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C Debouck

Publications and source records attributed to C Debouck.

At least 73 records · Page 4Linked to original sources

Characterization and autoprocessing of precursor and mature forms of human immunodeficiency virus type 1 (HIV 1) protease purified from Escherichia coli.

A recombinant plasmid encompassing the human immunodeficiency virus type 1 (HIV 1) protease coding sequence and flanking regions (Ala-13 to Gly-185 of the pol open reading frame) has been expressed in two distinct strains of Escherichia coli, AR58 and AR68. In the first strain, AR58, the primary translation product, a 25 kilodalton (kDa) precursor protein, is short-lived and rapidly processes itself to the 11 kDa mature protease in vivo. In the second strain, AR68, the 25 kDa species is only partially processed, and it, a 13 kDa intermediate, and the mature 11 kDa enzyme accumulate at a ratio of 3:4.5:2.5, respectively. The 11 kDa mature protease from AR58 and the 25 kDa precursor from AR68 have been purified to homogeneity. The yield of 11 kDa enzyme from AR58 is approximately 0.02 mg/g wet weight of E. coli cell pellet. The protease has both the expected NH2- and COOH-terminal sequences. The yield of 25 kDa enzyme from AR68 is approximately 0.1 mg/g wet weight of E. coli cell pellet. In vitro, the 25 kDa precursor enzyme rapidly (t1/2 approximately equal to 9 min) processes itself into a species with a mass of approximately 13 kDa and a species with a mass of approximately 11 kDa. Both of these latter species can be separated by RP-HPLC, have the NH2-terminal sequence expected for the mature protease, and are active. The 11 kDa enzyme from AR58 comigrates with the 11 kDa enzyme from AR68 on RP-HPLC and SDS polyacrylamide gel electrophoresis. On extended incubation at 4 degrees C at either neutral or acidic pH all species of the protein exhibit further autodegradation at defined sequences. The availability of the mature, 11 kDa enzyme and the 25 kDa precursor will allow biochemical and physical studies on this critical viral enzyme.

Amino Acid Sequence↗

Recombinant HIV-1 reverse transcriptase: purification, primary structure, and polymerase/ribonuclease H activities.

Recombinant HIV-1 reverse transcriptase (RT) was stably overproduced as a soluble protein in Escherichia coli using a double-plasmid expression system in which an RT precursor protein was expressed and processed in vivo by HIV-1 protease produced in trans. The RT thus produced consisted of an equimolar mixture of two polypeptides, p66 and p51, which were copurified to greater than 90% homogeneity and were found to share a common NH2 terminus as judged by sequence analysis of the polypeptide mixture. The observed sequence confirmed correct in vivo cleavage by protease at the protease-RT polyprotein junction to yield an NH2 terminus identical to that of genuine viral RT (M. M. Lightfoote et al. (1986) J. Virol. 60, 771-775; F. diMarzo Veronese et al. (1986) Science 231, 1289-1291). The bacterially expressed RT had a specific activity similar to that of viral RT and inhibition studies with phosphonoformate confirmed that it was indistinguishable from the viral enzyme with respect to sensitivity to this inhibitor. Polymerase activated gel analysis of the mixture indicated that p66 was associated with a higher level of RT activity than p51. RNase H activated gel analysis suggested that the purified preparation of recombinant RT was free of endogenous E. coli RNase H, and that the RNase H activity of RT was exclusively associated with the p66 polypeptide, supporting the hypothesis that the RNase H domain is located in the COOH-terminal region of the molecule.

Amino Acids↗

Human immunodeficiency virus 1 protease expressed in Escherichia coli behaves as a dimeric aspartic protease.

Recombinant human immunodeficiency virus 1 (HIV-1) protease, purified from a bacterial expression system, processed a recombinant form of its natural substrate, Pr55gag, into protein fragments that possess molecular weights commensurate with those of the virion gag proteins. Molecular weights of the protease obtained under denaturing and nondenaturing conditions (11,000 and 22,000, respectively) and chemical crosslinking studies were consistent with a dimeric structure for the active enzyme. The protease appropriately cleaved the nonapeptide Ac-Arg-Ala-Ser-Gln-Asn-Tyr-Pro-Val-Val-NH2 between the tyrosine and proline residues. HIV-1 protease was sensitive to inactivators of the aspartic proteases. The aspartic protease inactivator 1,2-epoxy-3-(4-nitrophenoxy)propane produced irreversible, time-dependent inactivation of the protease. The pH-dependent kinetics of this inactivator were consistent with the requirement of an unprotonated carboxyl group in the active site of the enzyme, suggesting that HIV-1 protease is also an aspartic protease.

