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Biomedical subjects

H Stoiber

Publications and source records attributed to H Stoiber.

At least 37 records · Page 2Linked to original sources

Involvement of adenylate cyclase and p70(S6)-kinase activation in IL-10 up-regulation in human monocytes by gp41 envelope protein of human immunodeficiency virus type 1.

Our previous results show that recombinant gp41 (aa565-647), the extracellular domain of HIV-1 transmembrane glycoprotein, stimulates interleukin-10 (IL-10) production in human monocytes. The signal cascade transducing this effect is not yet clear. In this study, we examined whether gp41-induced IL-10 up-regulation is mediated by the previously described synergistic activation of cAMP and NF-kappaB pathways. gp41 induced cAMP accumulation in monocytes in a time- and concentration-dependent manner and the adenylate cyclase inhibitor SQ 22536 suppressed gp41-induced IL-10 production in monocytes. In contrast, gp41 failed to stimulate NF-kappaB binding activity in as much as no NF-kappaB bound to the main NF-kappaB-binding site 2 of the IL-10 promoter after addition of gp41. We also examined the involvement of other signal transduction pathways. Specific inhibitors of p70(S6)-kinase (rapamycin), and Gi protein (pertussis toxin), prevented induction of IL-10 production by gp41 in monocytes, while inhibitors of the phosphatidylinositol 3-kinase (PI 3-kinase) (wortmannin) and mitogen-activated protein kinase (MAPK) pathway (PD 98059) did not. Thus HIV-1 gp41-induced IL-10 up-regulation in monocytes may not involve NF-kappaB, MAPK, or PI 3-kinase activation, but rather may operate through activation of adenylate cyclase and pertussis-toxin-sensitive Gi/Go protein to effect p70(S6)-kinase activation.

Adenylate Cyclase Toxin↗

Human immunodeficiency virus type 1 derived from cocultures of immature dendritic cells with autologous T cells carries T-cell-specific molecules on its surface and is highly infectious.

During the budding process, human immunodeficiency virus type 1 (HIV-1) acquires cell surface molecules; thus, the viral surface of HIV-1 reflects the antigenic pattern of the host cell. To determine the source of HIV-1 released from cocultures of dendritic cells (DC) with T cells, immature DC (imDC), mature DC (mDC), T cells, and their cocultures were infected with different HIV-1 isolates. The macrophage-tropic HIV-1 isolate Ba-L allowed viral replication in both imDC and mDC, whereas the T-cell-line-tropic primary isolate PI21 replicated in mDC only. By a virus capture assay, HIV-1 was shown to carry a T-cell- or DC-specific cell surface pattern after production by T cells or DC, respectively. Upon cocultivation of HIV-1-pulsed DC with T cells, HIV-1 exclusively displayed a typical T-cell pattern. Additionally, functional analysis revealed that HIV-1 released from imDC-T-cell cocultures was more infectious than HIV-1 derived from mDC-T-cell cocultures and from cultures of DC, T cells, or peripheral blood mononuclear cells alone. Therefore, we conclude that the interaction of HIV-1-pulsed imDC with T cells in vivo might generate highly infectious virus which primarily originates from T cells.

Antigen Presentation↗

Increased levels of antibodies against interferon-alpha in HIV-1 positive individuals may be explained by a common immunological epitope on the human interferon-alpha and HIV-1 gp41.

Based on the similar effects of HIV-1 gp41 and human type I interferons on inhibition of lymphocyte proliferation and modulation of MHC class I and II molecule expression, we compared amino acid sequences of human interferons with HIV-1 gp41 and found sequence-similarity existing between gp41 and IFN-alpha. Anti-gp41-antibodies affinity-purified from sera of HIV-1-infected individuals (stage A) using rsgp41-Sepharose column could recognize human IFN-alpha in ELISA, but no antibody against IFN-alpha was detected if immunoglobulins were prepared in the same way from pooled HIV-negative serum. Besides, a sheep polyclonal anti-human IFN-alpha antibody bound weakly to recombinant soluble gp41 (rsgp41) of HIV-1IIIB. These results indicate that gp41 may share an immunological epitope with IFN-alpha. We examined 40 sera from healthy and asymptomatic HIV-1-infected individuals and AIDS-patients for IFN-alpha antibody levels by ELISA. The levels of anti-IFN-alpha antibody in sera from asymptomatic HIV-infected individuals (stage A, n = 6) was increased by about 150% in comparison with HIV-negative, but the antibody levels were obviously reduced in the case of symptomatic HIV-infected individuals (stage B, n = 7) and AIDS-patients (stage C, n = 7) in comparison with asymptomatic HIV-infected individuals (stage A). We suppose that the increased IFN-alpha-antibody level in HIV-1-infected individuals (stage A) may be due to this common immunological epitope and cross-reaction of antibodies to HIV-1 gp41 with IFN-alpha.

