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L Brade

Publications and source records attributed to L Brade.

At least 73 records · Page 4Linked to original sources

Structure, serological specificity, and synthesis of artificial glycoconjugates representing the genus-specific lipopolysaccharide epitope of Chlamydia spp.

The human bacterial pathogens Chlamydia spp. possess a genus-specific lipopolysaccharide as a major surface antigen, the structure of which has been determined by analytical chemistry as Kdop alpha 2-8-Kdop alpha 2-4-Kdop alpha 2-6GlcNp beta 1-6-GlcNol (Kdo, 3-deoxy-D-manno-2-octulosonic acid). Immunochemical studies on this pentasaccharide and the chemically synthesized partial structures Kdop alpha 2-8-Kdop alpha 2-4-Kdop alpha 2-6GlcNp beta, Kdop alpha 2-8-Kdop alpha 2-4-Kdop alpha, Kdop alpha 2-4-Kdop alpha, Kdop alpha 2-8-Kdop alpha, and Kdop alpha using artificial glycoconjugate antigens and monoclonal antibodies showed that fatty acids and phosphoryl groups (as present in native lipopolysaccharide) are dispensable for constitution of the genus-specific epitope and that the minimal structure to exhibit chlamydia specificity is the Kdo trisaccharide moiety.

Antibodies, Bacterial↗

Bacterial endotoxin: molecular relationships between structure and activity.

The significance of endotoxins in bacterial infection and their role as bacterial surface antigens (O antigens) have stimulated investigations into their chemical nature and the mechanisms of their biologic action during the last few decades. This article summarizes some of the recent results and emphasizes structure-activity relationships.

Animals↗

Pore formation by complement in the outer membrane of gram-negative bacteria studied with asymmetric planar lipopolysaccharide/phospholipid bilayers.

The interaction of complement with an asymmetric planar lipopolysaccharide/phospholipid bilayer system as a model for the lipid matrix of the outer membrane of Gram-negative bacteria has been studied. The addition of whole human serum to the aqueous solution at the lipopolysaccharide side of the asymmetric membrane resulted in a rapid increase of the bilayer conductance in discrete steps, indicating the formation of transmembrane pores, which were not observed in the case of pure phospholipid membranes. The amplitudes of the discrete conductance steps varied over a range of more than one order of magnitude. The mean single step conductance was (0.39 +/- 0.24) nS for a subphase containing (in mM): 100 KCl, 5 MgCl2 and 5 HEPES buffer. The steps were grouped into bursts of typically 9 +/- 3 events per burst and the conductance change within one burst was (8.25 +/- 4.00) nS. The pore-forming activity of serum at the asymmetric membrane system was independent of the presence of specific antibodies against the lipopolysaccharide but was dependent on calcium ions. Furthermore, the pore-forming activity required complement component C9. A model for the mode of pore formation by complement is proposed: The complement pore is generated in discrete steps by insertion of C9 monomers into the membrane and their irreversible aggregation to water-filled channels with a diameter of approximately 7 nm assuming a circular geometry.

Bacterial Outer Membrane Proteins↗

A 28 kDa protein of normal mouse serum binds lipopolysaccharides of gram-negative and lipoteichoic acids of gram-positive bacteria.

A 28 kDa protein from normal mouse serum known to bind to the inner core region of bacterial lipopolysaccharide (LPS) was found to bind also to bacterial poly(glycerophosphate) lipoteichoic acid (LTA). Twenty-nine preparations of LTA were isolated from 19 different bacterial species, purified, chemically analysed, and tested for their ability to bind the 28 kDa protein in a complement-dependent hemolysis and hemolysis inhibition assay. All but one were active in one or both systems and one half of the preparations were active in both. Reactivity patterns were not strictly correlated with the chemical structure of LTA considering the substitution of the poly(glycerophosphate) chain with alanine ester and glycosyl residues and the type of lipid anchor. The isolated lipid anchor alone was unable to bind the serum factor. Comparing the binding to LTA and LPS from Acinetobacter calcoaceticus indicated complete cross-reactivity of LTA and LPS in various serological approaches. Thus, LPS and LTA which are unique amphiphiles in Gram-negative and Gram-positive bacteria, respectively, share a similar function in terms of binding the 28 kDa mouse serum protein.

Animals↗

Characterization of murine monoclonal and murine, rabbit, and human polyclonal antibodies against chlamydial lipopolysaccharide.