Aspartic Acid Endopeptidases↗

Low antigenicity of HIV-1 rev: rev-specific antibody response of limited value as correlate of rev gene expression and disease progression.

An enzyme immunoassay based on an E. coli-produced HIV-1 rev gene product was used to detect rev-specific antibodies in longitudinally collected serum samples from 196 initially symptom-free men who were seropositive for antibodies to HIV-1 structural proteins and 72 men who seroconverted for such antibodies. In 61% of men no rev-specific antibodies were detected at all, 30% had persistently detectable rev-specific antibodies, and in 9% rev-specific antibodies were only transiently or intermittently detected. When a persistent rev-specific antibody response occurred in subjects who seroconverted to structural proteins, it was always, with one exception, found within 12 months of seroconversion. The rev-specific antibodies were also studied in a transectional sample of sera from the men who remained symptom-free and from those who developed AIDS-related conditions or AIDS, as well as in sera from 31 other men with AIDS-related conditions and in sera from 6 of these men at the time they developed AIDS. The rev-specific antibodies were found in 34% of symptom-free men, in 28% of patients with AIDS-related conditions, and in 16% of patients with AIDS. The low incidence of rev-specific antibodies early after infection may be due to low antigenicity of rev. The lower prevalence of rev-specific antibodies in sera from patients with AIDS, compared with patients with AIDS-related conditions and symptom-free HIV-1-infected individuals, may be explained by a progressive HIV-1-induced immunodeficiency.(ABSTRACT TRUNCATED AT 250 WORDS)

Acquired Immunodeficiency Syndrome↗

Antibody response to the viral negative factor (nef) in HIV-1 infection: a correlate of levels of HIV-1 expression.

Antibody responses against the nef gene product of HIV-1 were determined in sequential sera from a longitudinally studied cohort of 194 initially asymptomatic HIV-1-seropositive individuals and 72 individuals who seroconverted for antibodies to HIV-1 structural proteins (gag/env). In the majority of men, nef-specific antibodies, once detected, persisted (67.6%). In some men, nef-specific antibodies were only transiently (6.8%), or intermittently (5.3%), detectable. No nef-specific antibodies were found in the remaining men (20.3%). Nef-specific antibodies were elicited early in infection, but rarely (2/72 men) prior to seroconversion for antibodies to HIV-1 structural proteins. An absent, transient, or intermittent nef-specific antibody response was significantly associated with the absence or disappearance of antibodies to HIV-1 core proteins, with (re)appearance and persistence of HIV-1 core antigen and with the presence of low CD4+ cell numbers, i.e. profiles previously shown to be predictive of rapid disease progression. Although more cases of AIDS and AIDS-related disease (21/86 versus 28/180) occurred in the nef-specific antibody-negative group than in the nef-specific antibody-positive group, this difference did not reach significance.

Acquired Immunodeficiency Syndrome↗

Reliable confirmation of antibodies to human immunodeficiency virus type 1 (HIV-1) with an enzyme-linked immunoassay using recombinant antigens derived from the HIV-1 gag, pol, and env genes.

