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H Schuitemaker

Publications and source records attributed to H Schuitemaker.

At least 91 records · Page 5Linked to original sources

Transmission of zidovudine-resistant human immunodeficiency virus type 1 variants following deliberate injection of blood from a patient with AIDS: characteristics and natural history of the virus.

We describe the development and persistence of severe immunodeficiency in a previously healthy young woman shortly after she was deliberately injected with blood that was drawn from a patient with AIDS. The heterogenous populations of human immunodeficiency virus (HIV) in donor and recipient were as closely related as those reported in previous cases of proven transmission. The relatively large proportion of non-syncytium-inducing (NSI) clones in the recipient suggests a selective but not complete suppression of syncytium-inducing (SI) viruses. The continuous presence of SI viruses might explain the severe immunosuppression that persisted once the recipient seroconverted. A codon 215 mutation (indicative of zidovudine resistance) was present in SI and NSI clones of the donor and in NSI clones of the recipient. The relative increase in codon 215 resistance mutation in the absence of zidovudine therapy was secondary to the increase in NSI clones. Findings in this case suggest that qualities of an inoculum and/or the route of transmission are important determinants in the subsequent clinical course of HIV disease.

Adult↗

Simple determination of human immunodeficiency virus type 1 syncytium-inducing V3 genotype by PCR.

Human immunodeficiency virus type 1 (HIV-1) phenotype variability plays an important role in the pathogenesis of AIDS. The presence of syncytium-inducing (SI) HIV-1 isolates in infected individuals is associated with a rapid decline of CD4+ T cells, rapid disease progression, and reduced survival time after AIDS diagnosis. The strong association between the SI capacity of HIV-1 and the presence of positively charged amino acid residues at positions 306 and/or 320 in the third variable domain (V3) of gp120 could here be confirmed in 97% of 402 primary HIV-1 isolates, indicating that the V3 genotype may be useful for prediction of the viral phenotype. The V3 DNA sequences revealed a remarkably limited codon usage for the amino acid residues that are responsible for virus phenotype. On the basis of this limited SI-specific DNA sequence variation, four SI-specific oligonucleotides were designed for selective amplification of V3 from SI but not non-SI HIV-1 isolates. This PCR analysis allowed the prediction of the biological phenotype of HIV-1 isolates on the basis of the V3 genotype and may prove to be useful for monitoring SI capacity of HIV-1 isolates in infected individuals.

Amino Acid Sequence↗

Adaptation to persistent growth in the H9 cell line renders a primary isolate of human immunodeficiency virus type 1 sensitive to neutralization by vaccine sera.

Seven diverse primary isolates of human immunodeficiency virus type 1 (HIV-1) were examined and found to be refractory to neutralization by antisera to recombinant gp120 (rgp120) protein from HIV-1 MN. This stands in marked contrast to the sensitivity exhibited by certain laboratory-adapted viruses. To understand the difference between primary and laboratory-adapted viruses, we adapted the primary virus ACH 168.10 to growth in the FDA/H9 cell line. ACH 168.10 was chosen because the V3 region of gp120 closely matches that of MN. After 4 weeks, infection became evident. The virus (168A) replicated in FDA/H9 cells with extensive cytopathic effect but was unchanged in sensitivity to antibody-mediated neutralization. Thus, growth in cell lines is not sufficient to render primary virus sensitive to neutralization. The 168A virus was, however, partially sensitive to CD4 immunoadhesin (CD4-Ig). Adaptation was continued to produce a persistently infected FDA/H9 culture that displayed minimal cytopathic effect. The virus (168C) was now sensitive to neutralization by MN rgp120 vaccine sera and by MN-specific monoclonal antibodies and showed increased sensitivity to HIVIG and CD4-Ig. 168C encoded three amino acid changes in gp120, including one within the V3 loop (I-166-->R, I-282-->N, G-318-->R). MN-specific monoclonal antibodies bound equally to the surface of cells infected with either neutralization-resistant or -sensitive virus. The coincidence of changes in neutralization sensitivity with changes in cell tropism and cytopathic effect suggests a common underlying mechanism(s) acting through the whole of the envelope protein complex.

