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Biomedical subjects

E Björling

Publications and source records attributed to E Björling.

At least 19 recordsLinked to original sources

Inhibitory function of secretory leukocyte proteinase inhibitor (SLPI) in human saliva is HIV-1 specific and varies with virus tropism.

OBJECTIVE: Secretory leukocyte proteinase inhibitor (SLPI) is an endogenous mucosa associated protein that has been proposed to possess anti-human immunodeficiency virus type 1 (HIV-1) activity. The aim of this study was to investigate the biological function of SLPI in salivary mediated inhibition of HIV infection and in addition the inhibitory effect of SLPI using isolates of varied virus tropism. MATERIAL AND METHODS: The inhibitory effect of HIV-1 infection in vitro, mediated by 60 different saliva samples was analyzed with respect to levels of SLPI. Salivary samples depleted from IgA and SLPI, respectively, were further analyzed for anti-HIV activity. The antiviral effect of recombinant SLPI was investigated within an in vitro system of HIV-1 infection of target cells using a panel of viral isolates with distinct coreceptor usage. Furthermore we tested a panel of overlapping synthetic peptides, representing the amino acids in SLPI, for their capacity to inhibit HIV-1 infection of human peripheral blood mononuclear cells (PBMCs). RESULTS AND CONCLUSIONS: These experiments show that elevated levels of salivary SLPI can be associated with an increased inhibitory effect of the whole saliva sample, and that this inhibitory effect is decreased with broad coreceptor usage of the virus.

Acquired Immunodeficiency Syndrome↗

Monoclonal antibodies to native HIV type 1 reverse transcriptase and their interaction with enzymes from different subtypes.

Recombinant reverse transcriptase (RT) from HIV-1 subtype B was used to produce mouse anti-RT monoclonal antibodies (MAbs). Immunization was done by mixing RT with the ISCOM matrix-forming adjuvant saponin (Quil A). Two different assays, both based on the interaction of native RT and antibodies, were used to monitor the immune response in mice and for screening, selection, and characterization of the MAbs. The first assay measures the capacity of antibodies to inhibit the polymerase activity of the RT and the second assay measures the ability of antibodies to capture enzymatically active RT. Twelve clones with the capacity to inhibit at least 50% of the RT activity and 34 clones with high RT-capturing capacity were found. The MAb panel was utilized to evaluate the immunological properties of 18 different RTs representing 9 different HIV1 subtypes. The RT-inhibitory MAbs could be divided into two groups based on their pattern of cross-reactivity toward the different HIV-1 RTs. The degree of diversity recorded among MAbs with RT-capturing capacity was larger. At least seven groups of MAbs with distinct cross-reactivity patterns were identified. Thus, the degree of isoenzyme specificity varied greatly, from MAbs that were quite specific for subtype B RT to one MAb that was able to capture the RTs from all HIV-1 isolates tested except one of the two group O isolates. In conclusion, our study revealed that there exist surprisingly large immunological differences between RTs from different HIV-1 subtypes as well as from the same subtype.

Animals↗

A neutralizing recombinant human antibody Fab fragment against Puumala hantavirus.

A combinatorial human antibody Fab pComb3H library, generated from splenic lymphocytes of a Puumala hantavirus (PUUV) immune individual, was selected against PUUV using the phage display technique. Panning was carried out with antigens immobilized by MAbs directed to the two PUUV envelope glycoproteins G1 and G2. Thirteen Fabs, with reactivity directed to PUUV and specifically the G2 protein, as assessed by immunofluorescence and ELISA respectively, were isolated in crude preparations. By a focus reduction neutralization test (FRNT), four of the 13 crude Fab preparations exhibited type-specific neutralization of PUUV (strain Sotkamo) with 44-54% reduction in the number of foci. After affinity purification, the four Fab clones exhibited 50% focus reduction of PUUV at concentrations below 2 microg/ml. Sequencing of the heavy and light chain complementarity determining regions (CDR) 1-3 showed that the four selected clones were identical within the antibody binding regions. In inhibition tests with the PUUV G2-specific MAbs, 4G2 and 1C9, a new epitope important for neutralization, designated as G2-a3, was defined. This epitope, overlapping partially the neutralizing epitope recognized by the human MAb 1C9, seems to be unique for the PUUV serotype since none of the Fab clones neutralized any of the other hantaviruses tested.

