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J D Lifson

Publications and source records attributed to J D Lifson.

At least 19 recordsLinked to original sources

CD4(81-92)-based peptide derivatives. Structural requirements for blockade of HIV infection, blockade of HIV-induced syncytium formation, and virostatic activity in vitro.

CD4(81-92) peptide block human immunodeficiency virus (HIV) infection, virus-induced cell fusion, and antigen production by HIV-1-infected cells when derivatized on specific amino acid residues. An extensive series of structural variants of 1,4,5-tribenzyl-10-acetyl-CD4(81-92) were tested as anti-viral agents in an attempt to define the sequence and derivatization requirements for antiviral activity, and to maximize potency and stability for use as potential therapeutic agents. Alteration of the primary amino acid sequence of the stem compound 1,4,5-tribenzyl-CD4(81-92) diminished or abolished in parallel all three indices of anti-viral activity in a series of altered sequence compounds. Replacement of d- for l-amino acid residues at positions 1, 2, 3, 4, 5, or 6 but not position 10 decreased anti-viral potency, again with parallel effects on infection, synctium formation, and virostatic activity. Omission of the glutamine residue at position 9 did not affect anti-viral potency, while removal of the glutamic acids at position 11 and 12 resulted in virtually complete loss of biological activity. Changes in the derivatization pattern of the CD4(81-92) peptide backbone also affected anti-viral potency and efficacy. Optimal activity was obtained with benzyl residues at positions 1, 4, and 5, whereas the 1,4,7-tribenzyl-CD4(81-92) compound was without activity in all assays tested. Replacement of one of the benzyl groups with an acetamidomethyl moiety resulted in complete loss of biological activity. The previously reported (Nara et al., Proc Natl Acad Sci USA 86: 7139-7143, 1989) virostatic activity of 1,4,5-tribenzyl-10-acetyl-CD4(81-92) (peptide #18) is apparently due to acetylation, since the desacetyl stem compound shows much less virostatic activity while still possessing full anti-infective and anti-syncytial activity, and acetylation of the N-terminus rather than the lysine of 1,4,5-tribenzyl-CD4(81-92) yields a virostatic compound equipotent to peptide #18. Cyclization of the tribenzyl peptide to further conformationally restrict the molecule resulted in a compound with anti-infection, anti-syncytial, and virostatic activity at submicromolar concentrations.

Amino Acid Sequence

Human immunodeficiency virus-infected monocyte-derived macrophages express surface gp120 and fuse with CD4 lymphoid cells in vitro: a possible mechanism of T lymphocyte depletion in vivo.

Monocyte-derived macrophages (MDM) infected in vitro with a macrophage-tropic strain of human immunodeficiency virus (HIV) fused with uninfected, CD4-expressing T lymphoblastoid cells, but not with a subclone of these cells lacking surface CD4. Infected MDM also fused with uninfected autologous and heterologous MDM. Recombinant soluble CD4 protein (rsCD4) (10 micrograms/ml) and full-length recombinant glycosylated gp120 (20 micrograms/ml) each inhibited fusion by 94-99%; the inhibition was dose-dependent. The N-terminal portion of gp120 did not inhibit syncytium formation. Fusion was also inhibited by a monoclonal antibody to an epitope which binds gp120 (S3.5), but not by antibody to an epitope not involved in gp120 binding (OKT4). HIV-infected MDM specifically bound fluorescein-conjugated rsCD4, and virus could be visualized budding from the surface of these cells. HIV-infected MDM express viral gp120 on their surface and fuse with CD4-bearing cells in a fashion similar to lymphoid cells. Macrophages may contribute to CD4 lymphocyte depletion in vivo by this fusion mechanism.

Antibodies, Monoclonal

HIV interactions with CD4: a continuum of conformations and consequences.

Here, Lee Eiden and Jeffrey Lifson present a model for HIV envelope glycoprotein-CD4 interactions that attempts to reconcile recent, seemingly conflicting, structural, biochemical and biological observations. Central to this model is the involvement of both the CDR2-like and CDR3-like domains of CD4 in the interaction with gp120, leading to a conformational change and dissociation of gp120 from the gp120-gp41 complex.

Binding Sites

Stimulation of glycoprotein gp120 dissociation from the envelope glycoprotein complex of human immunodeficiency virus type 1 by soluble CD4 and CD4 peptide derivatives: implications for the role of the complementarity-determining region 3-like region in membrane fusion.

