines were isolated and analyzed for their functional and biochemical properties. Isolated granules of approximately 90% homogeneity, in the presence of Ca, effect strong tumoricidal and hemolytic activity. Tumor cell lysis is complete in less than 30 min, with less than 2 micrograms granule protein corresponding to a killer/target ratio of 3-6:1 by assuming 50% yield for granule isolation. The granules contain a set of unique proteins, responsible for cytolytic activity and designated K1 to K6, in the molecular weight range of 14,000 to 75,000, as defined by sodium dodecyl sulfate (SDS) polyacrylamide slab gel analysis under reducing and nonreducing conditions. Cytolysis mediated by isolated granules is accompanied by the assembly of tubular complexes of 160 A (poly P1) and of approximately 70 A width (poly P2) that are inserted into membranes and form ultrastructural membrane lesions. As shown by immunofluorescence and by Percoll gradient fractionation, cytolytic granules are detected in cells of cytolytic T cell lineage and not in the T cell lymphomas E14 and S194. Poly perforin 1 assembled by CTLL-2 upon stimulation with concanavalin A (Con A) and phorbol myristate acetate (PMA) was isolated by detergent extraction and gel filtration. Poly P1 is composed of disulfide-linked subunits that, after reduction, co-migrate with certain granule proteins. The results are compatible with the hypothesis that the dense granules of cytolytic T cells contain cytolytic proteins that polymerize to disulfide-linked tubular poly perforins in a Ca-dependent reaction and may cause cytolysis by membrane insertion and transmembrane channel formation.

Animals↗

Molecular composition of the tubular structure of the membrane attack complex of complement.

The composition of the tubular structure of the membrane attack complex of complement (MAC) which migrates as a high molecular weight band (Mr approximately 1.2- 1.3 X 10(6) upon sodium dodecyl sulfate, polyacrylamide gel electrophoresis under reducing conditions was analyzed and compared to the high molecular weight band (Mr approximately 1.1 X 10(6] of tubular poly(C9). The sodium dodecyl sulfate-resistant band of the MAC, designated MAC-poly(C9), is composed of C6, C7, C8 alpha-gamma, and poly(C9), in approximate molar ratios of the protomers of 1:1:1:10-18. This conclusion is based 1) on the results of the incorporation of labeled proteins into MAC-poly(C9); 2) on the immunostaining of MAC-poly(C9) with anti-C6, anti-C7, anti-C8 alpha-gamma, and anti-C9 and its lack of immunostaining with anti-C5 and anti-C8 beta; and 3) on the dissociation of MAC-poly(C9) to 1 mol of C6, C7, C8 alpha-gamma and 10 to 18 mol of C9 upon treatment with 8 M guanidine isothiocyanate. Ultrastructurally the sodium dodecyl sulfate-resistant poly(C9) tubule and MAC-poly(C9) tubule are indistinguishable, suggesting a similar ultrastructure of the C6, C7, C8 alpha-gamma, and C9 subunits in the MAC-poly(C9) tubule. Further analogies among these four proteins are their tendency to form disulfide-linked dimers. It is concluded that the transmembrane channel of the MAC is formed by a tubule in which C6, C7, C8 alpha-gamma are copolymerized with poly(C9), whereas the C5b and C8 beta subunits are not part of the tubule structure and may form the 170-A long appendage of the MAC. This appendage is dissociated upon boiling in sodium dodecyl sulfate whereas the tubule remains stable.

Complement Membrane Attack Complex↗

Molecular weight of poly(C9). 12 to 18 C9 molecules form the transmembrane channel of complement.

Poly(C9), the tubular 27 S complex forming the transmembrane channel of the membrane attack complex of complement, was purified to homogeneity by gel filtration and sucrose density gradient ultracentrifugation. The molecular weight of poly(C9) was determined by two independent methods in addition to sodium dodecyl sulfate (SDS)-polyacrylamide gel electrophoresis. First, sedimentation equilibrium analysis using 0.2% SDS or 1% deoxycholate containing buffer as solvents yielded a point weight average molecular weight exclusive of bound detergent of 0.9 to 1.3 X 10(6) and a weight average molecular weight of all poly(C9) complexes of 1,050,000 +/- 40,000 (S.D.). SDS and deoxycholate binding to poly(C9) was measured in an air-driven ultracentrifuge and was determined to be 0.53 +/- 0.065 (S.D.) g of SDS and 0.26 +/- 0.015 (S.D.) g of deoxycholate/g of poly(C9), respectively. Second, the mass of 27 S poly(C9) devoid of bound detergent was determined by electron scattering of unstained specimens in the scanning transmission electron microscope. The molecular weight obtained by this method was 1,078,000 +/- 194,000. The inner diameter of poly(C9) tubules imaged in top view projections by negative staining electron microscopy varied between 9 and 12 mm. The accumulated data suggest a true heterogeneity of the molecular weight of poly(C9) due to polymers with varying protomer numbers. Using a mean value of 73,500 for the molecular weight of monomeric C9, the protomer number of poly(C9) tubules appear to vary between 12 and 18 C9 subunits. Approximately 50-75% of the tubules have 14 to 16 subunits as deduced from the mass distribution determined by electron scattering and from ring size measurements. It is suggested that poly(C9) tubules with various protomer numbers may arise due to limited flexibility in the C9-C9 interaction.