Murine monoclonal and rabbit, murine, and human polyclonal antibodies against chlamydial lipopolysaccharide (LPS) were characterized by the passive hemolysis and passive hemolysis inhibition assays and by absorption experiments with LPSs of Chlamydia psittaci, Chlamydia trachomatis, and a recombinant strain of Salmonella minnesota Re (r595-207) expressing the chlamydia-specific LPS epitope, as well as natural and synthetic partial structures of chlamydial LPS. Eleven monoclonal antibodies of the immunoglobulin M and G classes were characterized as chlamydia-specific by their failure to react with Re-type LPS, binding to a similar epitope for which the trisaccharide alpha-3-deoxy-D-manno-2-octulosonic acid (KDO)-(2-8)-alpha-KDO-(2-4)-alpha-KDO was an absolute prerequisite. For optimal binding, parts of the lipid A moiety were also involved; however, phosphoryl and ester-linked acyl groups and the reducing glucosamine residue of lipid A were dispensable. A similar antibody specificity was detected in lapine and murine hyperimmune sera after immunization with chlamydia, in addition to those recognizing more complex (e.g., those requiring the presence of phosphoryl residues) and less complex epitopes. Among the latter were those cross-reacting with Re-type LPS, which could be removed by absorption. The titers of different antibody specificities, in particular the ratio of chlamydia-specific to cross-reactive antibodies, present in murine polyclonal antisera depended on the immunization protocol. The preferential formation of chlamydia-specific antibodies was observed after immunization with liposome-incorporated immunogens. Human sera from patients with suspected genital chlamydial infections were also found to contain chlamydia-specific and cross-reactive antibodies, the latter of which could be removed by absorption with Re-type LPS.

Antibodies, Bacterial↗

Determination of the epitope specificity of monoclonal antibodies against the inner core region of bacterial lipopolysaccharides by use of 3-deoxy-D-manno-octulosonate-containing synthetic antigens.

Partial structures of enterobacterial lipopolysaccharides (LPS) of the Rechemotype, consisting of lipid A and 3-deoxy-D-manno-2-octulosonic acid (Kdo), as well as oligosaccharides and derivative of Kdo were synthesized and used to characterize the epitope specificity of monoclonal antibodies against Re-mutant LPS. High-molecular-weight antigens, obtained after copolymerization of the respective allyl glycosides with acrylamide, and the haptenic oligosaccharides were used in immunoprecipitation, immune hemolysis, and in inhibition assays. A monoclonal antibody (clone 20, igM) recognizing a terminal Kdop group was shown to require for its binding the alpha-anomeric configuration and OH-4 and OH-5 groups, whereas the C-7 - C-8 chain was of minor importance. Another monoclonal antibody (clone 25, IgG3), which recognizes a (2--4)-linked Kdo disaccharide, was shown to require for its binding the alpha-anomeric configuration of both residues. The isomer having a reducing beta-Kdo residue was significantly less active, and that with a terminal beta-Kdo group was completely inactive. The OH-5 group of the reducing residue was shown to be not important for the specificity of this antibody, since it could be replaced by a hydrogen atom without loss of serological reactivity. The alpha-(2--8)-linked Kdo disaccharide was strongly cross-reactive with its (2--4)-linked isomer. The antibody recognized also parts of the 2-amino-2-deoxy-D-glucose backbone of lipid A.

Animals↗

Multiple infections in cases of cervical cancer from a high-incidence area in tropical Africa.

The presence of several infections was determined in tissue and serum samples from 34 cases and 23 controls seen in 1984-85 at Mulago Hospital in Kampala, Uganda. When assessing single infections, association with cervical cancer could be shown for 5 agents, namely by Southern blot assay for human papillomavirus types 16 and 18 (HPV), and by serological tests at varying levels of antibody titres, for herpes simplex virus type I and/or 2 (HSV), cytomegalovirus (CMV), Epstein-Barr virus, viral capsid antigen (EBV-VCA), and Chlamydia trachomatis (CLT). Due to interaction, HSV and CMV were associated with cervical cancer only when infection by both of these agents was demonstrable. In the assessment of the simultaneous presence of these 5 infections, moderately high antibody titres were taken as the cut-off point for infection by HSV, CMV, EBV-VCA, and CLT. This showed that 3 and 4 infections at a time were seen in the majority of the cases in contrast to the controls with essentially no more than 2 such infections. A linear trend in the rise of risk for cervical cancer was noted with increasing number of infections.

Antibodies, Viral↗

Epitope specificities of murine monoclonal and rabbit polyclonal antibodies against enterobacterial lipopolysaccharides of the Re chemotype.