AIDS Vaccines↗

Equal levels of gp120 retention and neutralization resistance of phenotypically distinct primary human immunodeficiency virus type 1 variants upon soluble CD4 treatment.

Human immunodeficiency virus type 1 (HIV-1) variants passaged in T-cell lines, often called laboratory isolates, are potently neutralized by soluble CD4 (sCD4), whereas primary HIV-1 variants are highly resistant to sCD4 neutralization. Previously, it was demonstrated that the domain from V1 to V3 of the HIV-1 gp120 molecule contains one of the major determinants of sCD4 neutralization sensitivity, and the same region has also been implicated as influencing syncytium-inducing (SI) capacity and T-cell-line tropism. To determine possible differences in sCD4 neutralization sensitivity between phenotypically distinct primary HIV-1 variants, a panel of non-syncytium-inducing (NSI) and SI HIV-1 variants was studied. Primary NSI and SI HIV-1 variants appeared to be equally resistant to sCD4 neutralization. Consistent with this observation, sCD4 did not induce gp120 shedding from either primary NSI or SI HIV-1 variants at 37 degrees C. Thus, it is not the potential of certain primary HIV-1 variants to infect T-cell lines but rather their adaptation to T-cell lines that is reflected in specific properties of the viral envelope which influence sCD4 neutralization sensitivity.

Antiviral Agents↗

Productive HIV-1 infection of macrophages restricted to the cell fraction with proliferative capacity.

Retroviruses establish productive infection only in proliferating cells. Macrophages are often considered to be non-proliferating in vitro yet are susceptible to HIV-1 infection. This has led to the conclusion that HIV-1 can establish infection independent of host cell proliferation. We here report that a small proportion of macrophages does have proliferative capacity. A comparable small fraction of monocyte derived macrophages (MDM) supported productive HIV-1 infection as demonstrated in limiting dilution culture. Fluorescence activated cell sorting on the basis of incorporation of BrdUrd, a thymidine analog, and subsequent PCR analysis revealed the presence of proviral DNA only in the BrdUrd positive cell fraction with DNA synthesizing activity. To identify which phase of cell cycle is required for establishment of productive infection, growth arrest in G1 or G1/S phase prior to inoculation was performed. gamma-Irradiation, which arrests primary cells in G1, prevented both cell proliferation and establishment of productive infection in MDM. Treatment of MDM with aphidicolin, a specific inhibitor of DNA polymerase alpha and delta which arrests cells in G1/S phase of the cell cycle, also inhibited DNA synthesis but did not prevent establishment of productive infection which is completely analogous to observations in T cells. Our data thus indicate that not cell division itself but cellular conditions that coincide with cell proliferation are apparently indispensable for establishment of productive infection.

Aphidicolin↗

Macrophage-tropic HIV-1 variants: initiators of infection and AIDS pathogenesis?

The importance of macrophage-tropic HIV-1 variants in AIDS pathogenesis becomes increasingly clear. Macrophage-tropic HIV-1 variants initiate infection, predominate in the asymptomatic phase, and persist throughout infection, even after the emergence of preferential T cell-tropic HIV-1 variants. HIV-1 infection of macrophages may contribute to the overall immune dysfunction observed in AIDS pathogenesis. Here, our knowledge of the biological variability of HIV-1, and specifically macrophage-tropic HIV-1 variants, is reviewed. Moreover, hypotheses about the mechanism of selection for macrophage-tropic variants in transmission, the mechanism by which these variants selectively persist in the asymptomatic phase, and how they may contribute to the general immune dysfunction are presented.

Acquired Immunodeficiency Syndrome↗

The natural history of HIV-1 infection: virus load and virus phenotype independent determinants of clinical course?

