PubMed HealthSearch

SEARCH · PubMed Health

Results for “complexity”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 109 records · Page 6Linked to original sources

Biochemical aspects of immune complex formation and immune complex diseases.

Formation of immune complexes is a normal part of the immune defence against soluble antigens. Immune complexes may nevertheless play a pathogenic role of their own. The present review discusses antigen antibody interactions with special regard to immune complex formation. A new classification of antigen antibody interactions is proposed, based on the antigenic valence. Oligovalent antigens and bivalent antibodies form genuine immune complexes. Experimental observations and theoretical considerations indicate that although a vast variety of complexes is possible genuine immune complex formation is a self-limiting process, so it is typical that the smallest possible complexes are formed in the largest amounts. Formation of immune complexes differs in mechanism from most other biological ligand binding reactions, and the extent to which immune complex formation follows its own laws is discussed. To explain the mechanism of precipitin reactions, a two-stage model is proposed. The outcome of antigen antibody interactions is further complicated because antibody preparations are typically heterogeneous, and the impact of antibody heterogeneity is also discussed.

Animals

Passive immune complex glomerulonephritis in mice: models for various lesions found in human disease. II. Low avidity complexes and diffuse proliferative glomerulonephritis with subepithelial deposits.

Intravenous injections of mice three times a day for 3 days with soluble complexes of 3 mg. of moderately avid rabbit antibody to chicken egg albumin prepared by dissolution of equivalence precipitates in 80 times the equivalence amount of antigen resulted in a combined mesangial and loop localization of immune complexes. With complexes formed from antibody of low avidity, injected four times a day for 3 days, a predominately subepithelial loop deposition of complexes was observed. Complexes formed from moderately avid antibody gave rise to a mainly mesangiopathic glomerulonephritis, whereas low avidity complexes were associated with a diffuse glomerulonephritis. These results, in combination with those of the previous paper, successfully reproduce the basic form of the lesions seen in active immune complex disease by passive means and suggest that antibody avidity is a major determinant of the site of localization of immune complexes and therefore of the morphologic form of the resulting glomerulonephritis. The importance of these observations for our understanding of the pathogenesis of human immune complex disease is considered.

Animals

Macrophage handling of soluble immune complexes. Ingestion and digestion of surface-bound complexes at 4, 20 and 37 degrees C.

Radioassays have been developed to measure, as separate events, the ingestion and degradation of macrophage-bound guinea pig IgG anti-DNP (2,4-dinitrophenyl)-DNP-BSA (bovine serum albumin) complexes of defined size and subclass. Complex ingestion was observed to be temperature-dependent and was effectively blocked only by a combination of inhibitors of respiration and glycolysis indicating that the process is under the same metabolic control as fluid phase pinocytosis. On the other hand, the half-life of membrane-bound complexes at 37 degrees C (t1/2 = 5.6 +/- 1.7 min) was considerably shorter than the value expected from membrane turnover studies (t1/2 = 22.4 min) suggesting that complexes are selectively cleared from the cell surface. The rate of ingestion at 20 degrees C was independent of complex size and of the IgG subclass used in complex formation, but was affected by in vivo stimulation of the macrophages before assay. Complex digestion was shown to be highly temperature-dependent and, at 37 degrees C, proceeded at a rate (t1/2 = 15.5 h) which was 20-60-fold slower than the rate of ingestion indicating that the latter is unlikely to influence digestion kinetics. On the other hand, the selective action of 2-deoxyglucose in blocking digestion, but not ingestion, suggests that pinosome-lysosome fusion may play a part in determining the overall catabolic rate. A 2 to 3-fold difference in digestion rates was observed between the proteins employed as antibody (guinea pig IgG1 or IgG2) and as antigen (DNP-BSA). This finding suggests that the intrinsic susceptibility of ingested proteins to enzymatic hydrolysis may be the prime determinant of digestion rate. As with ingestion, no discrimination was observed in the degradation of complexes of different size or IgG antibody subclass. The observations in this and the preceding study (Eur. J. Immunol. 1980. 10:317) indicate that complex size is important in determining the level of uptake by phagocytes but not subsequent events associated with catabolism.

Animals

The identification of specific antigens in circulating immune complexes by an enzyme-linked immunosorbent assay: detection of bovine kappa-casein IgG complexes in human sera.