Amino Acid Sequence↗

Fine characterization of the antigenic site within the flap region in the protease protein of HIV-1.

The aspartate protease encoded by human immunodeficiency virus type 1 is essential for cleavage of the gag and gag-pol precursor proteins. The majority of HIV-1-antibody-positive sera react with the protease. In this study we used a substitution set of peptides for detailed characterization of the earlier defined antigenic site (aa 44-58) within the central "flap" region, also important in the context of conformational flexibility during protease inhibitor binding. We found that isoleucine at position 54 was important for creating an antigenic site required for binding of anti-HIV-1 sera. The identification of structurally essential amino acids in the flap region of HIV-1 PR may have important implications in future development of antiviral drugs.

Enzyme-Linked Immunosorbent Assay↗

Immunoglobulin A responses to Puumala hantavirus.

Puumala hantavirus (PUUV) causes nephropathia epidemica (NE), a form of haemorrhagic fever with renal syndrome that occurs in northern and central Europe. The immunoglobulin A (IgA) response in NE patients was studied. The levels of total serum IgA in acute-phase samples from NE patients were found to be significantly elevated when compared with the levels in healthy controls. ELISAs for detection of the IgA1 and IgA2 responses against each PUUV structural protein (N, G1 and G2) were developed and evaluated. Sequential sera from NE patients (acute, convalescent, 2-year) and 10-20 year NE-convalescent sera were examined. Most patients developed detectable levels of IgA1 against N and G2, while the G1 responses were low or undetectable. Seven of nine 10-20 year sera contained virus-specific IgA1, which may indicate the prolonged presence of viral antigens after the initial infection. PEPSCAN analysis revealed several IgA-reactive antigenic regions in the N protein. Serum IgA and IgG was purified by affinity chromatography and examined by a virus-neutralization assay. Three of five sera from acute-phase NE patients contained neutralizing IgA1. The diagnostic potential of the PUUV-specific IgA1 response was evaluated. The N and G2 assays showed specificities of 100% with sensitivities of 91 and 84%, respectively, compared with an IgM mu-capture ELISA. Several NE patients, clinically diagnosed for acute PUUV infection, with borderline or undetectable levels of PUUV-specific IgM, were found to be highly positive for the presence of PUUV N-specific serum IgA1, proving the diagnostic value of IgA analysis as a complement to detection of IgM.

Antibodies, Viral↗

Salivary sIgA response in HIV-1 infection.

Local and systemic production of total and HIV-1 specific IgA was determined in whole saliva and serum from 45 HIV-1-infected individuals and 15 healthy controls. The antigenic domains important for sIgA and IgG binding, respectively, was investigated with epitope mapping using synthetic peptides of HIV-1 proteins. Decreased levels of total sIgA in saliva were found among patients with low CD4+ cell counts in advanced stages of acquired immunodeficiency. HIV-1 specific IgA response, predominantly directed to the envelope proteins, was found in saliva and serum also at later stages of disease. Analyses using peptide enzyme-linked immunosorbent assays (ELISA) showed that the sIgA antibody response in saliva was mainly directed to the V4 region (aa 385-409) and a more C-terminal part of the V3-region (aa 325-344) compared with the IgG response, which predominantly was directed to a more central part of the V3 loop (aa 308-325). A similar picture was seen for immunoglobulins of the two isotypes derived from serum. We have in this study shown IgA epitope-specific immune response within HIV-1 gp160, indicating that antibodies of IgA isotype may recognize somewhat different antigenic domains compared to IgG antibodies.

Acquired Immunodeficiency Syndrome↗

Fine characterization of a V3-region neutralizing epitope in human immunodeficiency virus type 2.

