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N Dunlop

Publications and source records attributed to N Dunlop.

13 recordsLinked to original sources

Efficient neutralization of primary isolates of HIV-1 by a recombinant human monoclonal antibody.

The ability of antibodies to neutralize diverse primary isolates of human immunodeficiency virus-type 1 in vitro has been questioned, with implications for the likely efficacy of vaccines. A recombinant human antibody to envelope glycoprotein gp120 was generated and used to show that primary isolates are not refractory to antibody neutralization. The recombinant antibody neutralized more than 75 percent of the primary isolates tested at concentrations that could be achieved by passive immunization, for example, to interrupt maternal-fetal transmission of virus. The broad specificity and efficacy of the antibody implies the conservation of a structural feature on gp120, which could be important in vaccine design.

AIDS Vaccines

In vitro evolution of a neutralizing human antibody to human immunodeficiency virus type 1 to enhance affinity and broaden strain cross-reactivity.

A method is described that allows for the improvement of antibody affinity. This method, termed complementary-determining region (CDR) walking, does not require structural information on either antibody or antigen. Complementary-determining regions are targeted for random mutagenesis followed by selection for fitness, in this case increased binding affinity, by the phage-display approach. The current study targets a human CD4-binding-site anti-gp120 antibody that is potently and broadly neutralizing. Evolution of affinity of this antibody demonstrates in this case that affinity can be increased while reactivity to variants of human immunodeficiency virus type 1 is broadened. The neutralizing ability of this antibody is improved, as assayed with laboratory and primary clinical isolates of human immunodeficiency virus type 1. The ability to produce human antibodies of exceptional affinity and broad neutralizing ability has implications for the therapeutic and prophylactic application of antibodies for human immunodeficiency virus type 1 infection.

Amino Acid Sequence

Construction of an HIV-1 peptide vaccine containing a multideterminant helper peptide linked to a V3 loop peptide 18 inducing strong neutralizing antibody responses in mice of multiple MHC haplotypes after two immunizations.

Peptide constructs comprised of multideterminant Th peptides from the envelope glycoprotein of HIV previously identified to induce proliferative responses in four different haplotypes of mice and IL-2 responses in 52 to 73% of HIV positive, Ag-responsive patients, were colinearly synthesized with the peptide 18 of the V3 loop of HIV-1 gp 160, corresponding to the principal neutralizing determinant of HIV-IIIB. The segments containing clusters of overlapping Th epitopes were called cluster peptides. Cognate help for peptide 18 antibody was elicited after a single immunization in all strains of mice that had previously responded to a T cell epitope encompassed by the cluster peptides. Animals boosted with cluster peptide-peptide 18 constructs 36 to 52 wk later displayed secondary antibody responses. Cluster peptide 3-peptide 18 induced antibody that neutralized homologous virus in one strain of mice although strong peptide 18 antibody responses were detected in all four strains of mice. The most promising construct, cluster peptide 6-peptide 18, induced neutralizing antibody in all strains of mice tested, and in two strains the level of neutralizing antibody achieved was comparable to levels adequate for protection from homologous viral challenge in chimpanzees. After a single boost, antibody titers for 90% neutralization in the range of 1/1000 to 1/16,000 were achieved. These neutralizing titers against the homologous viral strain, after just two immunizations, are at least four- to eightfold higher than the highest titered other polyclonal V3-specific immune sera we have ever observed in our laboratories. We also asked why some sera neutralized and others with similar ELISA titers did not. No correlation was found between neutralization and isotype or affinity for peptide or gp 120. We could not account for neutralization by antibodies to the helper sites. Substitutions made in the central loop region of peptide 18, amino acid residues PGRAF, dramatically reduced binding of both neutralizing and non-neutralizing sera although some fine specificity differences between neutralizing and nonneutralizing sera were noted. These results have implications for the design of synthetic peptide vaccines for HIV.

AIDS Vaccines

HIV experimental vaccines based on the iscom technology using envelope and GAG gene products.