Circulating immune complexes have been implicated in the development of tissue injury in many chronic disease states, but in most instances the inciting antigens have not been identified. This report describes the development of a sensitive enzyme-linked immunosorbent assay which can be used to screen rapidly and simultaneously the immune complexes of numerous sera for the presence of a suspected antigen. The prototype antigen sought here was kappa-casein, a frequent participant in immune complex formation in IgA deficiency and in atopic diseases. The enzyme-antibody conjugate described here can detect as little as 0.11 ng/ml of kappa-casein; for immune complexes formed in vivo or in vitro, one can distinguish circulating complexes containing casein from complexes not containing this antigen. Using this reagent, a major antigen in the immune complexes of hypogamma-globulinemic patients treated with intravenous gamma-globulin was unexpectedly identified as kappa-casein. This method of specific immune complex analysis is suggested as a practical and effective approach to the elucidation of the antigenic constituents of immune complexes found in many diseases.

Absorption

Differences in hypervariable region 1 quasispecies between immune complexed and non-immune complexed hepatitis C virus particles.

Antibody to the hypervariable region 1 of hepatitis C virus (HCV) is thought to have neutralizing activity. The complexity of hypervariable region 1 quasispecies was compared between immune complexed and non-immune complexed HCV particles. Immune complexes and non-immune complexes, including intact HCV virions, were separated by differential flotation centrifugation and immunoprecipitation, and immune complexes were observed in 9 of 11 patients with chronic hepatitis C. Considerable differences in both hypervariable region 1 quasispecies and predominant clones were demonstrated between immune complexes and non-immune complexes in 4 patients and not in 5 patients. These results suggest that the specificity of antibody to hypervariable region 1 is related to the formation of immune complexes and that escape mutants with highly different quasispecies are resistant to neutralization by antibody to hypervariable region 1.

Adult

Inflammatory potential of C-reactive protein complexes compared to immune complexes.

C-reactive protein (CRP) is an acute phase serum protein that binds to phosphocholine (PC) and to components of damaged tissue. CRP resembles antibody in that it binds to ligands and activates the classical complement pathway. To compare the processing of CRP complexes to that of IgG complexes, we have prepared complexes containing the same ligand, PC-conjugated BSA, and IgG antibody to either BSA or CRP. We previously demonstrated similar complement-mediated binding of these complexes to erythrocyte complement receptors. CRP and IgG also bind to receptors on neutrophils (PMN), providing another possible pathway for clearance of ligands. PMN binding of IgG complexes can lead to activation with damaging inflammatory consequences. In the present report we have used CRP and IgG complexes containing PC-BSA to compare binding to PMN and activation of PMN adherence to endothelial cells. The results indicate that CRP complexes do not activate PMN whereas IgG complexes do. Binding assays indicate that there is substantially greater binding of IgG than CRP complexes to PMN.

Animals

X-ray small-angle studies of the pyruvate dehydrogenase core complex from Escherichia coli K-12. I. Overall structure of the core complex.

The pyruvate dehydrogenase core complex from E. coli K-12, defined as the multienzyme complex which can be obtained with a unique polypeptide chain composition, has been investigated in solution with the X-ray small-angle technique. The molecular mass of the core complex of 3.78-10(6) daltons verifies the ratio of polypeptide chains of 16:16:16 of the three enzyme components, pyruvate dehydrogenase, dihydrolipoamide transacetylase, and dihydrolipoamide dehydrogenase, present in the complex. In connection with the values obtained for the radius of gyration (156.5A), volume (1.07(7) A3) and amount of solvent associated with the complex (1.03 g/g) a loose packing of subunits in the complex has to be assumed. The maximum diameter of the core complex of 433 A, as determined from the correlation function, corroborates the large extension of the complex. The comparison of experimental and theoretical scattering curves reveals a relatively isometric overall shape of the core complex.

Escherichia coli

Immune complexes in primary biliary cirrhosis. Higher prevalence of circulating immune complexes in patients with associated autoimmune features.