We have previously identified two distinct antigenic sites in the third variable region (V3) of human immunodeficiency virus type 2 (HIV-2) corresponding to the principal neutralizing determinant (PND) of HIV-1, the conserved Phe-His-Ser-Gln and Trp-Cys-Arg motifs (positions 315-318 and 329-331), which possibly interact to form a discontinuous antigenic site. The aim of this study was to further identify and characterize the immunogenic sites in the V3-loop of HIV-2 that are important in the binding of neutralizing antibodies and to study in detail the importance of different configurations of peptides corresponding to this region. Peptides representing modifications of the V3-region of HIV-2(SBL6669-ISY) were used for immunization of guinea pigs. With one exception, both the Phe-His-Ser-Gln and the Trp-Cys-Arg motifs were required in the peptide sequences to obtain neutralizing hyperimmune guinea pig sera, and the highest titers were obtained after immunization with 20-27 amino acids (aa) long peptides. Neither substitutions nor deletions of residues between the two motifs, nor the addition of peptide sequences representing a T-helper epitope improved the induction of neutralizing antibodies. Computer simulation modeling revealed that the Phe-315, His-316, Trp-329 and Cys-330 are likely to participate in the formation of a discontinuous epitope. Taken together, these data support the hypothesis that the well conserved motifs FHSQ (positions 315-318) and WCR (positions 329-331) of the HIV-2(SBL6669) V3 region are important targets for neutralizing antibodies, and this may have implications for the design of a future HIV-2 vaccine.

Amino Acid Motifs↗

Characterization of neutralizing sites in the second variable and fourth variable region in gp125 and a conserved region in gp36 of human immunodeficiency virus type 2.

Several determinants of human immunodeficiency virus (HIV) have been suggested to harbor sites important for neutralization. The third variable region (V3) of the envelope glycoprotein (gp) is an important neutralizing determinant for both serotypes of HIV. The localization of additional neutralizing regions is an urgent task because the virus appears to mutate to phenotypes that escape neutralizing antibodies. Therefore, we have focused on the possibility of finding other immunodominant regions in the envelope glycoproteins of human immunodeficiency virus type 2 (HIV-2). By immunization of guinea pigs with peptides corresponding to different selected regions of gp125 and gp36, we have found three antigenic determinants located in the V2 and V4 regions of the envelope protein gp125, and one region in the glycoprotein gp36, which are important for human antibody binding and also as targets for neutralization. The peptide representing the V2 region had the most pronounced capacity to induce neutralizing anti-HIV-2 antibodies in guinea pigs. Neutralizing activity was also detected in an antipeptide guinea pig sera representing a linear site in gp36, amino acids 644-658. A substitution set of peptides representing the conserved antigenic site in the central part of gp36 was used to identify the role of individual amino acids important for human antibody binding.

Amino Acid Sequence↗

Primary human immunodeficiency virus type 2 (HIV-2) isolates, like HIV-1 isolates, frequently use CCR5 but show promiscuity in coreceptor usage.

Coreceptor usage of primary human immunodeficiency virus type 1 (HIV-1) isolates varies according to biological phenotype. The chemokine receptors CCR5 and CXCR4 are the major coreceptors that, together with CD4, govern HIV-1 entry into cells. Since CXCR4 usage determines the biological phenotype for HIV-1 isolates and is more frequent in patients with immunodeficiency, it may serve as a marker for viral virulence. This possibility prompted us to study coreceptor usage by HIV-2, known to be less pathogenic than HIV-1. We tested 11 primary HIV-2 isolates for coreceptor usage in human cell lines: U87 glioma cells, stably expressing CD4 and the chemokine receptor CCR1, CCR2b, CCR3, CCR5, or CXCR4, and GHOST(3) osteosarcoma cells, coexpressing CD4 and CCR5, CXCR4, or the orphan receptor Bonzo or BOB. The indicator cells were infected by cocultivation with virus-producing peripheral blood mononuclear cells and by cell-free virus. Our results show that 10 of 11 HIV-2 isolates were able to efficiently use CCR5. In contrast, only two isolates, both from patients with advanced disease, used CXCR4 efficiently. These two isolates also promptly induced syncytia in MT-2 cells, a pattern described for HIV-1 isolates that use CXCR4. Unlike HIV-1, many of the HIV-2 isolates were promiscuous in their coreceptor usage in that they were able to use, apart from CCR5, one or more of the CCR1, CCR2b, CCR3, and BOB coreceptors. Another difference between HIV-1 and HIV-2 was that the ability to replicate in MT-2 cells appeared to be a general property of HIV-2 isolates. Based on BOB mRNA expression in MT-2 cells and the ability of our panel of HIV-2 isolates to use BOB, we suggest that HIV-2 can use BOB when entering MT-2 cells. The results indicate no obvious link between viral virulence and the ability to use a multitude of coreceptors.