Virus load and virus phenotype have both been indicated as major determinants of disease progression in HIV-1 infection. In this study HIV-1 RNA copy numbers in serum, virus phenotype, and CD4+ cell counts were analyzed longitudinally in a group of 20 seroconverters progressing to AIDS within 5.5 years. In this group 12 individuals developed AIDS without syncytium-inducing (SI) viruses ever being isolated, while 8 individuals showed a non-SI (NSI) to SI phenotypic switch prior to AIDS development. HIV-1 RNA copy numbers in sera of all progressors were stable and high from seroconversion until development of AIDS. Twenty-one seroconverters remaining asymptomatic for more than 5.5 years were selected as nonprogressing controls, and both progressors and nonprogressors were evaluated at seroconversion and early in infection (3 years post seroconversion). Comparative analysis revealed that at the point of seroconversion HIV-1 RNA copy numbers in sera from NSI progressors, SI progressors, and nonprogressors were not significantly different, nor were their CD4+ cell counts. At seroconversion all individuals harbored viruses with an NSI phenotype. In contrast to the progressors, HIV-1 RNA copy numbers in sera of nonprogressors had declined significantly during the early period of infection. At the second time point RNA copy numbers in the sera of NSI progressors and nonprogressors differed significantly (P = 0.0005), while RNA copy numbers in the sera of SI progressors and nonprogressors did not. However, at this time point the CD4+ cell counts of SI progressors were significantly lower than those from nonprogressors (P = 0.002), while the CD4+ cell counts of NSI progressors and nonprogressors did not differ significantly. These results show that early in HIV-1 infection progressors and nonprogressors are distinguishable. NSI progressors can be distinguished from nonprogressors on the basis of serum HIV-1 RNA load and S1 progressors on the basis of CD4+ cell decline. In addition, a significant decrease in the number of HIV-1 RNA copies in the early phase of infection seems to postpone the development of AIDS.

Acquired Immunodeficiency Syndrome↗

Viro-immunological studies in acute HIV-1 infection.

OBJECTIVE: To monitor a patient who presented with symptomatic HIV-1 infection for virological and immunological parameters in relation to the clinical course. METHODS: Virological studies included determination of frequency of productively HIV-1-infected peripheral blood mononuclear cells (PBMC) and viral RNA load in plasma and p24 antigenaemia. Immunological studies included the analysis of T-cell subsets, the expression of activation markers, CD45RO and CD45RA antigens, the frequency of cells programmed for death, and T-cell function. RESULTS: During the first week post onset of primary HIV-1 infection symptoms high plasma titres of p24 and HIV-1 RNA were observed. The number of productively HIV-1-infected PBMC peaked, coinciding with CD4+ T lymphocytopaenia, during week 2 when clinical improvement started. CD8+ T lymphocytosis was observed 10 days post onset of clinical symptoms, the expanded cell population being of the CD8+CD38+, CD8+CD27+ and CD8+CD28- phenotype. CD8+ T lymphocytosis was paralleled by a high percentage of cells undergoing programmed cell death on in vitro culture. In vitro T-cell function was severely depressed during the first 10 days post onset of clinical symptoms. Within about 3 weeks, following resolution of clinical symptoms, phytohaemagglutinin-induced proliferation was restored to normal levels while responses to the CD3 monoclonal antibody only showed a partial restoration. During follow-up, concomitant with the rise of activated CD8+ T cells, p24 antigen levels and viral RNA load in serum as well as the number of HIV-producing PBMC steeply declined after 2 weeks. CONCLUSION: These findings demonstrate HIV-1-induced abnormalities during severe clinical symptoms of primary HIV-1 infection. The subsequent strong immune response, which is believed to be responsible for efficient control of viral replication, appears to precede clinical improvement.

Acquired Immunodeficiency Syndrome↗

Interference of interleukin-10 with human immunodeficiency virus type 1 replication in primary monocyte-derived macrophages.