A longitudinal study, examining the levels of immune complexes serially for three years, in serum from 88 patients with primary biliary cirrhosis was performed by the Raji cell radioimmunoassay. Studies of the association of autoimmune features in primary biliary cirrhosis and the effect of D-penicillamine therapy in relation to the levels of complexes were carried out. Twenty-two patients (25 percent) were found to have autoimmune features, such as Sjögren's syndrome, rheumatoid-like arthritis, scleroderma, Raynaud's disease, and Hashimoto's thyroiditis. In this subset of patients with primary biliary cirrhosis, a significantly higher prevalence (86 percent) of circulating immune complexes was detected compared with those patients showing no autoimmune features (60 percent). In addition, patients with associated autoimmune features had higher mean levels of immune complexes (259.7 micrograms AHG eq/ml) compared with those without autoimmune features (202.1 micrograms AHG eq/ml). The mean levels of complement C4, reflecting activation of classic complement pathway, were significantly lower in patients with elevated immune complexes and associated autoimmune features. The mean level of immune complexes in 13 patients receiving D-penicillamine, in contrast to the placebo group, decreased at one year but subsequently was greater than the initial level. Patients who had normal levels of immune complexes and received penicillamine therapy continued to have complex levels within the normal range for up to three years of follow-up study, but patients receiving placebo showed significantly elevated levels at subsequent intervals. Thus, levels of immune complexes in primary biliary cirrhosis may reflect the association with autoimmune features.

Antigen-Antibody Complex

Macrophage handling of soluble immune complexes: evaluation of mechanisms involved in the selective clearance of complexes from the circulation.

The binding and release of soluble guinea pig IgG2-containing DNPBSA-anti-DNP complexes and antigen-free, covalently-linked anti-DNP IgG2 oligomers of similar size, by guinea pig peritoneal macrophages, has been examined in the absence and presence of monomeric IgG2, of unrelated antibody specificity, or the monovalent hapten, DNP lysine. Complex binding was found to differ from the binding of the oligomers in that it was about twice as efficient and was essentially irreversible even in the presence of an inhibitor of ingestion, cytochalasin B. On the other hand, quantitative complex release could be achieved, in the presence of the ingestion inhibitor, by including 1.5mM DNP lysine in the medium. Complex handling by macrophages at 37 degrees C was also examined in the presence of monomeric IgG2, at its serum concn, and in the absence and presence of cytochalasin B. Inhibiting ingestion did not impair the capacity of the macrophages to take up complexes under these conditions. On the basis of these findings and previous reports that complexes bound to a receptor-bearing membrane undergo additional antibody-antigen bond formation [Dower et al., Biochemistry 20, 6326-6334 (1981a) and Leslie, Protides biol. Fluids 29, 431-434 (1982)] it is proposed that complex aggregation at the phagocyte surface may constitute the critical irreversible event required for the selective clearance of complexes in vivo. Other biological implications of receptor-mediated complex aggregation are also discussed.

Animals

Functional expression of subunit IV of Rhodobacter sphaeroides cytochrome b-c1 complex and reconstitution of recombinant protein with three-subunit core complex.

Subunit IV of Rhodobacter sphaeroides cytochrome b-c1 complex was over-expressed in Escherichia coli JM109 cells as a glutathione S-transferase fusion protein (GST-RSIV) using the expression vector, pGEX/RSIV. Maximum yield of soluble active recombinant fusion protein was obtained from cells harvested 3 h after induction of growth at 37 degrees C in LB medium. Subunit IV was released from the fusion protein by proteolytic cleavage with thrombin. When subjected to SDS-polyacrylamide gel electrophoresis, isolated recombinant subunit IV of R. sphaeroides cytochrome b-c1 complex. Although the isolated recombinant subunit IV is soluble in aqueous solution, it is in a highly aggregated form, with an apparent molecular mass of over 1000 kDa. The addition of detergent deaggregates the isolated protein, suggesting that the recombinant protein exists as a hydrophobic aggregation in aqueous solution. When the three-subunit core cytochrome b-c1 complex, purified from RS delta IV-adapted chromatophores containing a fraction of the wild type cytochrome b-c1 complex activity, was reacted with varying amounts of recombinant subunit IV, the activity increased as the subunit IV concentration increased. Maximum activity restoration was reached when 1 mol of subunit IV/mol of three-subunit core complex was used. The reconstituted cytochrome b-c1 complex is similar to the wild-type complex in molecular size, apparent Km for Q2H2, and inhibitor sensitivity, indicating that recombinant subunit IV is properly assembled into the active cytochrome b-c1 complex. A tryptophan residue in subunit IV was found to be involved in the interaction with the three-subunit core complex.

Base Sequence

The composition of the pyruvate dehydrogenase complex from Azotobacter vinelandii. Does a unifying model exist for the complexes from gram-negative bacteria?