Complement C9↗

Membrane attack by complement.

Membrane attack by complement involves the self-assembly on membranes of five hydrophilic proteins (C5b, C6, C7, C8 and C9) to an amphiphilic tubular complex comprising approximately 20 subunits. The hydrophilic-amphiphilic transition of the precursor proteins is achieved by restricted unfolding and exposure of previously hidden hydrophobic domains. Restricted unfolding, in turn, is driven by high-affinity protein-protein interactions resulting in the formation of amphilic complexes. Circular polymerization of C9 to a tubular complex (poly C9) constitutes the molecular mechanism for transmembrane channel assembly and formation of ultrastructural membrane lesions.

Animals↗

Nucleotide sequence of cDNA and derived amino acid sequence of human complement component C9.

The nucleotide sequence coding for the ninth component of human complement (C9) has been determined and the corresponding amino acid sequence has been derived. A human liver cDNA library was screened by the colony-hybridization technique using two radiolabeled oligonucleotide probes that correspond to known regions of the C9 amino acid sequence. Two recombinant plasmids were isolated and their cDNA inserts were sequenced. The derived protein sequence consists of 537 amino acids in a single polypeptide chain. A profile of the hydropathic index versus sequence number indicates that the amino-terminal half of C9 is predominantly hydrophilic in character whereas the carboxyl-terminal section of this protein is more hydrophobic. The amphipathic organization of the primary structure of C9 is consistent with the known potential of polymerized C9 to penetrate lipid bilayers, causing the formation of transmembrane channels.

Amino Acid Sequence↗

Inhibition of C9 polymerization within the SC5b-9 complex of complement by S-protein.

The effect of S-protein on the polymerization of C9 during assembly of the C5b-9 complex was examined. Utilizing SDS polyacrylamide gradient slab gel electrophoresis, tubular poly C9 was quantitated as SDS resistant protein of 1.1 to 1.3 X 10(6) molecular weight. Poly C9 formation occurred upon incubation of purified C5b-6, C7, C8 and C9 at molar ratios 1:1:1:12. Addition of purified S-protein to the protein mixture or to preassembled C5b-7 or C5b-8 blocked formation of poly C9 in a dose dependent fashion and gave rise to SC5b-9. SC5b-9 assembled from purified proteins or in zymosan-activated serum was visualized in the electron microscope as a wedge-shaped structure of 350 to 400 A length and 30 to 250 A width which lacked tubular poly C9 seen in images of the membrane attack complex (MAC). Using biotinyl-S-protein and colloidal gold particles coated with avidin, S-protein was located at the wide end of the wedge-like SC5b-9 complex. It is concluded that S-protein has a dual function in SC5b-9 assembly. It blocks the membrane site of C5b-7 and it inhibits C9 polymerization by SC5b-8. Accordingly, the main structural difference between SC5b-9 and the MAC is the lack of tubular poly C9.

Binding Sites↗

Cytolysis by H-2-specific T killer cells. Assembly of tubular complexes on target membranes.

Cloned T killer cells derived from one-way mixed lymphocyte reactions were characterized with regard to their Lyt phenotype and specificity. Two clones of Lyt-1-2+ phenotype that recognized H-2Dd were selected and examined for their cytolytic function by negative staining and thin section electron microscopy. When incubated with the H-2d target S194, they assemble two types of tubular complexes, polyperforin 1 and 2. Both structures appear to arise by polymerization of precursors that may originate in dense granules and/or Golgi of T killer cells. Polyperforins appear to be associated with vesicles that are released during the lytic reaction and transferred to target membranes as shown by immunoelectron microscopy. Since there is a close correlation between target lysis and the appearance of polyperforins on target membranes, it is suggested that polyperforins take part in the cell-mediated killing reaction. Although polyperforins are different in size and several molecular properties from complement, there are striking similarities between these circular complexes and polyperforin (C9). It is therefore possible that they belong to a closely related family of cytolytic effector molecules.

Animals↗

The membrane attack complex of complement and its precursor proteins lack phospholipase activity.