HIV-2↗

Identification of cross-reactive antigenic target regions for HIV type 1-specific antibody-dependent cellular cytotoxicity.

Monkey-derived hyperimmune antisera against 40 peptides, together representing the entire envelope gp120 of HIV-1LAI, were used to map antibody-dependent cellular cytotoxicity (ADCC) target regions. Four regions corresponding to amino acids 65-126, 152-230, 248-330, and 445-466 were found to contain epitopes inducing ADCC activity not only against HIV-1LAI-infected cells but also against cells infected with HIV-1SF2 and clinical isolates of HIV-1. When comparing seroreactivity to the individual peptides with ADCC titers none of the regions seemed to be dominant. These results thus describe cross-reactive regions involved in the functional immunity against HIV-1 gp120.

Amino Acid Sequence↗

Two neutralizing domains in the V3 region in the envelope glycoprotein gp125 of HIV type 2.

The purposes of this study were to map the targets for neutralizing Abs in the HIV-2 glycoproteins with particular emphasis on the role of the V3 region. Sera obtained from guinea pig immunized with peptides representing five immunogenic regions of the envelope proteins were used in cross-neutralization experiments with nine HIV-2 isolates. Broad cross-neutralizing activity was elicited by immunization with two peptides representing the central and COOH-terminal portions of the HIV-2 V3 loop. Murine mAbs were established from animals immunized with two corresponding overlapping peptides. Six mAbs showed neutralizing activity against the homologous virus isolate SBL-6669. Peptide absorption experiments were performed to define the target regions for human neutralizing Abs in the HIV-2 envelope glycoproteins. A significant blocking of neutralizing activity of five HIV-2 Ab-positive sera was seen in the presence of two peptides corresponding to the V3 region. Two overlapping deletion sets of peptides, representing amino acids Ser311 and Arg337, were used to identify the role of individual HIV-2 V3 amino acids in the binding of polyclonal and mAbs. Two distinct antigenic sites were identified in this region, the first corresponding to a region including the conserved motif Phe-His-Ser (amino acid 315-317) and the second in proximity of the COOH-terminal cysteine Trp-Cys-Arg (amino acid 329-331). Potentially these two sites can interact to represent a single discontinuous antigenic site. Taken together, these results indicate that V3 is an important neutralizing domain of HIV-2.

Amino Acid Sequence↗

Long-standing protection of macaques against cell-free HIV-2 with a HIV-2 iscom vaccine.

We investigated the capacity of two immunostimulating-complex (iscom) formulations including inactivated native HIV-2 viral proteins and selected peptides to induce protective immunity against HIV-2 in a nonhuman primate. Four cynomolgus monkeys were first immunized with five i.m. injections of purified detergent-disrupted HIV-2 virions (total dose, 0.7 mg) in iscoms over a period of 16 months. At months 18 and 20, all four macaques were given booster immunizations with iscom-coupled V3-derived synthetic peptides representing a dominating neutralizing region of HIV-2 gp125. Two weeks after the final dose of vaccine, the four vaccinated animals, together with four controls, were challenged i.v. with 10 monkey infectious doses (MID50) of monkey-cell-grown homologous cell-free virus, HIV-2SBL-6669/H5. After the challenge, the four control animals became readily infected; however, three of four vaccinated animals were protected as shown by repeated negative virus isolations and negative polymerase chain reaction for viral DNA and by failure to transmit HIV-2 infection with whole blood and lymph node cells into naive cynomolgus macaques. One of three protected animals showed an anamnestic antibody response to a dominating antigenic site, indicating possible limited virus replication. The vaccine-protected monkeys were subsequently resistant to rechallenge infection at 12, 15, and 18 months after the first challenge, suggesting that a reasonable duration of protective immunity had been induced by the vaccine.

AIDS Vaccines↗

Autologous neutralizing antibodies prevail in HIV-2 but not in HIV-1 infection.