Previously we demonstrated an inhibitory effect of interleukin-4 (IL-4) on establishment of human immunodeficiency virus type 1 (HIV-1) infection in primary macrophages. The reported similarities between the biological effects of IL-4 and IL-10 prompted us to study the effect of IL-10 on HIV-1 replication. Treatment of primary macrophages with IL-10 resulted in inhibition of HIV-1 infection. This inhibitory effect was specific for macrophages, since IL-10 did not interfere with HIV-1 replication in primary T cells. Semiquantitative PCR analysis excluded an inhibitory effect of IL-10 on virus entry and reverse transcription. Effects of IL-10 on HIV-1 long terminal repeat-driven chloramphenicol acetyltransferase activity also could not be demonstrated in a transient expression system in primary derived macrophages. In agreement with this, Northern (RNA) blot analysis demonstrated equal amounts of viral RNA species irrespective of IL-10 treatment, also excluding an inhibitory effect on elongation of virus transcription. Monocyte-derived macrophages (MDM) treated with IL-10 after HIV-1 inoculation showed accumulation of apparently mature p24 protein suggestive of an inhibitory effect at the level of virus assembly. IL-10 treatment of MDM prior to HIV-1 inoculation did not result in accumulation of p24 protein. Immunoblot analysis indeed showed the absence of mature p24 and gp120 but accumulation of the Pr53 gag-encoded protein in HIV-1-inoculated, IL-10-pretreated MDM, suggesting an inhibitory effect at the level of protein processing. A combination of IL-4 and IL-10 resulted in a cumulative inhibitory effect on HIV-1 replication in MDM. The recent observation that in the course of HIV-1 infection a shift occurs in the production of IL-2/gamma interferon toward enhanced IL-4 and IL-10 production and the reported shift from preferential macrophage-tropic towards preferential T-cell-tropic HIV-1 variants with progression of disease suggest that cytokines have an important role in the in vivo regulation of HIV-1 tropism.

Base Sequence↗

HIV-1 macrophage tropism is determined at multiple levels of the viral replication cycle.

The ability of HIV-1 to infect macrophages is thought to be essential in AIDS pathogenesis. We tested the ability of 19 primary virus isolates to infect monocyte-derived macrophages (MDM) from different donors. Two HIV-1 isolates were able to establish a productive infection in MDM from all donors tested, whereas eight completely lacked this capacity. Next to these isolates with extreme phenotypes, 50% of the primary isolates under study displayed an intermediate phenotype. These intermediate macrophage-tropic isolates established a productive infection in MDM from some but not all donors tested. PCR analysis demonstrated that the capacity to replicate in MDM could be determined at the previously described level of virus entry. However, for intermediate macrophage-tropic isolates replication was abrogated at the level of reverse transcription. Entry of highly macrophage-tropic isolates resulted in efficient completion of the reverse transcription process, whereas entry of intermediate macrophage-tropic isolates did not. Our experiments indicate that primary HIV-1 isolates may differ in their dependency on cellular factors required for reverse transcription in MDM. Differences in susceptibility of MDM for in vitro HIV-1 infection suggest variation in the availability of these cellular factors between MDM from different individuals.

Adult↗

Macrophage-tropic variants initiate human immunodeficiency virus type 1 infection after sexual, parenteral, and vertical transmission.

Macrophage-tropic, non-syncytium-inducing, HIV-1 variants predominate in the asymptomatic phase of infection and may be responsible for establishing infection in an individual exposed to the mixture of HIV-1 variants. Here, genotypical and phenotypical characteristics of virus populations, present in sexual, parenteral, or vertical donor-recipient pairs, were studied. Sequence analysis of the V3 domain confirmed the presence of a homogeneous virus population in recently infected individuals. Biological HIV-1 clones were further characterized for syncytium inducing capacity on the MT2 cell line and for macrophage tropism as defined by the appearance of proviral DNA upon inoculation of monocyte-derived macrophages. Both sexual and parenteral transmission cases revealed a selective outgrowth in the recipient of the most macrophage-tropic variant(s) present in the donor. In three out of five vertical transmission cases, more than one highly macrophage-tropic virus variant was present in the child shortly after birth, suggestive of transmission of multiple variants. In three primary infection cases, homogeneous virus populations of macrophage-tropic, non-syncytium-inducing variants were present prior to seroconversion, thus excluding humoral immunity as the selective pressure in favour of macrophage-tropic variants. These observations may have important implications for vaccine development.

Acquired Immunodeficiency Syndrome↗

Relation of phenotype evolution of HIV-1 to envelope V2 configuration.