Acquired Immunodeficiency Syndrome↗

Role of IL-15 in HIV-1-associated hypergammaglobulinaemia.

IL-15 is a novel cytokine, produced by monocytes/macrophages, with biological activities similar to IL-2 but with no significant sequence homology. IL-15 also stimulates human B cells to proliferation and immunoglobulin secretion. We measured serum levels of IL-15 in 84 HIV-1-infected individuals at different stages of disease in reference to 41 healthy blood donors. Our results show a marked elevation of IL-15 serum levels during HIV-1 infection. Moreover, we found that this increase correlated with serum levels of IgG (r = 0.376, P < 0.0001), and partly with serum IgM (r = 0.265, P = 0.015). A significant increase of IL-15 production by cultured peripheral blood mononuclear cells (PBMC) and purified monocytes in the presence of HIV-1 virus suggests that monocytes/macrophages may be a source of higher IL-15 serum levels in HIV-1-infected individuals. These findings indicate a participation of IL-15 in the hypergammaglobulinaemia frequently associated with HIV-1 infection.

Cells, Cultured↗

Human immunodeficiency virus type 1 gp41 binds to Candida albicans via complement C3-like regions.

Oral candidiasis in human immunodeficiency virus type 1 (HIV-1)-infected persons is believed to be caused by the acquired T lymphocyte immunodeficiency. The direct interaction of C. albicans and HIV-1 in vitro was investigated. Twice as many yeasts adhered to cells transfected with the HIV-1 env gene as they did to controls. HIV-1 rsgp160 and rsgp41 but not rsgp120 were found to bind to Candida albicans via two C3-like regions within gp41. Normal human serum, but not C3-depleted serum, was able to inhibit rsgp41 binding to C. albicans. Vice versa, rsgp160 and rsgp41 were able to block rosetting of C. albicans with iC3b-coated sheep erythrocytes. Binding to C. albicans, and its inhibition by rsgp41 or rsgp160, was confirmed for the whole virus. Therefore, oral candidiasis in HIV-1-infected subjects may be augmented or may even be initiated by direct interaction between C. albicans and HIV-1 or HIV-1-infected cells.

Amino Acid Sequence↗

The 222- to 234-kilodalton latent nuclear protein (LNA) of Kaposi's sarcoma-associated herpesvirus (human herpesvirus 8) is encoded by orf73 and is a component of the latency-associated nuclear antigen.