We have used a recombinant vaccinia virus vector encoding the envelope glycoprotein of human immunodeficiency virus type 1 to study receptor-induced structural changes related to membrane fusion. A truncated soluble form of human CD4 (sCD4) was found to stimulate dissociation of the external subunit (gp120) from the envelope glycoprotein complex of human immunodeficiency virus type 1 expressed at the cell surface. sCD4 stimulation of gp120 release was time- and concentration-dependent and was associated with specific binding of sCD4 to gp120. Synthetic peptide derivatives corresponding to residues 81-92 of human CD4 (overlapping the complementarity-determining region 3-like region) inhibited cell-cell fusion mediated by the interaction between recombinant vaccinia-encoded CD4 and human immunodeficiency virus envelope glycoprotein. These peptide derivatives also stimulated gp120 release from the envelope glycoprotein complex. An analogous peptide derivative from chimpanzee CD4 (containing a single Glu----Gly substitution at the position corresponding to CD4 residue 87) was considerably less active at inhibition of cell-cell fusion and stimulation of gp120 release, consistent with the known inhibitory effect of this substitution on the ability of membrane-associated CD4 to mediate cell fusion. These results suggest that the sCD4-induced release of gp120 reflects postbinding structural changes in the envelope glycoprotein complex involved in membrane fusion, with the complementarity-determining region 3-like region playing a critical role.

CD4 Antigens

Synthetic peptides allow discrimination of structural features of CD4(81-92) important for HIV-1 infection versus HIV-1-induced syncytium formation.

Benzylated peptides with a primary amino acid sequence corresponding to either human CD4(81-92) (#18), or chimpanzee CD4(81-92) (#18C), were equipotent inhibitors of human immunodeficiency virus type 1 (HIV-1) infection of CD4+ cells and high-affinity binding of 125I-gp120 to CD4+ cells. The chimpanzee-based CD4(81-92) peptide, however, which differs from the human peptide by a single amino acid substitution (E for G) at position 87, was considerably less potent than the human CD4(81-92)-based peptide congener to inhibit HIV-1-induced cell-cell fusion. These data suggest that a portion of the CD4 molecule contained within the sequence CD4(81-92) is involved in binding gp120 during both HIV-1 infection and HIV-1-induced syncytium formation in human cells, but that the presence of a glutamic acid at position 87 in this sequence is more critical for the CD4/gp120 interaction leading to syncytium formation than for the CD4/gp120 interaction leading to primary infection of CD4-positive cells. The region CD4(81-92) may critically contribute to CD4-mediated HIV-1 pathogenesis in humans, and its alteration might explain the lack of pathogenic sequelae of HIV-1 infection in chimpanzees.

Amino Acid Sequence

Evidence by peptide mapping that the region CD4(81-92) is involved in gp120/CD4 interaction leading to HIV infection and HIV-induced syncytium formation.

Peptide fragments of the CD4 molecule were compared in their ability to 1) inhibit CD4-dependent HIV-induced cell fusion; 2) inhibit CD4-dependent HIV infection in vitro; and 3) block gp120 envelope glycoprotein binding to CD4. Peptides from the region CD4(81-92), although inactive when underivatized, were equipotent inhibitors of CD4-dependent virus infection, cell fusion, and CD4/gp120 binding when derivatized via benzylation and acetylation. Peptides of identical chemical composition, but altered sequence and derivatization pattern that blocked gp120 binding to either CD4-positive cells or solubilized CD4, also blocked infection and fusion with similar potencies. Those that did not block gp120/CD4 interaction were also inactive in HIV-1 infection and cell fusion assays. No other peptide fragments of the CD4 molecule inhibited fusion, infection, or CD4/gp120 interaction. The peptide CD4(23-56), derived from a region of CD4 implicated in binding of CD4 antibodies that neutralize HIV infection and cell fusion, had no effect on CD4-dependent cell fusion, HIV-1 infection, or CD4/gp120 binding, but did reverse OKT4A and anti-Leu 3a blockade of gp120 binding to CD4. These data provide evidence that the 81-92 region of CD4 is directly involved in gp120 binding leading to CD4-dependent HIV infection and syncytium formation. Previous observations with structural mutants of CD4 suggest that the CDR2-homologous region of CD4 is also involved, either directly or indirectly, in binding of gp120 to CD4. The CDR2- and CDR3-like domains of CD4 may both contribute to the binding of the HIV envelope necessary for HIV-1 infection and HIV-1-induced cell fusion.