In previous experiments gp160 incorporated into iscom was shown to induce neutralizing antibodies to the homologous as well as the heterologous isolates of HIV-1 (Akerblom et al., AIDS Res., 1991). In the present work we have incorporated into iscoms three defined recombinant DNA products of HIV-1. The carboxy-terminal part of gp120 expressed in E. Coli-PB-1; a chimera containing parts of both p24 and p15 expressed in E. coli-GAG; and baculovirus gp160 cloned in baculovirus and produced in insect cells. Immune responses were induced by the iscom preparations to the homologous antigen as well as to defined recombinant products and to the synthetic peptide RP135 (aa 304-328) harboring a neutralizing epitope. Sera from mice immunized with PB1-iscoms and gp160 (baculo) iscoms were tested in a syncytie inhibition assay. The serum from a mouse immunized with PB1 iscoms reacted strongly with the synthetic peptide RP135 and also neutralized the homologous isolate HIV-1/IIIB with a neutralization titer of 1/64. Three gp160 (baculo) iscom antisera were tested, of which two reacted strongly with the synthetic peptide RP135 but did not neutralize the homologous isolate HIV-1/IIIB. High serum titers were induced in mice by the gp160 iscoms (2 micrograms) to homologous antigen and the recombinant DNA E. coli construct p121 covering part of gp41. The ceilings of the antibody responses were reached after two immunizations. The PB1- and GAG-iscoms required three immunizations to reach the ceiling of the antibody response.

AIDS Vaccines

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

Native but not denatured recombinant human immunodeficiency virus type 1 gp120 generates broad-spectrum neutralizing antibodies in baboons.

The protection of individuals from human immunodeficiency virus type 1 (HIV-1) infection with an envelope subunit derived from a single isolate will require the presentation of conserved epitopes in gp120. The objective of the studies presented here was to test whether a native recombinant gp120 (rgp120) immunogen would elicit responses to conserved neutralization epitopes that are not present in a denatured recombinant gp120 antigen from the same virus isolate. In a large study of 51 baboons, we have generated heterologous neutralizing activity with native, glycosylated rgp120SF2 but not with denatured, nonglycosylated env 2-3SF2. After repeated exposure to rgp120SF2 formulated with one of several adjuvants, virus isolates from the United States, the Caribbean, and Africa were neutralized. The timing of the immunization regimen and the choice of adjuvant affected the virus neutralization titers both quantitatively and qualitatively. These results suggest that vaccination with native, glycosylated rgp120 from a single virus isolate, HIV-SF2, may elicit a protective immune response effective against geographically and sequentially distinct HIV-1 isolates.

AIDS Vaccines

Cross-neutralizing antibodies to HIV-1 in mice after immunization with gp160 iscoms. Dissection of the immune response.

Gp160 expressed in vaccinia and produced in vero cells was integrated into iscoms. Gp160 iscoms elicited a high serum antibody response in mice, and after two immunizations a ceiling was reached. The serum antibody response was dissected by the use of defined recombinant DNA products, representing different regions of the gp160 molecule. High antibody titers to the peptid RP135 (a.a. 296-332) correlated with induction of neutralizing serum antibodies. In some animals, gp160 (IIIB) iscoms elicited cross-neutralizing antibodies that also neutralized the distantly related RF isolate.

AIDS Vaccines

Emergence of viruses resistant to neutralization by V3-specific antibodies in experimental human immunodeficiency virus type 1 IIIB infection of chimpanzees.