Kaposi's sarcoma (KS)-associated herpesvirus or human herpesvirus 8 (KSHV/HHV8) is the likely cause of KS and primary effusion lymphomas or body cavity-based lymphomas (BCBLs). A latency-associated nuclear immunofluorescence antigen (LANA) (D. H. Kedes, E. Operskalski, M. Busch, R. Kohn, J. Flood, and D. Ganem, Nat. Med. 2:918-924, 1996; S. J. Gao, L. Kingsley, M. Li, W. Zheng, C. Parravicini, J. Ziegler, R. Newton, C. R. Rinaldo, A. Saah, J. Phair, R. Detels, Y. Chang, and P. S. Moore, Nat. Med. 2:925-928, 1996) and a 222- to 234-kDa nuclear protein (LNA) (S. J. Gao, L. Kingsley, D. R. Hoover, T. J. Spira, C. R. Rinaldo, A. Saah, J. Phair, R. Detels, P. Parry, Y. Chang, and P. S. Moore, N. Engl. J. Med. 335:233-241, 1996) have previously been described in BCBL cell lines by immunofluorescence and Western blotting techniques, respectively. To identify the viral gene(s) encoding this antigen(s) we screened a cDNA library from HBL-6 cells, a B-cell lymphoma cell line persistently infected with KSHV/HHV8, with KS patient sera. One set of positive clones contained the 3' end of orf73, as well as the complete orf72 and orfK13, and another set contained the 5' end of orf73. Comparison of cDNA sequences with the KSHV/HHV8 genomic sequence revealed a splice event, occurring upstream of orf73. Immunoaffinity purified antibodies to a recombinant carboxy-terminal fragment of the orf73-encoded protein showed the characteristic speckled nuclear immunofluorescence pattern of LANA and reacted with the 222- to 234-kDa LNA on Western blots. Expression of full-length orf73 in bacteria and COS7 cells reproduced the LNA banding pattern. Immunohistochemistry on cases of nodular KS revealed that orf73/LNA is expressed in the nucleus of KS spindle cells. These findings demonstrate that orf73 encodes the 222- to 234-kDa LNA, is a component of LANA, and is expressed in KS tumor cells.

Animals↗

Role of complement in HIV infection.

In human plasma, HIV activates the complement system, even in the absence of specific antibodies. Complement activation would, however, be harmful to the virus if the reactions were allowed to go to completion, since their final outcome would be virolysis. This is avoided by complement regulatory molecules, which either are included in the virus membrane upon budding from the infected cells (e.g. DAF/CD55) or are secondarily attached to HIV envelope glycoproteins as in the case of factor H. By using this strategy of interaction with complement components, HIV takes advantage of human complement activation for enhancement of infectivity, for follicular localization, and for broadening its target cell range at the same time that it displays an intrinsic resistance against the lytic action of human complement. This intrinsic resistance to complement-mediated virolysis can be overcome by monoclonal antibodies inhibiting recruitment of human factor H to the virus surface, suggesting a new therapeutic principle.

AIDS Vaccines↗

Efficient destruction of human immunodeficiency virus in human serum by inhibiting the protective action of complement factor H and decay accelerating factor (DAF, CD55).

Activation of the human complement system leads to complement deposition on human immunodeficiency virus (HIV) and HIV-infected cells without causing efficient complement-mediated lysis. Even in the presence of HIV-specific antibodies, only a few particles are destroyed, demonstrating that HIV is intrinsically resistant to human complement. Here we report that, in addition to decay accelerating factor (DAF) being partially responsible, human complement factor H (CFH), a humoral negative regulator of complement activation, is most critical for this resistance. In the presence of HIV-specific antibodies, sera devoid of CFH (total genetic deficiency or normal human serum depleted of CFH by affinity chromatography) lysed free virus and HIV-infected but not uninfected cells. In the presence of CFH, lysis of HIV was only obtained when binding of CFH to gp41 was inhibited by a monoclonal antibody against a main CFH-binding site in gp41. Since CFH is an abundant protein in serum, and high local concentration of CFH can be obtained at the surface of HIV as the result of specific interactions of CFH with the HIV envelope, it is proposed that the resistance of HIV and HIV-infected cells against complement-mediated lysis in vivo is dependent on DAF and CFH and can be overcome by suppressing this protection. Neutralization of HIV may be achieved by antibodies against DAF and, more importantly, antibodies against CFH-binding sites on HIV envelope proteins.

Acquired Immunodeficiency Syndrome↗

A "complement-ary" AIDS vaccine.

The human immunodeficiency virus uses the human complement system to its advantage. Is it possible to turn the tables with a vaccine?

AIDS Vaccines↗

Acquisition of host cell-surface-derived molecules by HIV-1.