An enzyme-linked immunoassay (ELISA) using six recombinant proteins corresponding to large segments of the human immunodeficiency virus type 1 (HIV-1) gag, pol, and env gene products (HIVAGEN; SmithKline Bio-Science Laboratories, Van Nuys, Calif.) was developed to confirm the presence of antibodies to HIV-1 in sera reactive in the whole-cell-derived virion screening ELISAs. Serum samples for testing were obtained from healthy seronegative blood donors and from the different categories of HIV-infected individuals (asymptomatic, acquired immunodeficiency syndrome [AIDS]-related complex, and AIDS). A positive reaction was defined as reactivity against an env and at least one other (either gag or pol) HIV-1 gene product; negative was defined as no reaction with any antigen; and indeterminate was defined as reactivity with gag or pol (or both) or with env alone. None of the 1,180 serum samples from healthy seronegative blood donors gave a positive result, and only 49 of these samples (4%) gave indeterminate results. The recombinant HIV-1 antigen ELISA panel identified seropositive individuals with a high degree of accuracy, as a positive reaction was seen with 99.3% of asymptomatic healthy seropositive individuals, 98.1% of patients with AIDS-related complex, and 90.4% of patients with AIDS. None of the 725 HIV-1-seropositive subjects had a negative test result. Reactivity with the Kp41 antigen, corresponding to an amino-terminal portion of the gp41 envelope glycoprotein, by itself demonstrated 100% sensitivity and specificity in distinguishing seronegative from seropositive sera. A subset of seronegative and seropositive samples were tested both with the recombinant HIV-1 antigen ELISA panel and by Western blot (Du Pont Co.). The recombinant HIV-1 antigen ELISA panel accurately identified more seropositive and seronegative samples and had fewer indeterminate results than did Western blot (interpreted by Du Pont criteria).

AIDS-Related Complex↗

Antibody response to human immunodeficiency virus type 1 protease according to risk group and disease stage.

Three groups with different routes of human immunodeficiency virus type 1 (HIV-1) transmission (homosexual men, hemophiliacs, and children) were studied for serum antibodies to a recombinant form of the HIV-1 protease using an enzyme-linked immunoassay. At 1 year after seroconversion, defined as the moment antibodies to HIV-1 proteins were first detected, 56% (34/61) of the homosexual men had antibodies to protease, and 2 years after seroconversion this percentage was 63% (24/38). Within this 2-year period these antibodies were no longer detected in 16% (9/56). A similar pattern was observed in 20 hemophiliacs who seroconverted after exposure to HIV-1-contaminated blood products. We found that 63% (160/255) of homosexual men in Centers for Disease Control stage II or III, 60% (9/15) of patients with acquired immunodeficiency syndrome (AIDS)-related complex, and 36% (14/39) of patients with AIDS had antibodies to protease. In 255 homosexual men in Centers for Disease Control stage II or III, antibodies to protease were significantly more frequently found in samples lacking HIV-1 antigen (P less than 0.001) and possessing antibodies to HIV-1 core proteins (P less than 0.001). Twenty-four persons who developed AIDS were studied longitudinally: 58% (14/24) had antibodies to protease 1 year before developing symptoms; 29% (7/24) showed a decline and 29% (7/24) showed a loss of antibodies to protease at the onset of symptoms. Within a group of 47 HIV-1-infected children, 90% (18/20) with a stable disease course were persistently protease antibody positive, versus 4 of 27 children (15%) with an unstable disease course (P = 0.0001). These data indicate that HIV-1 protease is expressed and antigenic in most HIV-1-infected individuals and that a decline or absence of antibodies to protease is strongly associated with unstable disease in children and AIDS in adults.

Acquired Immunodeficiency Syndrome↗

Phosphorylation of serine residue 89 of human adenovirus E1A proteins is responsible for their characteristic electrophoretic mobility shifts, and its mutation affects biological function.

The shift in mobility on sodium dodecyl sulfate-polyacrylamide gel electrophoresis that is characteristic of the adenovirus E1A proteins is the result of posttranslational modification. In the present study, we demonstrate that phosphorylation of bacterially produced E1A in higher cell extracts occurs on serine and is responsible for the mobility shift. E1A protein expressed in Saccharomyces cerevisiae also undergoes the mobility shift due to serine phosphorylation. Site-directed mutagenesis was used to identify the serine residue responsible for the mobility shift. Six serine residues were altered to glycine within E1A. Substitution at serine residue 89 was shown to selectively prevent the mobility shift of both the 289R and 243R E1A proteins. We conclude that phosphorylation at serine 89 is the specific modification responsible for the mobility shift of E1A. Moreover, we demonstrate that the Ser-89-to-Gly mutation has no effect on trans activation or complementation of an E1A-deficient adenovirus. In contrast, the mutant protein does significantly reduce both the repression and transformation efficiency of E1A. The five other Ser-to-Gly mutation were also examined for functional effects. None affected trans activation, whereas repression and transformation functions were affected. One mutant affected transformation without affecting repression, suggesting that these functions are to some degree also separable. The relevance of phosphorylation to structure and activity of E1A and other nuclear oncogene proteins is discussed.