An improved purification procedure of the pyruvate dehydrogenase complex of Azotobacter vinelandii is described. This procedure minimizes losses of components and results in the isolation of the pure complex with a specific activity of 15-19 U/mg and an overall yield of 40%. The chain ratio of the three components was determined by covalent modification of the lysine residues with trinitrobenzene sulfonic acid, followed by separation of the components on sodium dodecyl sulfate gels. These determinations yielded an average chain ratio of 1.3:1:0.5 for E1:E2:E3 respectively. Based on E2 this corresponds with a minimum molecular mass of approximately 216 kDa. Because the molecular mass of the complex has been determined previously to be 800 +/- 50 kDa, it is concluded that the complex as isolated from A. vinelandii is based on a tetramer of E2 chains. The complex can be resolved into its individual components, which can be recombined to yield a fully active complex. Titration of E2E3 subcomplexes with E1 resulted in maximum complex activity at an E1/E2 ratio of 1.5-1.6. Similar titrations of E1E2 subcomplexes with E3 resulted in maximum activity at an E3/E2 ratio of 0.45-0.55. From these experiments it is concluded that the complex has maximum activity with a composition of three E1 dimers, one E2 tetramer and one E3 dimer. With excess of either E1 or E3 a decrease in activity is observed which indicates competition between these components for binding sites on E2. As shown before [Bosma, H.J., de Kok, A., Markwijk, B.W., and Veeger, C. (1984) Eur. J. Biochem. 140, 273-280], the isolated E2 component is composed of 32 peptide chains of 66 kDa each. Upon addition of E1 or E3, E2 dissociated into tetramers. Dissociation is complete upon the addition of four E1 dimers of four E3 dimers per E2 tetramer. Addition of E1 to saturated E2E3 subcomplex or E3 to saturated E1E2 subcomplex did not result in extra binding but rather in displacement of bound E3 or E1 respectively. It is therefore concluded that the binding sites of E1 and E3 to the E2 chains are either identical or so closely spaced that steric hindrance prevents simultaneous binding of both components. A model is presented based on the cubic structure of the isolated E2 component. In this model the 32 E2 peptide chains are arranged in tetramers in the corners of the cube. This model is discussed in connection with the existing model for the Escherichia coli complex.

Amino Acids

Identification of mycobacteria from culture by using the Gen-Probe Rapid Diagnostic System for Mycobacterium avium complex and Mycobacterium tuberculosis complex.

Commercially available kits (Mycobacterium avium Complex Rapid Diagnostic System and Mycobacterium tuberculosis Complex Rapid Diagnostic System; Gen-Probe, Inc., San Diego, Calif.) utilizing nucleic acid hybridization for the rapid identification of members of the M. avium-M. intracellulare complex and M. tuberculosis complex were evaluated by using 339 clinical and American Type Culture Collection (Rockville, Md.) isolates. The tests, which can be performed in approximately 2 h, use specific [125I]DNA probes complementary to the rRNAs of M. avium, M. intracellulare, and M. tuberculosis complex, the latter of which includes M. tuberculosis, M. bovis, M. bovis BCG, M. africanum, and M. microti. The M. avium-M. intracellulare probes correctly identified 99 of 114 M. avium-M. intracellulare isolates, with 7 false-negatives and 8 false-positives, for a sensitivity of 93.4% and a specificity of 96.6%. After repeat testing, 110 of 114 were correctly identified, with 4 false-negatives and no false-positives, for a sensitivity of 96.5% and a specificity of 100%. The M. tuberculosis complex probe correctly identified 99 of 102 M. tuberculosis isolates, with 1 false-negative and 2 false-positives, for a sensitivity of 99% and a specificity of 99.2%. After repeat testing, 100 of 102 isolates were correctly identified, with no false-negatives and 2 false-positives, for a sensitivity of 100% and a specificity of 99.2%. Overall, there were 15 discrepant M. avium-M. intracellulare results, with 4 such results after repeat testing, and 3 discrepant M. tuberculosis complex results, with 2 such results after repeat testing. The Gen-Probe kits are highly sensitive and specific for use in identifying M. avium-M. intracellulare complex and M. tuberculosis complex isolates and will be useful in the clinical laboratory which can use the present radionuclide-containing kits cost effectively.

Cost-Benefit Analysis

Monoclonal antibodies against complement 3 neoantigens for detection of immune complexes and complement activation. Relationship between immune complex levels, state of C3, and numbers of receptors for C3b.