OBJECTIVE: To determine the acquisition of host cell-membrane-derived molecules by HIV-1 during the budding process, and to investigate whether the uptake of these molecules is cell-type-specific and selective. DESIGN: Virions, propagated by four different cell types were analysed for the presence of adhesion molecules, glycosylphosphatidylinositol (GPI)-anchored proteins and various cell-surface markers. The pattern was compared with the phenotype of the HIV-1-infected cell. METHODS: For phenotypic analysis of virions a two-step assay was used. In the first step, virus was captured with monoclonal antibodies (in some cases polyclonal sera) against different cell-membrane proteins. In a second step, the presence of virus was measured by determining the concentration of the virus-specific p24 core antigen. The expression of surface molecules on uninfected and HIV-1IIIB-infected cells was analysed by FACS. RESULTS: Depending on the cell type used for virus propagation, different cell-membrane molecules were found on the virus surface reflecting the corresponding cell type. The uptake of these molecules was selective to a certain degree. No CD4 and CD87 molecules were detectable on HIV-1, although both molecules were present on uninfected and HIV-1-infected cells. CR3 and CDw108 could not be seen on uninfected cells, but wre detectable on infected cells and virions. CONCLUSIONS: During the budding process HIV-1 acquires a variety of cell-type-specific cell-surface molecules. Certain cell-membrane molecules become upregulated during HIV-1-infection and are then found on virions, whereas other molecules remain on the cell surface and do not become incorporated.

Cell Line↗

The human immunodeficiency virus type 1 transmembrane gp41 protein is a calcium-binding protein and interacts with the putative second-receptor molecules in a calcium-dependent manner.

Fusion is a crucial event in the life cycle of the human immunodeficiency virus (HIV); is is initiated by the high-affinity binding between gp120, the external surface glycoprotein of HIV-1, and the differentiation antigen CD4 and finally results in the insertion of the hydrophobic amino terminus of the gp41 envelope glycoprotein into the plasma membrane of the target cell. Recent results suggest that this process is dependent upon calcium ions, but the mechanism or the proteins involved are not understood. Computer-assisted sequence analysis revealed a putative calcium-binding site within the extracellular part of gp41 that was highly reminiscent of the calcium-binding EF-hand structure. To test this hypothesis, calcium-binding experiments were performed. Binding of a recombinant soluble form of the transmembrane protein (rsgp41) to its putative second-receptor molecules in equilibrium was dependent upon calcium. The affinity was not influenced by calcium, but the maximum binding was increased in a dose-dependent manner. Radioactive calcium bound to rsgp41 covalently attached to Sepharose but not to bovine serum albumin. Binding was inhibited by the addition of nonradioactive calcium, indicating that binding was specific. Neither magnesium nor manganese inhibited the binding of labeled calcium to rsgp41. Binding was dependent on the oxidative state of the rsgp41 molecule, suggesting the functional importance of the correctly folded structure of the rsgp41 protein. In this report, we demonstrate that the HIV-1 transmembrane protein gp41 is a calcium-binding protein and interacts with the putative second-receptor molecules in a calcium-dependent manner.

Amino Acid Sequence↗

HIV-1 rsgp41 depends on calcium for binding of human c1q but not for binding of gp120.

Human immunodeficiency virus type 1 activates the complement cascade via the classical pathway by direct binding of C1q through specific sites in the TM surface protein, gp41. In this paper we investigated the divalent cation dependence of the interaction between HIV-1 gp41 and C1q or gp120. A solid phase radioimmunoassay was used to investigate the interaction between a recombinant soluble form of HIV-1 gp41 (rsgp41) and C1q and an enzyme linked immunoassay was used to investigate the interaction between rsgp41 and gp120. The interaction between C1q and rsgp41, but not between C1q and immune complexes, was dependent upon the presence of calcium. Calcium could not be replaced by larger cations such as strontium, barium, lead or smaller ions such as magnesium and manganese. Zinc increased binding to 22% of binding achieved with calcium. The interaction between rsgp41 and gp120 was not dependent upon the presence of divalent ions. Thus, calcium is required for the interaction between rsgp41 and C1q, whereas the interaction between rsgp41 and gp120 is independent of divalent cations.

Calcium↗

Sera from HIV-1 infected individuals in all stages of disease preferentially recognize the V3 loop of the prototypic macrophage-tropic glycoprotein gp120 ADA.