The membrane attack complex of human complement and its highly purified precursor proteins have been analyzed for phospholipase activity. Using three different sensitive assays, phospholipase A1, A2, C or D activity could not be detected. Based on the sensitivity of the assays employed, these results indicate the complement-mediated membrane damage is not enhanced by covalent breakdown of membrane phospholipids, but is entirely caused by physical action of the membrane attack complex. The results also imply that the putative serine esterase sites of C6 and C7 are not acting on phospholipids.

Chromatography, Thin Layer↗

Activation of complement by serum-resistant Neisseria gonorrhoeae. Assembly of the membrane attack complex without subsequent cell death.

Interaction of the human complement system in normal human serum (NHS) with serum-resistant and -sensitive Neisseria gonorrhoeae was evaluated to better understand the mechanism of serum-resistance. Complement activity (CH50) was depleted from NHS in a dose-dependent fashion by both serum-resistant and -sensitive N. gonorrhoeae. No detectable CH50 remained in NHS incubated with 10(9) colony-forming units (CFU)/ml serum of either resistant or sensitive strains. When smaller numbers of bacteria were incubated with NHS, lesser, yet comparable, amounts of CH50 were depleted by both resistant and sensitive strains. Hemolytic C2 activity was diminished by 33% in the case of resistant N. gonorrhoeae (10(8) CFU/ml serum) and by 48% in the case of a sensitive strain. No detectable decreases in hemolytic C4 or C7 activities were found with either sensitive or resistant strains at this concentration. Both resistant and sensitive strains activated C1s in NHS. Resistant strains specifically activated 19-21% of radiolabeled C1s in NHS, whereas sensitive strains activated 18-32%. Both resistant and sensitive strains also activated C5 in NHS. In binding assays using radiolabeled C5 and C9 in NHS, resistant and sensitive strains bound comparable amounts of C5 and C9. The number of bound C5 and C9 molecules varied according to the number of bacteria or amount of serum used in the assay. The ratio of C9/C5 bound to a sensitive strain was 6.8, and to a resistant strain was 8.2, suggesting that C5 and C9 were incorporated into membrane attack complexes (MAC). Electron microscopic examination of resistant and sensitive strains incubated with NHS revealed that MAC is bound to the surfaces of the resistant strain as well as the sensitive strain.

Blood Bactericidal Activity↗

Formation of transmembrane tubules by spontaneous polymerization of the hydrophilic complement protein C9.

The ninth component of complement C9 can undergo circular polymerization in the fluid phase and on lipid membranes. The concomitant hydrophilic-amphiphilic transition is the result of a conformational reorganization of C9 and allows insertion of poly C9 into membranes in the form of a transmembrane protein channel. The ultrastructure of poly C9 resembles that of membrane lesions caused by complement.

Cell Membrane↗

Molecular organization of C9 within the membrane attack complex of complement. Induction of circular C9 polymerization by the C5b-8 assembly.

Evidence has been presented suggesting that during assembly of the membrane attack complex (MAC) of complement, the C5b-8 complex induces polymerization of C9. The C9 polymer was detected by sodium dodecyl sulfate (SDS) gel electrophoresis of MAC isolated from complement-lysed erythrocytes. It resembled the previously described polymerized C9 (poly C9) produced from isolated monomeric C9 by prolonged incubation at 37 degrees C in that it was resistant to dissociation by SDS and reducing agents and had an apparent molecular weight of approximately 1.1 million. The presence of poly C9 in the MAC was further supported by the expression of identical neoantigens by the MAC and poly C9 and by the high C9 content of the MAC relative to its other constituents. Isolated C8 in solution was found to have a single C9-binding site. In mixture, the two proteins formed a reversible equimolar complex that had a sedimentation coefficient of 10.5S. In contrast, a single, cell-bound C5b-8 complex was found to bind up to 12-15 C9 molecules and clusters of C5b- 8 bound 6-8 C9 molecules per C8 molecule. In either case, typical ultrastructural membrane lesions were observed, suggesting that the membrane lesion is identical with the tubular poly C9 consisting of 12-16 C9 molecules, and that the MAC can have either the composition (C5b-8)polyC9 or (CSb-8)(2)polyC9. When C9 input was restricted so that the molar C9/C8 ratio was less than or equal to 3, C9-induced aggregates of C5b-8 were observed but virtually no circular membrane lesions were found. We suggest, therefore, that C9, at low dosage, causes cross-linking of multiple C5b-8 complexes within the target membrane and that, at high dosage, C9 is polymerized by C5b-8 to form a transmembrane channel within the MAC assembly. It is primarily the C9 polymer that evokes the ultrastructural image of the MAC or of membrane lesions caused by complement.

Animals↗

Polymerization of the ninth component of complement (C9): formation of poly(C9) with a tubular ultrastructure resembling the membrane attack complex of complement.