Murine monoclonal and rabbit polyclonal antibodies raised against the lipopolysaccharides (LPS) of Re mutants of Salmonella minnesota, Proteus mirabilis, and Escherichia coli were serologically characterized. Using natural Re LPS and natural and synthetic partial structures thereof, representing the 3-deoxy-D-manno-2-octulosonic acid (KDO) or lipid A region or both, the epitope specificities of four monoclonal antibodies were defined. Clones 20 (immunoglobulin M [IgM]) and 25 (IgG3) recognize a terminal alpha-pyranosidically linked KDO monosaccharide residue and the alpha-2,4-linked KDO disaccharide, respectively, as the immunodominant group. Therefore, these two antibodies are core antibodies which do not require the presence of lipid A constituents for binding. The minimal structure enabling binding of clone 17 (IgG2b) is a pseudotetrasaccharide of the sequence alpha-KDO-(2----4)-alpha-KDO-(2----6)-beta-glucosamine-(1----6)- glucosaminitol with two amide-linked 3-hydroxytetradecanoic acid residues. The smallest structure with which clone 22 (IgG3) reacted was de-O-acylated Re LPS. Therefore, clones 17 and 22 are LPS antibodies requiring both the lipid A and the KDO region for binding. Phosphoryl residues of the lipid A moiety in Re LPS are dispensable for the reaction with clone 17, whereas they are necessary for that with clone 22. These four different antibody types were also detected in polyclonal rabbit antisera and could be distinguished from each other by absorption experiments. It was found that type 20 and 25 antibodies either were not present or were present only in small amounts and that the majority of the antibodies were of types 17 and 22. From these data, we conclude that the immunodominant structures of Re LPS comprise both the KDO and lipid A domains.

Animals↗

Mitogenic activities of synthetic Escherichia coli lipid A and a synthetic partial structure (tripalmitoyl pentapeptide) of E. coli lipoprotein.

Synthetic Escherichia coli lipid A and synthetic S-[2,3-bis-(palmitoyloxy)propyl]-N-palmitoylpentapeptide (tripalmitoyl pentapeptide [TPP]), representing the mitogenically active principles of bacterial lipopolysaccharide (LPS) and lipoprotein, respectively, were compared for their mitogenic activities on splenocytes of LPS responder (BALB/c) and LPS-low-responder (C3H/HeJ) mice. Whereas lipid A was active only in LPS-responder mice, TPP resulted in mitogenic activation of B lymphocytes from both LPS-responder and LPS-low-responder mice. When the mitogens were added simultaneously, mainly additive effects of both activators were observed. The data suggest that two different B-lymphocyte populations are responding to these two mitogens.

Animals↗

Endotoxic properties of synthetic pentaacyl lipid A precursor Ib and a structural isomer.

A pentaacyl precursor of lipid A biosynthesis, termed precursor Ib, and a structural isomer have been chemically synthesized. These compounds were, in comparison to synthetic Escherichia-coli type lipid A or lipopolysaccharide, analyzed for their activity in typical endotoxin test systems. It was found that both precursor Ib and the isomer exhibited similar or only slightly lower pyrogenic, lethal and Shwartzman-phenomenon-inducing activity than lipid A. All preparations were comparable in their B-lymphocyte mitogenicity, macrophage-activating capacity and immunoreactivity towards lipid A antisera. The proton nuclear magnetic resonance spectra of the 1-dephospho derivative of synthetic and bacterial precursor Ib were indistinguishable proving that the previously proposed structure for precursor Ib is correct.

Animals↗

Chemical and serological investigations on the genus-specific lipopolysaccharide epitope of Chlamydia.

Members of the bacterial genus Chlamydia are responsible for widespread disease among humans and animals, including endemic trachoma in developing countries, venereal disease in developed countries, and a variety of other diseases such as infantile pneumonia and lymphogranuloma venereum. Although there is little genetic relatedness between and large antigenic diversity between and among the two chlamydial species, one antigenic determinant has been preserved among all serovars: the genus-specific lipopolysaccharide epitope. In this report, the tools of molecular genetics, monoclonal antibodies, and analytical and synthetic chemistry have been combined to determine the structure of this epitope. This epitope is attributed to the presence of a trisaccharide of 3-deoxy-D-manno-octulosonic acid (KDO) of the sequence KDOp-(2----8)-KDOp-(2----4)-KDO. The structure includes a unique linkage of two KDO residues through a 2.8-linkage.

Animals↗

The immunogenicity and antigenicity of lipid A are influenced by its physicochemical state and environment.