The outer membrane glycoprotein gp120 and the transmembrane glycoprotein gp41 are predominant targets of the humoral immune response to infection by human immunodeficiency virus type 1. The third hypervariable region (V3 loop) is the principal neutralizing domain and is the primary target of neutralizing antibodies directed against the envelope proteins of HIV-1. The V3 loop is also the major determinant for HIV-1 cell-specific tropism. To further characterize the humoral immune response directed against the gp120 envelope proteins, we expressed two prototypic gp120 envelope proteins (LAI/HXB2 and ADA) and chimeric gp120 envelope proteins in stable transfected Drosophila melanogaster Schneider 2 cells. Sera from four infected adults over the course of infection [McNearney et al. (1992) Proc. natn. Acad. Sci. U.S.A. 89, p. 10,242] were assayed for reactivity with the respective envelope proteins. Sera obtained at early stages preferentially recognized the gp120 envelope protein ADA, whereas in later stages of infection the sera showed diminished reactivity with both gp120 LAI/HXB2 and gp120 ADA. Chimeric envelope proteins revealed that the humoral response was directed primarily against the V3 loop of gp120 ADA. Furthermore, 22 sera from HIV-1 infected individuals in different stages of the disease were tested. Reactivity of sera with the gp120 envelope protein ADA was seven-fold higher than with the gp120 envelope protein LAI/HXB2. Our results suggest that the humoral immune response is preferentially elicited against the V3 loop of the prototypic macrophage-tropic gp120 envelope protein ADA.

Adult↗

Human complement proteins C3b, C4b, factor H and properdin react with specific sites in gp120 and gp41, the envelope proteins of HIV-1.

Recently we reported the basic phenomenon of an interaction between the envelope glycoproteins of HIV-1 gp120 and gp41 and components of the human complement system, i.e. activated C4 (C4b) and activated C3 (C3b) and the complement regulator proteins factor H and properdin. In this study we analyze these interactions in detail. Using 46 overlapping peptides of gp120 attached to microtiter plates, binding of activated human C3 to 6 regions in gp120 was found (aa 100-129, 161-190, 231-250, 301-328, 410-449, 470-499). In competition assays with soluble peptides, representatives of four of these regions were capable to partially inhibit C3b binding to immobilized gp120. Activated human C4 interacted only with peptides covering aa 410-449, but both in direct binding assays and fluid phase inhibition studies. The multi-reactivity of gp120 with C3b was also supported by the fact that gp120 agglutinated erythrocytes coated with C3b. Guided by partial aa sequence homology of gp120 and human C4b binding protein (C4bp) as well as human properdin we detected binding of anti-properdin to aa 100-129 in gp120 and of anti-C4bp to aa 410-449 in gp120. This cross-reactivity was also confirmed by a monoclonal antibody directed against aa 416-443 of gp120, which could be shown to bind C4bp. Interestingly, aa 310-328, part of the V3-loop, were found to show an aa sequence similarity to human complement receptor type 3 (alpha-chain). Consequently, of the 4 (or possibly 6) interaction sites of gp120 with activated human C3, 3 may bind due to imitation of either properdin, CR3 or C4bp. In addition to C4b and C3b, we detected interaction of factor H with gp120; it selectively bound to aa 102-129. Using 14 overlapping peptides of gp41 attached to plates, we identified 4 areas in gp-41 (aa 561-585, 587-605, 615-635, 651-675) which bound human factor H. All of them except the first region partially inhibited factor H binding to gp41 in competition assays with soluble peptides. Properdin bound only to 2 regions (aa 584-614, 651-675). The first 3 sites in gp41 were already shown by us to share homology to sites in human C3. The region around aa 651-675 now also turned out to be similar to human C3. These data demonstrate that the interaction of both, gp120 and gp41, with the complement system is polyvalent and complex.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗

Interaction of several complement proteins with gp120 and gp41, the two envelope glycoproteins of HIV-1.