Adenovirus Early Proteins↗

Purification and properties of the catalytic domain of human 3-hydroxy-3-methylglutaryl-CoA reductase expressed in Escherichia coli.

Three fragments of the cDNA encoding human 3-hydroxy-3-methylglutaryl-CoA reductase, all incorporating the majority of the catalytic domain of the protein, were subcloned into Escherichia coli expression vectors containing the pL promoter. The two larger expressed fragments (58 and 52 kDa) were soluble and had enzymatic activity, while the smallest (48 kDa) was insoluble. The two active fragments were purified by a combination of conventional techniques and affinity chromatography. A number of properties of the two enzymes were compared including specific activity, kinetic parameters, relative solubility, and cold lability. The 52-kDa enzyme was observed to change from a dimeric to monomeric form and to lose activity at 4 degrees C. In contrast, the 58-kDa enzyme was found to be much less cold labile, and was dimeric at both 20 and 4 degrees C. In order to resolve the number of subunits required to form an active site, the number of inhibitor binding sites for a known inhibitor was determined to be one per subunit in the 58-kDa enzyme.

Binding Sites↗

Activation of human immunodeficiency virus type 1 by DNA damage in human cells.

Recent studies indicate that human immunodeficiency virus type 1 (HIV) gene expression can be dramatically enhanced by certain heterologous viral and chemical agents, implicating these as potential reactivating agents of latent virus infection. A common denominator shared by these agents is their ability to cause stress responses in cells. In an effort to determine whether stress responses affect HIV gene expression, we examined the effects of ultraviolet light (UV) and mitomycin C, on HIV gene expression as well as on viral growth and development. We demonstrate that these agents enhance HIV gene expression up to 150-fold. These levels are similar to those obtained by the tat gene product, the HIV trans-activating factor responsible for enhancing viral gene expression. The increase in gene expression after UV irradiation appears to require transcription but not de novo protein synthesis, and correlates with an accumulation of stable mRNA. Most importantly, UV irradiation of human T-cells prior to viral infection significantly shortens the viral growth cycle. Apparently, UV-induced cellular stress is highly conducive for viral replication and growth. We further demonstrate that even direct sunlight can activate HIV gene expression. These results demonstrate that DNA damaging agents, and perhaps other agents which elicit SOS-like stress responses in mammalian cells, can activate HIV expression thereby enhancing viral replication and development.

Acetyltransferases↗

Natural antibodies to HIV-tat epitopes and expression of HIV-1 genes in vivo.

The tat regulatory protein of HIV-1 was expressed as a fusion protein in E. coli and used as antigen to detect antibodies against HIV-tat (anti-tat) in the serum of HIV-1 infected children and adults. HIV-1-infected children showed a higher frequency (55%) of anti-tat than HIV-1-infected adults (36%). Anti-tat were present in only 15% (3/20) of acutely infected individuals. Forty percent (10/25) of individuals with prolonged HIV-1 infection but without antigen were anti-tat positive. Only 13% (3/23) of HIV-1-antibody-positive individuals with prolonged HIV-1 antigenemia were anti-tat positive and titers of anti-tat antibodies declined with time. Pepscan analysis identified the amino terminus of HIV-tat as the major antibody-binding site. Antibodies to HIV-tat occurred as a harbinger of HIV-1 antigen expression and disappeared thereafter, possibly reflecting the transience of HIV-tat expression. Because of the low antigenicity of HIV-tat, antibodies to this regulatory protein are not a reliable marker for either early HIV-1 infection or subsequent disease progression.

Acquired Immunodeficiency Syndrome↗

Human immunodeficiency virus type 1 neutralization epitope with conserved architecture elicits early type-specific antibodies in experimentally infected chimpanzees.