Antibodies, Monoclonal

Compound Q.

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Acquired Immunodeficiency Syndrome

The safety and pharmacokinetics of GLQ223 in subjects with AIDS and AIDS-related complex: a phase I study.

A phase I dose-escalation study was performed to evaluate the safety and pharmacokinetics of a single intravenous infusion of GLQ223 in subjects with AIDS and AIDS-related complex (ARC). The active ingredient in GLQ223 is trichosanthin. Trichosanthin, imported from China, is the active drug in community-initiated treatment programs for patients with HIV infection. Eighteen subjects were enrolled, 10 with AIDS and eight with ARC. All subjects were monitored for tolerance and toxicity. Immunological and virological parameters were also followed. GLQ223 administration was not associated with notable toxicity with the exception of one subject who experienced a severe neurological adverse reaction. No consistent or sustained changes in CD4+ lymphocyte populations or HIV antigen levels were observed. Serum concentrations of GLQ223 that were comparable to concentrations shown to have antiviral activity in vitro were achieved transiently but may not have been maintained for a sufficient duration to exert antiretroviral effects. Further studies are indicated to determine pharmacodynamic properties of GLQ223, its optimal dosing schedule, and whether GLQ223 or related molecules will be useful in the treatment of HIV infection.

AIDS-Related Complex

CD4 antigen-based antireceptor peptides inhibit infectivity of human immunodeficiency virus in vitro at multiple stages of the viral life cycle.

Benzylated derivatives of peptides corresponding to residues 81 through 92 of the CD4 molecule [CD4-(81-92)] inhibit human immunodeficiency virus 1 (HIV-1)-induced cell fusion and infection in vitro. If such peptides are to be considered as candidates in the therapy of HIV infection, it is crucial to know if the anti-HIV efficacy of CD4-based peptides is limited to blockade of infection and virus-induced cell fusion or if other stages of the viral life cycle are affected by these compounds. Accordingly, an in vitro quantitative microassay for acute HIV infection was divided into two kinetic phases corresponding to the two general stages of the viral life cycle: (i) viral infection and (ii) transmission of virus and viral protein products through cell contact or release of free virions. CEM-SS cell cultures were treated with peptide during either the infection or the transmission phase of the assay. When peptides were present during the infection phase, inhibition of syncytium formation correlated with decreased expression of viral core protein p24 and lack of infectious cell centers when cells exposed to virus were washed and replated onto fresh uninfected indicator cells. These data are consistent with complete inhibition of viral infection when peptide is present only during initial exposure to virus. Unexpectedly, parallel inhibition of syncytium formation, decreased p24 levels, and inhibition of infectious cell center formation were also seen even when peptides were added as late as 48 hr after inoculation, during the transmission period of the assay. Since viral binding and penetration are completed well before 48 hr in this assay system, CD4-(81-92) peptide derivatives appear to exert a virostatic effect on cultures already infected with HIV-1, decreasing p24 production, cytopathicity, and cell-mediated infectivity.

Amino Acid Sequence

Role of CD4 in normal immunity and HIV infection.

In this report we have attempted to review our knowledge of the role(s) of CD4 in human T-cell function and the consequences of interactions between CD4 molecules and the human immunodeficiency virus (HIV). The observation in 1981 that antibodies to certain epitopes of CD4 inhibited the immune functions of CD4+ T cells led to the initial suggestion that CD4 molecules play a direct role in T-cell function. Although the precise functions of CD4 remain incompletely understood, a preponderance of evidence suggests that this molecule may in fact serve several critical roles. At least one such role is that of interacting directly with MHC class II molecules on antigen-presenting cells, presumably facilitating cell-to-cell interactions. On activated CD4+ T cells, CD4 molecules can also interact directly with the T-cell receptor complex to influence the immune response. Unfortunately, in addition to interacting with the T-cell receptor and class II MHC determinants, CD4 serves as a high affinity receptor for HIV, the causative agent of AIDS. Not only does interaction between the virus and CD4 initiate viral fusion to the cell membrane and HIV entry but, in addition, a similar molecular interaction initiates fusion between HIV-infected and uninfected CD4+ cells, resulting in the formation of multinucleated syncytia. Since uninfected CD4+ cells are, in effect, recruited into such syncytia, this mechanism may account in part for the depletion of CD4+ T cells in HIV-infected patients. Soluble forms of CD4 produced either by genetic engineering or solid phase peptide synthesis can completely block HIV infectivity and syncytia formation in vitro, remarkably without apparent effects on T-cell immunity. Such molecules are currently being explored for their possible therapeutic effects on HIV infection in vivo.