Human immunodeficiency virus type 2 (HIV-2) has been reported to be less pathogenic than HIV-1. We have investigated the capacity of sera from nine HIV-2-infected individuals to neutralize their own autologous virus. All nine HIV-2-infected individuals neutralized autologous virus with titers ranging between 20 and 320. In contrast, we have previously reported that most HIV-1-infected individuals lack such antibodies. The difference between HIV-1 and HIV-2 infection was statistically significant (P < 0.0002, Pearson test) and the difference in neutralizing antibody prevalence may explain the faster disease progression in HIV-1-infected individuals than in HIV-2-infected individuals.

HIV Antibodies↗

Identification of four antibody-binding sites in the envelope proteins of simian immunodeficiency virus, SIVsm.

OBJECTIVE: To identify antigenic regions in the envelope glycoproteins of the simian immunodeficiency virus isolate, SIVsm. METHODS: Thirty-eight peptides were synthesized and used in site-directed enzyme-linked immunosorbent assays with sera from experimentally infected macaques. RESULTS: Four antibody-binding regions were identified, corresponding to the second variable region [V2; amino acids (aa) 170-196], the region homologous to V3 in HIV-1 (aa 313-346), the carboxy terminus of gp120 (aa 514-537) and the amino terminus of the transmembrane protein (aa 608-638). Serum reactivity to the V2 region was higher in surviving monkeys than in animals with an early development of simian AIDS. The antigenicity of the peptide appears to be conformationally dependent. CONCLUSIONS: The majority of antigenic sites identified in the envelope proteins of SIV correspond to sites identified in HIV-1 and HIV-2, which further supports the use of the simian model in vaccine development. The pattern of reactivity to the V2 region suggests that absence of antibodies directed to this site might correlate with disease progression.

Amino Acid Sequence↗

Two highly antigenic sites in the human immunodeficiency virus type 1 reverse transcriptase.

Antibodies to human immunodeficiency virus type 1 (HIV-1) reverse transcriptase (RT) are found in the serum of the majority of infected individuals, and inhibition of RT polymerase activity by HIV-1-positive sera can be demonstrated in vitro. The binding sites of human antibodies on the protein have not yet been identified. We synthesized overlapping peptides covering the entire RT protein of HIV-1 and used them in an enzyme-linked immunosorbent assay system to map the reactivities of HIV-1 and HIV-2 antibody-positive sera. Two highly antigenic regions were identified by both HIV serotypes. One region was found in the central part of the RT protein (amino acids 261 to 280) and another was found at the carboxy terminus in the RNase H portion of RT (amino acids 517 to 536). Comparison of the serological results with the crystal structure of the RT revealed that the antigenic region in the RNase H portion is located at the surface of the protein. The other antibody-binding site (amino acids 261 to 280) was located in the "thumb" region of the polymerase domain of RT. Polyclonal antibodies to either of the antibody-binding sites do not affect the polymerase activity of the RT protein.

Acquired Immunodeficiency Syndrome↗

Recombinant human Fab fragments neutralize human type 1 immunodeficiency virus in vitro.

A panel of 20 recombinant Fab fragments reactive with the surface glycoprotein gp120 of human type 1 immunodeficiency virus (HIV-1) were examined for their ability to neutralize MN and IIIB strains of the virus. Neutralization was determined as the ability of the Fab fragments to inhibit infection as measured in both a p24 ELISA and a syncytium-formation assay. One group of closely sequence-related Fab fragments was found to neutralize virus in both assays with a 50% neutralization titer at approximately 1 micrograms/ml. Another Fab neutralized in the p24 ELISA but not in the syncytium assay. The other Fab fragments showed weak or no neutralizing ability. The results imply that virion aggregation or crosslinking of gp120 molecules on the virion surface is not an absolute requirement for HIV-1 neutralization. Further, all of the Fab fragments were shown to be competitive with soluble CD4 for binding to gp120 and yet few neutralized the virus effectively, implying that the mechanism of neutralization in this case may not involve receptor blocking. The observation of a preponderance of high-affinity Fab fragments with poor or no neutralizing ability could have implications for vaccine strategies.

Amino Acid Sequence↗