We investigated the immunogenicity and antigenicity of synthetic lipid A and partial structures thereof. Included in the study were compounds which varied in the position of phosphate (1-mono-, 4'-mono-, and 1,4'-bisphosphates) and in the acylation (type, number, and distribution of fatty acids) and, in the case of monosaccharide compounds, the nature of the backbone sugar (D-glucosamine, D-glucose, 3-amino-3-deoxy-D-glucose, and 2,3-diamino-2,3-dideoxy-D-glucose). With the aid of the passive-hemolysis and passive-hemolysis-inhibition assays and by absorption experiments, five distinct antibody specificities were detected in polyclonal rabbit antisera raised against sheep erythrocyte-coated lipid A and lipid A incorporated into the membrane of liposomes (liposome-incorporated immunogens). Three antibody specificities reacted with disaccharide antigens specific for a 1-mono-, 4'-mono-, and 1,4'-bisphosphorylated beta-1,6-linked D-glucosamine disaccharide. Two antibodies reacted with either 1- or 4-phosphates of acylated D-gluco-configured monosaccharides and exhibited no cross-reaction with each other. However, they cross-reacted with disaccharide antigens with phosphate groups in the appropriate positions. We found that the physicochemical state and the environment of lipid A modulated its immunoreactivity. The immunogenicity was best expressed by erythrocyte-coated and liposome-incorporated immunogens. The antigenicity of lipid A was also greatly influenced by its physical surroundings. The reaction pattern of the above antibodies was highly specific in the hemolysis assay and in absorption experiments (the antibody reacted with antigen embedded in a cell membrane), whereas some cross-reactivities were observed in inhibition studies (the antibody reacts with antigen in aqueous solution). By using liposome-incorporated antigens as inhibitors, nonspecific reactions were avoided and specific ones were enhanced. Thus the antibodies described above against lipid A recognize epitopes in the hydrophilic backbone, the exposure of which depends on the intrinsic physicochemical properties of lipid A on the one hand and the physical environment on the other.

Animals↗

Use of synthetic antigens to determine the epitope specificities of monoclonal antibodies against the 3-deoxy-D-manno-octulosonate region of bacterial lipopolysaccharide.

Mouse monoclonal antibodies were raised against heat-killed bacteria of the Re mutant R595 of Salmonella minnesota and characterized by the passive hemolysis and passive hemolysis inhibition tests and by double immunodiffusion experiments using lipopolysaccharide (LPS) from different rough mutants of S. minnesota and synthetic antigens. The latter were copolymerization products of acrylamide with the alpha- and beta-allylglycosides of 3-deoxy-D-manno-octulosonic acid (KDO) and the alpha-2,4-linked KDO disaccharide [poly-alpha-KDO, poly-beta-KDO, and poly-(alpha-KDO)2, respectively], and sodium (3-deoxy-D-manno-octulopyranosyl)onate-(2----6)-(2-deoxy-2-[ (R)-3- hydroxytetradecanoylamino]- beta-D-glucopyranosyl)-(1----6)-(2-deoxy-2-[(R)-3-hydroxytetradecanoy lam ino]-D-glucose) [alpha-KDO-(GlcNhm)2], representing a part structure of Re LPS. One antibody (clone 20, immunoglobulin M) was found to recognize a terminal alpha-linked KDO residue, since it reacted in the passive hemolysis assay with alpha-KDO-(GlcNhm)2 and all LPS tested, it was inhibited by all synthetic antigens containing alpha-linked KDO residues, and it gave a reaction of identity with poly-alpha-KDO and poly-(alpha-KDO)2 in double immunodiffusion experiments. A second antibody (clone 25, immunoglobulin G3) was identified as specific for an alpha-2,4-linked KDO disaccharide, since it reacted in immunodiffusion exclusively with synthetic poly-(alpha-KDO)2 and not with the monosaccharide derivatives in either anomeric configuration, and it was inhibited only with poly-(alpha-KDO)2 and with LPS from S. minnesota R595 (Re) and R345 (Rb2). The reaction of this antibody with R345 LPS is attributed to the quantitative substitution with KDO disaccharide present as a side chain, which is not present in stoichiometric amounts in the other LPS.

Animals↗

Antigenic and immunogenic properties of recombinants from Salmonella typhimurium and Salmonella minnesota rough mutants expressing in their lipopolysaccharide a genus-specific chlamydial epitope.

Rough mutants from Salmonella typhimurium and Salmonella minnesota were transformed with a plasmid containing a 6.5-kilobase insert of DNA from Chlamydia trachomatis assumed to encode a glycosyltransferase. Transformation resulted in the expression of a genus-specific chlamydial epitope on the lipopolysaccharide (LPS) of the recombinant strains. Proteinase K-digested whole-cell lysates of the recombinants and of controls were subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis followed by silver staining or Western blot analysis. Two LPS populations were detected in the recombinants, the parent LPS and a faster-migrating component. The latter stained with monoclonal antibody against the genus-specific chlamydial epitope and was not seen in the controls. LPS was extracted and purified from recombinants of S. minnesota R595 and R4 and characterized by the passive hemolysis and passive hemolysis inhibition assays and by hydrolysis kinetics. Different antigenic determinants could be distinguished from each other by the passive hemolysis inhibition test with monospecific antigen-antibody reactions. Rabbits were immunized with heat-killed recombinant bacteria to study the immunogenic properties of the recombinants. In all animals, antibodies were raised against the parent core specificity and against the chlamydia-specific epitope. The data show that the recombinant bacteria are useful as immunogens to prepare polyclonal antisera against chlamydiae and that LPS isolated from them exhibits the same antigenic determinants as chlamydial LPS and may thus be used as a substitute for chlamydial LPS in serological assays.

Animals↗