C3-bearing immune complexes and C3 activation products were detected by using two monoclonal antibodies, one specific for a neoantigenic determinant on C3c and the other for C3d. To quantitate immune complexes, the anti-C3c or anti-C3d antibodies were fixed to microtiter plates and reacted with test plasma. The binding of C3-bearing immune complexes in this plasma was then measured with radioisotope- or enzyme-labeled anti-human IgG. To test for C3 breakdown products, solid-phase monoclonal antibody to the C3d neoantigen was reacted with EDTA-plasma samples, and fixed iC3b or C3d was measured with a polyclonal anti-C3 antibody. Patients with autoimmune diseases, such as systemic lupus erythematosus, rheumatoid arthritis, and Sjogren's syndrome, and paracoccidioidomycosis were found to contain immune complexes bearing C3b/iC3b or C3d. In most conditions, there were more C3d-containing immune complexes than C3b/iC3b. Although CR1 (C3b receptors) rapidly converted immune complex-bound iC3b to C3dg/C3d and lupus patients had reduced CR1, no correlation between the state of C3 on circulating immune complexes or levels of immune complexes and CR1 numbers was seen. However, levels of C3-fixing ICs correlated with levels of C3 activation products. This assay system with monoclonal antibodies to neoantigens expressed on activated, but not native, C3 provides sensitive and specific means for detecting and classifying C3-fixing immune complexes and for assessing C3 activation.

Antibodies, Monoclonal

Immune complexes in the spleen. The difference between competitive inhibition of immune complex trapping in spleen follicles and inhibition by paratyphoid vaccine.

Paratyphoid vaccine injected between 4 days and 3 hours before injection of labelled immune complexes (125-I-labelled BGG-anti-BGG), inhibits follicular trapping of these complexes in the mouse spleen. Inhibition is maximal when paratyphoid vaccine is given 1 day before, almost no label being found in the spleen follicles. No inhibition of follicular trapping of the complexes occurred when paratyphoid vaccine was injected simultaneously with the labelled immune complexes. Competitive inhibition was found when unlabelled immune complexes were given together with labelled immune complexes. Simultaneous injection of mice with paratyphoid vaccine and labelled immune complexes resulted in an additonal form of localization of the labelled immune complexes in the white pulp, heavily labelled clumps also appearing in the periarteriolar lymphocyte sheaths and follicles. The results are discussed in relation to the mechanism of immune complex trapping in spleen follicles.

Animals

Capillary-localized low-affinity antibody-antigen complexes act as a focus for the deposition of high-affinity complexes.

The hypothesis that low-affinity antibody-antigen complexes localized in the glomerular capillary wall can act as a focus for the subsequent deposition of complexes containing high-affinity antibody was tested with three experimental systems: (1) Experimental zinc deficiency was used to modulate antibody affinity and to determine its effect on the development of glomerulonephritis. Low-affinity (LA) mice fed a zinc-containing diet (Zn+) produce low-affinity antibody and develop glomerulonephritis when injected daily with antigen. However, LA mice fed a zinc deficient diet (Zn-) produce high-affinity antibody and do not develop chronic glomerulonephritis. Furthermore, when LA mice fed on a Zn+ diet and given daily antigen injections for 25 days were then given a Zn- diet and 25 further daily antigen injections, they developed glomerulonephritis more severely than did control LA mice given Zn+ diet throughout the whole experiment; (2) Immune complex localization was induced in LA mice by daily injections of ovalbumin and then i.v. injection of preformed high affinity anti-DNP-DNP-HSA complexes. These localized in the glomerular capillary wall in ovalbumin-injected animals in contrast to their mesangial localization in controls; and (3) High-affinity mice (HA) were given injections of preformed high- or low-affinity anti-DNP-DNP-HSA complexes and then 50 daily injections of DNP-HSA. The localization of complexes in HA mice following daily antigen injection was markedly influenced by the immunochemical characteristics of the complexes initially injected. These results suggest that the capillary localization of small, low affinity antibody-containing antibody-antigen complexes acts as a focus for the subsequent localization of larger, high-affinity antibody-containing complexes.

Animals

Soluble oligovalent antigen-antibody complexes. I. The effect of antigen valence and combining ratio on the composition of fluorescein-carrier anti-fluorescein complexes.