Acquired Immunodeficiency Syndrome

Synthetic CD4 peptide derivatives that inhibit HIV infection and cytopathicity.

Synthetic peptide segments of the CD4 molecule were tested for their ability to inhibit infection of CD4+ cells by the human immunodeficiency virus (HIV) and to inhibit HIV-induced cell fusion. A peptide mixture composed of CD4(76-94), and synthesis side products, blocked HIV-induced cell fusion at a nominal concentration of 125 micromolar. Upon high-performance liquid chromatography, the antisyncytial activity of the peptide mixture was found not in the fraction containing the peptide CD4(76-94) itself, but in a side fraction containing derivatized peptide products generated in the automated synthesis. Derivatized deletion and substitution peptides in the region CD4(76-94) were used to demonstrate sequence specificity, a requirement for benzyl derivatization, and a core seven-residue fragment required for antisyncytial activity. A partially purified S-benzyl-CD4(83-94) peptide mixture inhibited HIV-induced cell fusion at a nominal concentration of less than or equal to 32 micromolar. Derivatized CD4 peptides blocked cell fusion induced by several HIV isolates and by the simian immunodeficiency virus, SIV, and blocked infection in vitro by four HIV-1 isolates with widely variant envelope gene sequences. Purified CD4(83-94) dibenzylated at cysteine 86 and glutamate 87 possessed antisyncytial activity at 125 micromolar. Derivatization may specifically alter the conformation of CD4 holoreceptor peptide fragments, increasing their antiviral efficacy.

Amino Acid Sequence

pH-independent HIV entry into CD4-positive T cells via virus envelope fusion to the plasma membrane.

CD4 functions as the cell-surface receptor for human immunodeficiency virus (HIV); however, the mechanism of virus entry into susceptible cells is unknown. To explore this question we used a human T lymphoblastic cell line (VB) expressing high levels of surface CD4. Neutralization of endosomal compartments (pH greater than 6.4) with lysosomotropic agents did not effectively inhibit HIV nucleocapsid entry into the cytoplasm, and virus treated at low pH (5.5) failed to induce rapid cell-to-cell fusion in uninfected cells. Electron microscopy of VB cells acutely exposed to HIV at neutral pH revealed direct fusion of the virus envelope with the plasma membrane within minutes at 4 degrees C. No endocytosed virions were visualized upon rewarming the HIV-exposed cells to 37 degrees C for as long as 60 min. These results indicate that HIV penetrates CD4-positive T cells via pH-independent membrane fusion.

Antigens, Differentiation, T-Lymphocyte

AIDS retrovirus induced cytopathology: giant cell formation and involvement of CD4 antigen.

The formation of multinucleated giant cells with progression to cell death is a characteristic manifestation of the cytopathology induced by the AIDS retrovirus in infected T lymphoid cells. The mechanism of giant cell formation was studied in the CD4 (T4/Leu 3) positive T cell lines JM (Jurkat) and VB and in variants of these lines that are negative for cell surface CD4 antigen. By means of a two-color fluorescent labeling technique, multinucleated giant cells in infected cultures were shown to form through cell fusion. Antibody to CD4 specifically inhibited fusion, and uninfected CD4 negative cells, in contrast to uninfected CD4 positive cells, did not undergo fusion with infected cells, suggesting a direct role for the CD4 antigen in the process of syncytium formation. These results suggest that, in vivo, cell fusion involving the CD4 molecule may represent a mechanism whereby uninfected cells can be incorporated into AIDS virus infected syncytia. Because the giant cells die soon after they are formed, this process may contribute to the depletion of helper/inducer T cells characteristically observed in AIDS.

Acquired Immunodeficiency Syndrome

Utility of formaldehyde fixation for flow cytometry and inactivation of the AIDS associated retrovirus.