The ninth component of complement (C9) has a marked propensity to polymerize. C9 polymers [poly(C9)] formed spontaneously in Veronal-buffered saline upon incubation of purified C9 for 64 hr at 37 degrees C or within 2 hr at 46--56 degrees C. Poly(C9) formed at 37 degrees C was visualized by electron microscopy as a tubular structure with an internal diameter of 110 A and a length of 160 A. Its ultrastructure suggested a dodecameric composition and resembled that of the membrane attack complex of complement. The wider end of the tubular structure was formed by an approximately 30-A-thick torus with inner and outer diameters of 110 A and 220 A, respectively. Because the dimensions of C9 within poly(C9) were 160 x 55 A (maximal) and 20 A (minimal) and because monomeric C9 has dimensions of approximately 80 x 55 A, it is proposed that monomeric C9 unfolds during polymerization into tubules. Polymerization also occurred upon treatment of C9 for 1 hr at 37 degrees C with 0.6 M guanidine . HCl, 0.1 M octyl glucoside, or 1.5% sodium deoxycholate. Guanidine . HCl-induced C9 polymers consisted of elongated highly curved strands 55--80 A wide, suggesting that these polymers were formed by globular C9 that had not unfolded.

Cell Membrane Permeability↗

Ultrastructure of the membrane attack complex of complement: detection of the tetramolecular C9-polymerizing complex C5b-8.

The ultrastructure of the membrane attack complex (MAC) of complement had been described as representing a hollow cylinder of defined dimensions that is composed of the proteins C5b, C6, C7, C8, and C9. After the characteristic cylindrical structure was identified as polymerized C9 [poly(C9)], the question arose as to the ultrastructural identity and topology of the C9-polymerizing complex C5b-8. An electron microscopic analysis of isolated MAC revealed an asymmetry of individual complexes with respect to their length. Whereas the length of one boundary (+/- SEM) was always 16 +/- 1 nm, the length of the other varied between 16 and 32 nm. In contrast, poly(C9), formed spontaneously from isolated C9, had a uniform tubule length (+/- SEM) of 16 +/- 1 nm. On examination of MAC-phospholipid vesicle complexes, an elongated structure was detected that was closely associated with the poly(C9) tubule and that extended 16-18 nm beyond the torus of the tubule and 28-30 nm above the membrane surface. The width of this structure varied depending on its two-dimensional projection in the electron microscope. By using biotinyl C5b-6 in the formation of the MAC and avidin-coated colloidal gold particles for the ultrastructural analysis, this heretofore unrecognized subunit of the MAC could be identified as the tetramolecular C5b-8 complex. Identification also was achieved by using anti-C5 Fab-coated colloidal gold particles. A similar elongated structure of 25 nm length (above the surface of the membrane) was observed on single C5b-8-vesicle complexes. It is concluded that the C5b-8 complex, which catalyzes poly(C9) formation, constitutes a structure of discrete morphology that remains as such identifiable in the fully assembled MAC, in which it is closely associated with the poly(C9) tubule.

Complement C9↗

Membrane attach complex of complement (MAC): three-dimensional analysis of MAC-phospholipid vesicle recombinants.

The three-dimensional structure of recombinants of the isolated membrane attack complex (MAC) of complement with single bilayer dioleoyllecithin (DOL) vesicles and with dimyristoyllecithin (DML) vesicles was determined. A total of four MAC-vesicle complexes were analyzed by imaging negatively stained specimens at various defined tilting angles under minimal dose conditions in the electron microscope and by computer-aided three-dimensional reconstruction. The information on electron micrographs obtained at 6 degrees angular increments from +60 degrees to -60 degrees was digitized by densitometric scanning, Fourier-transformed, corrected for imaging errors, cross-correlated, and synthesized to the three-dimensional image. All four MAC-vesicle recombinants showed stain penetration into the interior of the vesicle, indicating increased permeability of the bilayer to negative stain. The MAC appeared as a hollow structure of 16-nm height, 2.0-nm wall thickness, and a 3.0-nm torus at the free end with an outer and inner diameter of 20.0 nm and 10.0 nm. In MAC-DOL vesicles the hollow core of the MAC terminated at the membrane-binding site, and only small pores of up to 2.0-nm in diameter penetrated the bilayer. In one MAC-DML vesicle lipid discontinuities on the outer circumference of the MAC binding site mediated stain penetration. The second MAC-DML vesicle showed a channel of approximately 4.0 nm connecting the hollow core of the MAC across the bilayer with the vesicle interior. The results suggest the MAC may mediate increased membrane permeability by protein channel formation in addition to lipid reorientation.

Cell Membrane↗