Emergence in two chimpanzees of human immunodeficiency virus type 1 (HIV-1) IIIB variants resistant to neutralization by the preexisting antibody is described. Viruses isolated from the HIV-1 IIIB gp120-vaccinated and -challenged animal were more resistant to neutralization by the chimpanzee's own serum than viruses isolated from the naive infected animal, indicating immune pressure as the selective mechanism. However, all reisolated viruses were 16- to 256-fold more neutralization resistant than the inoculum virus to antibodies binding to the third variable domain (V3) of the HIV-1 external envelope. Early chimpanzee serum samples that neutralized the inoculum strain but not the reisolated viruses were found to bind an HIV-1 IIIB common nonapeptide (IQRGPGRAF) derived from the gp120 isolate-specific V3 domain shown to induce isolate-specific neutralization in other animals. Amplification of the V3 coding sequence by polymerase chain reaction and subsequent sequence analysis of the neutralization-resistant variants obtained from in vivo-infected animals indicated that early resistance to neutralization by an HIV-1 IIIB monoclonal antibody (0.5 beta) was conferred by changes outside the direct binding site for the selective neutralizing antibody. The reisolated neutralization-resistant isolates consisted of the lower-replication-competent virus subpopulations of the HIV-1 IIIB stock, as confirmed by biological and sequence analyses. In vitro passage of the HIV-1 IIIB stock through chimpanzee and human peripheral blood mononuclear cell cultures void of HIV-specific antibody resulted in homogenic amplification of the more-replication-competent subpopulation preexisting in the original viral stock, suggesting a role for the immune system in suppressing the more-replication-competent viruses.

Acquired Immunodeficiency Syndrome

Evidence for rapid selection and deletion of HIV-1 subpopulations in vivo by V3-specific neutralizing antibody: a model of humoral-associated selection.

Emergence in two chimpanzees of HIV-1 HTLV-IIIB variants resistant to neutralization by the pre-existing antibody is described. Viruses isolated from the HTLV-IIIB gp120 vaccinated and challenged animal were more resistant to neutralization, had more heterogenic genomes and showed more pronounced antigenic drift as determined by serotypic neutralization analysis than viruses isolated from the naive infected animal, indicating immune pressure as the selective mechanism. The earliest selecting antibody population detected in the chimpanzees appeared to be conformationally dependent. This was demonstrated by its ability to neutralize only the most replication-competent sub-populations of the HTLV-IIIB inoculum strain, yet was found to bind a HTLV-IIIB common nonapeptide (IQRGPGRAF) derived from the gp120 isolate-specific 3rd variable domain (V3) also known to induce isolate-specific neutralization in multiple species. Each of the recovered isolates had become resistant to neutralization by both a monoclonal (0.5 beta) and polyclonal HTLV-IIIB gp120 V3-specific antibody by as much as 16 to 256-fold. Amplification of the V3 coding sequence by polymerase chain reaction and subsequent sequence analysis of the neutralization-resistant variants obtained from in vivo infected animals indicated that resistance to neutralization was conferred by changes outside the direct binding site for the selective neutralizing antibody. Further studies indicated that apparent neutralization-resistant variants, yielded after in vitro passage through chimpanzee and human peripheral blood mononuclear cell cultures void of HIV-specific antibody, result from the homogenic amplification of the more replication competent sub-population pre-existing in the original viral stock. These faster replicating sub-populations appear to dominate initially and therefore are the initial prime targets recognized by the chimpanzee humoral immune system upon infection in vivo and thus eliminated. The described finding of virus escape due to a conformationally-induced flexibility of the major neutralization epitope termed "conformational-V3 hypervariability", coupled to the known primary amino acid hypervariability of this epitope (V3) termed "linear-V3 hypervariability", may be all that is required by the virus to survive in an otherwise effective humoral immune system.

Amino Acid Sequence

Heat-labile, complement-like factor(s) of animal sera prevent(s) HIV-1 infectivity in vitro.

We studied inactivation of HIV-1 by fresh sera of animals. We found that while fresh sera of humans and chimpanzees (among others) did not have antiviral activity, fresh sera of several other mammals, especially those of rodents and felines, showed a dose-dependent viral-inactivating property against cell-free HIV-1; these sera were also capable of inactivating virus preadsorbed to cells, similar to neutralizing antibody. The activity was destroyed by heating to 56 degrees C, required Ca2+ but no antiviral antibody, and therefore apparently involves the classical complement pathway. The activity could not be ascribed to any single fraction of sera separated on a size exclusion HPLC column. Mouse serum (the only one tested) also inactivated HIV-2. The data are consistent with classical C-mediated pathway inactivation of HIV-1 and HIV-2 by animal sera and is the first report of any "complement-like" antilentiviral serum factor. Elucidation of this mechanism may aid in understanding the lack of activity of human serum against HIV-1 and may prove useful in combined interventive strategies against HIV-1.

Animals