Soluble oligovalent antigen--antibody complexes were prepared and analysed by ultracentrifugation in order to study the effect of the combining ratio, antigen valence and concentration upon the size and molecular composition of the composition of the complexes. Fluorescein (F) conjugates of rabbit serum albumin (RSA) and thyroglobulin (RTg) were combined with high affinity rabbit anti-F antibodies to form soluble complexes. The effect of the combining ratio paralleled findings in precipitating systems in that the largest soluble complexes were found at equimolarity and mild molar antibody excess. Tetravalent antigen formed precipitates at combining ratios near equimolarity, whereas trivalent antigens failed to precipitate at similar concentrations. Complexes prepared near equimolarity were most sensitive to changes in concentration, higher concentrations leading to larger complexes. The Ab/Ag ratios of different-size complexes in the same preparation were remarkably similar. This ratio was dependent on the antibody--antigen combining ratio, was limited by antigen valence and was not affected by concentration differences. The data support the hypothesis that soluble complexes are formed in two steps. First, antigen and antibody combine to form subunits whose Ab/Ag ratio is determined by the combining ratio and antigen valence. These subunits then combine to form larger complexes in a manner analogous to polymerization.

Antibodies

Influence of immune-complex size and antigen-antibody ratio on immune complex detection with monoclonal rheumatoid factor and C1q.

Stabilized aggregates of human IgG were prepared over a wide range of molecular weights. These fractions with increasing molecular weight were adjusted to the same molarity or the same protein concentration and were tested in the solid phase C1q and monoclonal rheumatoid factor immune complex assays. At constant molarity results were linearly correlated with the size of the aggregates. At constant protein concentration, results were also linearly correlated with the size of the aggregates in the lower molecular weight fractions, although the number of aggregates in the fractions decreased with increasing molecular weight. It is concluded that results in these assays can only be compared with respect to concentration if the immune complexes have identical sizes. Consequently, we studied the relative affinity of C1q and monoclonal rheumatoid factor for antigen/antibody immune complexes of different sizes or different antigen/antibody ratios, using model immune complexes composed of tetanus toxoid/anti-toxoid and streptolysine O/anti-streptolysine O. Compared to C1q, monoclonal rheumatoid factor was found to have higher affinity for smaller complexes, and for complexes with higher antigen/antibody ratio. Immune complex containing sera of 5 patients with connective tissue diseases, and one normal serum, were fractionated on a Sepharose 4B column. The binding patterns of the different fractions to solid phase C1q and monoclonal rheumatoid factor were quite variable and in only one of these sera monoclonal rheumatoid factor had the expected preference for small complexes and C1q for large complexes. Moreover a remarkably high binding to C1q and/or monoclonal rheumatoid factor of the monomeric IgG fraction was found in 4 out of 5 patient sera.

Antibodies, Monoclonal

Intra- and inter-complex cross-linking of subunits in the quinol oxidase super-complex from thermophilic Bacillus PS3.

Gram-positive thermophilic Bacilli contain quinol-cytochrome c reductase and cytochrome c oxidase as two major respiratory complexes of the electron transfer chain, and these enzymes can be extracted with mild detergents as an associated quinol oxidase super-complex. The reductase is composed of three subunits; cytochrome b6, cytochrome c1, and FeS protein, whereas cytochrome c oxidase consists of four subunits numbered 1 through 4. In order to clarify the interactions between the subunits, the super-complex isolated from Bacillus PS3 was cross-linked with three bifunctional cross-linkers; disuccinimidyl tartrate, 3,3'-dithiobis(succinimidylpropionate), and ethylene glycolbis(sulfosuccinimidylsuccinate). The most prominent cross-linking was observed for the combination of subunit 1 plus 2 in cytochrome c oxidase, and for that of cytochrome b6 plus cytochrome c1 in the reductase. In addition to these intra-complex cross-linkings, inter-complex linking was observed for the combination of cytochrome b6 plus subunit 1 with ethylene glycolbis(sulfosuccinimidylsuccinate), and for the combinations of cytochrome b6 plus subunit 1 and cytochrome b6 plus subunit 2 with 3,3'-dithiobis(succinimidylpropionate). Incubation in the presence of Triton X-100, which was confirmed to cleave the two enzyme complexes, selectively reduced the inter-complex cross-linking, suggesting that the chemical cross-linking reflect the spatial arrangement of subunits in the super-complex.

Bacillus