Biological variability of human immunodeficiency virus type-1 (HIV-1) is involved in the pathogenesis of acquired immunodeficiency syndrome (AIDS). Syncytium-inducing (SI) HIV-1 variants emerge in 50 percent of infected individuals during infection, preceding accelerated CD4+ T cell loss and rapid progression to AIDS. The V1 to V2 and V3 region of the viral envelope glycoprotein gp120 contained the major determinants of SI capacity. The configuration of a hypervariable locus in the V2 domain appeared to be predictive for non-SI to SI phenotype conversion. Early prediction of HIV-1 phenotype evolution may be useful for clinical monitoring and treatment of asymptomatic infection.

Acquired Immunodeficiency Syndrome↗

HIV tropism.

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CD4 Antigens↗

T-cell dysfunction in HIV infection: anergy due to defective antigen-presenting cell function?

Before CD4+ T cells are depleted, T cells in asymptomatic HIV-infected individuals are functionally abnormal. These T cells are programmed for death, are non-responsive and fail to produce interleukin-2 after antigenic stimulation. Our view is that these different T-cell abnormalities are explained by the effects of HIV on antigen-presenting cells. Alteration of the functions of the antigen-presenting cell may program T cells for activation-induced death, and may induce anergy in interleukin-2 and interferon-gamma secreting TH1 cells. This results in predominance of TH2 allergic responses instead of cellular immunity dependent on TH1 cells.

Animals↗

Early replication steps but not cell type-specific signalling of the viral long terminal repeat determine HIV-1 monocytotropism.

The expression of human immunodeficiency virus type 1 (HIV-1) is enhanced after cell activation because of the interaction of cell-encoded nuclear factors that interact with binding sites in the long terminal repeats (LTRs). Here we studied the contribution of cell type-specific activation signals to differences in cytotropism of HIV-1 variants. Four closely related molecular HIV-1 clones with distinct biological phenotypes and different capacities to replicate in primary monocyte-derived macrophages (MDMs) or T cell lines were used. Sequence analysis of these LTRs revealed variation in functionally important regions. Adaptation of virus variants to particular host cells by differences in LTR responsiveness was analyzed. LTR-CAT constructs were transiently transfected in T cells that were stimulated with T cell-specific activation signals such as combinations of anti-CD3 or anti-CD28 MoAB or in primary monocytes that were stimulated with IL-3, IL-4, or GM-CSF. No differences in responsiveness to cell type-specific signals were demonstrated. To further elucidate the level of restriction in cell tropism, transfection of four full-length infectious molecular HIV-1 clones into 5-day cultured MDMs was performed. From all clones, competent virus could be rescued from MDMs by coculture with PHA-stimulated PBLs. However, following cell-free inoculation, proviral DNA could be detected by PCR analysis only in monocytes exposed to HIV-1 clones that previously were shown to establish productive infection.(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence↗

Lack of T cell dysfunction and programmed cell death in human immunodeficiency virus type 1-infected chimpanzees correlates with absence of monocytotropic variants.

In asymptomatic human immunodeficiency virus (HIV) infection in humans, disturbed T cell functions such as anergy and programmed cell death, thought to result from inappropriate signaling by antigen-presenting cells due to HIV infection, precede increase in virus load, decline in CD4+ T cell numbers, and subsequent disease progression. Here, in 3 long-term HIV-1-infected asymptomatic chimpanzees, antigen-presenting cell function was intact and T cells had normal proliferative capacity with no evidence of HIV-1-associated programmed cell death. Polymerase chain reaction analysis demonstrated low frequencies of cells harboring proviral DNA. Primary virus isolation from the infected animals demonstrated the absence of monocytotropic HIV-1 variants, in concordance with complete insusceptibility of chimpanzee monocytes for HIV-1 infection. Possibly, because of the incapacity of HIV-1 to infect monocytes, systemic immune dysfunction will not occur, contributing to controlled viral replication and maintenance of the asymptomatic state in HIV-infected chimpanzees.

Amino Acid Sequence↗