To maximize safety in the setting of an increasing number of requests for flow cytometric analysis of specimens potentially contaminated with the AIDS retrovirus, we evaluated some commonly used fixatives for their ability to inactivate the infectious potential of the virus. We found that both formaldehyde (0.37% v/v) and paraformaldehyde (0.5% w/v) completely inactivated the infectious activity of both free and cell-associated lymphadenopathy associated virus (LAV), the etiologic agent for the acquired immunodeficiency syndrome (AIDS). Based on encouraging preliminary results we formally evaluated the effect of formaldehyde fixation on flow cytometric parameters. In addition to inactivating LAV, 0.37% formaldehyde in phosphate buffered saline preserved light scatter and fluorescence properties of cells stained with fluorescein isothiocyanate (FITC) and beta-phycoerythrin (PE) conjugated monoclonal antibodies. These findings suggest that formalin fixation may be useful for laboratories performing flow cytometric analysis of specimens potentially contaminated with the AIDS virus.

Antigens, Differentiation, T-Lymphocyte

The immunohistology of the persistent generalized lymphadenopathy syndrome (PGL).

The authors employed a large panel of monoclonal antibodies to characterize and quantitate lymphoid subpopulations within the paracortex, mantle, and germinal centers of frozen sections of lymph nodes from 18 patients with the persistent generalized lymphadenopathy (PGL) syndrome and five heterosexual controls. The authors' data indicate that Leu-3+ phenotypic T-helper cells (TH) are reduced within all three compartments, while T-cytotoxic-suppressor cells (Tcs) are increased. Using the antibody 9.3, which allows dissection of the Leu-2+ Tcs subset into 9.3+ cytotoxic cells (Tc) and 9.3- suppressor cells (Ts), the authors found that the Ts subset is increased in the lymph nodes of these patients. In contrast to acquired immune deficiency syndrome (AIDS) patients, paracortical total T-cells and Leu-8+ cells appear to be preserved in patients with PGL. Study of TH and Tcs subpopulations in peripheral blood in 12 of these patients revealed inverted ratios (mean, 0.59), which did not correlate with those seen in the lymph nodes. Although the paracortical TH/Tcs ratios were significantly reduced (mean, 1.44) they were not inverted, in contrast to some other reported series. In aggregate, these data suggest that, relative to AIDS, there is preservation of the paracortical T-cell microenvironment in PGL. Clinically, this correlates with more intact cell-mediated immunity and the absence of opportunistic infections and Kaposi's sarcoma in this patient group. Follicle lysis was present in 11 patients. Increased HLA-DR+ paracortical cells, aggregates of Leu-6+ dendritic cells, decreased TAC+ cells, increased OKT-10+ plasma cells, and increased interstitial immunoglobulin were among the other features observed in these patients.

AIDS-Related Complex

Cerebrovascular reactivity to CO2: modulation by arterial pressure.

Cerebrovascular reactivity to CO2 (CO2R), measured in halothane-anesthetized rabbits, decreased as arterial pressure was increased either pharmacologically or mechanically. On the other hand, hypotension, induced by bleeding, led to an increase in CO2R. These responses were unaffected by denervation of baroreceptors.

Animals

Variables affecting T-lymphocyte subsets in a volunteer blood donor population.

Inversion of the normal ratio of helper/inducer (Th) to suppressor/cytotoxic (Ts) T lymphocytes is a characteristic finding in symptomatic and presymptomatic patients with acquired immunodeficiency syndrome (AIDS). As an interim measure to prevent transmission of AIDS via blood transfusion, the Stanford Blood Center performed T-lymphocyte subset analysis as a screening procedure. In this report we present results from 8715 consecutive volunteer blood donors, aged 17-77. The mean Th:Ts ratio was 2.00 +/- 0.70 with a significant trend for increasing Th:Ts with increasing age. In all age groups, donors with antibody to cytomegalovirus (CMV) had lower Th:Ts ratios than CMV-seronegative donors. 1.9% of the donors had Th:Ts values less than or equal to 0.85 and blood from these donors was not used for clinical purposes. Compared to the overall donor population, individuals with Th:Ts less than or equal to 0.85 tended to be male, (79 vs 53%) and CMV sero-positive (71 vs 36%); a majority (83%) had a low absolute number of Th cells as well as a low Th:Ts value. Follow-up of donors with low Th:Ts values revealed that some belonged to AIDS high-risk populations, despite denials at the time of donation. One such donor was diagnosed with disseminated Kaposi's sarcoma 8 months after a markedly abnormal T-lymphocyte subset profile was noted during screening. These results suggest that T-lymphocyte subset analysis is capable of identifying at least some blood donors at risk for transmitting AIDS and also point to variable affecting T-cell subsets in apparently healthy blood donors.

Acquired Immunodeficiency Syndrome