OBJECTIVE: To study the binding of human complement proteins to gp41 and gp120 of HIV-1. METHODS: The interaction of complement proteins with gp41 and gp120 and their effect on the gp41-gp120 complex in enzyme-linked immunosorbent assays (ELISA) and on stably transfected Schneider-2 cells expressing a gp41-gp120 complex was investigated. The molecular basis of these interactions was analysed by computer-supported sequence analysis. RESULT: gp41 strongly binds human complement regulatory proteins factors H and properdin, and weakly binds factors I and B. The binding occurs with recombinant soluble (rs) gp41 fixed on ELISA plates as well as gp41-gp120 complex expressed on Schneider-2 cells. The basis for this binding potential might be an amino-acid (aa) sequence of gp41 displaying homologies to sites in human C3. rgp120 also binds C3(H2O), a C3b-like form of C3, and C4b. These binding features of gp120 can be explained by homology of constant region (CR) 4 in gp120 to sites in C4b binding protein. Additionally, CR1 in gp120 exhibits a weak similarity to human properdin. Preincubation of rsgp41 with either factor H or properdin, and of rgp120 with C3b or C4b affected the interaction between rsgp41 and rgp120. Incubation of Schneider-2 cells, expressing a functional gp41-gp120 complex, with factor H reduced the detectable amount of gp120. This effect was similar to that induced by soluble CD4. CONCLUSION: These results strongly suggest that HIV-1 envelope proteins interact with human complement proteins. Additionally, C3b-like features of gp41 and the C3b/C4b binding structures in gp120 may affect the non-covalent association between gp41 and gp120.

Amino Acid Sequence↗

Interaction of complement and specific antibodies with the external glycoprotein 120 of HIV-1.

Previously we have investigated the interaction of human complement as well as one polyclonal and three human monoclonal antibody preparations with the human immunodeficiency virus type-1 (HIV-1) transmembrane recombinant glycoprotein (rgp41). A strong competition was found between the antibodies and deposited complement proteins for the same binding sites located within the immunodominant region of rgp41. The aim of the present experiments was to see if the same type of antibody-complement-HIV-1 interactions could be observed with the outer envelope glycoprotein (rgp120) of HIV-1. Three different glycosylated rgp120 preparations, as well as a synthetic peptide corresponding to the V3 loop of the MN strain, were adsorbed to enzyme-linked immunosorbent assay (ELISA) plates and incubated with mixtures of anti-rgp120 antibodies and normal human serum (NHS) as a complement source. Fixed complement proteins and antibodies were detected with specific, peroxidase-labelled antibodies against different complement proteins (C1q, C4b, C3b) and the gamma-chain of antibodies. In the absence of anti-rgp120, high amounts of C3 were deposited to each rgp120 preparation tested (including the V3 peptide) but significant differences in the amounts of bound C1q and C4b were observed. Using sera deficient in different complement proteins, we found that both the classical and the alternative pathways contributed to the C3 binding to rgp120. Addition of specific antibodies did not increase complement activation by rgp120 and only in the case of a monoclonal antibody to the V3-loop could we see complement-dependent inhibition of antibody binding.

Antibodies, Monoclonal↗

The envelope glycoprotein of HIV-1 gp120 and human complement protein C1q bind to the same peptides derived from three different regions of gp41, the transmembrane glycoprotein of HIV-1, and share antigenic homology.

gp41, the transmembrane glycoprotein of HIV-1, has been shown to be non-covalently associated with gp120. We have shown that it also binds human C1q. To analyze the interaction site(s) of gp41 with these two molecules, we established an enzyme-linked immunosorbent assay (ELISA) system using recombinant soluble gp41 [amino acids (aa) 539-684] and peptides thereof. In the cell-external part of gp41 three sites (aa 526-538, aa 590-613 and aa 625-655) were found to bind both gp120 and C1q. That gp120 and C1q use the same sites was evidenced by the fact that these proteins competed with each other for the same sites in recombinant soluble gp41 and gp41 peptides. It could be demonstrated by ELISA, that rabbit antibodies against human C1q recognized gp120, and rabbit antibodies against gp120 cross-reacted with C1q. Rabbit anti-gp120, HIV-1-positive human sera and anti-gp120 obtained from such sera agglutinated sensitized sheep erythrocytes with human C1q (EAC1q). These data suggest that in addition to functional homology between C1q and gp120 structural homology between these two molecules exists. This molecular mimicry might become the basis for immunologically relevant autoimmune phenomena.

Binding Sites↗