Chimpanzees are susceptible to infection by divergent strains of human immunodeficiency virus type 1 (HIV-1), none of which cause clinical or immunological abnormalities. Chimpanzees were inoculated with one of four strains of HIV-1: human T-lymphotropic virus (HTLV) type IIIB, lymphadenopathy virus (LAV) type 1, HTLV type IIIRF, or an isolate from the brain of a patient with acquired immunodeficiency syndrome. Within 6 months after inoculation with the closely related strains HTLV-IIIB or LAV-1, six chimpanzees developed serum antibodies to the C-terminal half (amino acids 288-467) of the HTLV-IIIB external envelope glycoprotein gp120. Sera from five of those chimpanzees had HTLV-IIIB cell-fusion-inhibiting antibody titers greater than or equal to 20 at that time, indicating that they neutralized the infecting strain of HIV-1 in vitro. No antibodies to the carboxyl terminus of HTLV-IIIB gp120 were observed in sera of chimpanzees inoculated with HTLV-IIIRF or with the brain-tissue strain, and those sera did not neutralize HTLV-IIIB. A rabbit immunized with the C-terminal portion of gp120 acquired neutralizing antibodies that bound to four domains of the HTLV-IIIB external envelope as analyzed by reactivity to 536 overlapping nonapeptides of gp120. One of these domains in the variable region V3, with the amino acid sequence IRIQRGPGRAFVTIG (amino acids 307-321), bound to all chimpanzee sera that neutralized HTLV-IIIB but not to the serum of the HTLV-IIIRF-inoculated chimpanzee that did not neutralize HTLV-IIIB. The HTLV-IIIRF sequence at the same location, ITKGPGRVIYA, was recognized by the serum of the HTLV-IIIRF-inoculated chimpanzee but not by any sera of the HTLV-IIIB-inoculated or LAV-1-inoculated chimpanzees. The HTLV-IIIB residues RIQR and AFV and the HTLV-IIIRF residues lysine and VIYA, flanking a highly conserved beta-turn (GPGR), appear to be critical for antibody binding and subsequent type-specific virus neutralization. This neutralization epitope, putatively consisting of a loop between two cysteine residues (amino acids 296 and 331) connected by a disulfide bond, is immunodominant in HIV-1-infected chimpanzees and induces antibodies restricted to the homologous viral strain.

Amino Acid Sequence↗

Human immunodeficiency virus protease expressed in Escherichia coli exhibits autoprocessing and specific maturation of the gag precursor.

The mature gag and pol proteins of human immunodeficiency virus (HIV) and all retroviruses derive from large gag and gag-pol polyprotein precursors by posttranslational cleavage. A highly specific, virally encoded protease is required for this essential proteolytic processing. In this study, the HIV protease gene product was expressed in Escherichia coli and shown to autocatalyze its maturation from a larger precursor. In addition, this bacterially produced HIV protease specifically processed an HIV p55 gag polyprotein precursor when coexpressed in E. coli. This system will allow detailed structure-function analysis of the HIV protease and provides a simple assay for the development of potential therapeutic agents directed against this critical viral enzyme.

Amino Acid Sequence↗

Yeast metallothionein function in metal ion detoxification.

A genetic approach was taken to test the function of yeast metallothionein in metal ion detoxification. A yeast strain was constructed in which the metallothionein locus was deleted (cup1 delta). The cup1 delta strain was complemented with normal or mutant metallothionein genes under normal or constitutive regulatory control on high copy episomal plasmids. Metal resistance of the cup1 delta strain with and without the metallothionein-expressing vectors was analyzed. The normally regulated metallothionein gene conferred resistance only to copper (1000-fold); constitutively expressed metallothionein conferred resistance to both copper (500-fold) and cadmium (1000-fold), but not to mercury, zinc, silver, cobalt, nickel, gold, platinum, lanthanum, uranium, or tin. Two mutant versions of the metallothionein gene were constructed and tested for their ability to confer metal resistance in the cup1 delta background. The first had a deletion of a highly conserved amino acid sequence (Lys-Lys-Ser-Cys-Cys-Ser). The second was a hybrid gene consisting of the sequences coding for the first 20 amino acids of the yeast protein fused to the monkey metallothionein gene. Expression of these genes under the CUP1 promoter provided significant protection from copper, but none of the other metals tested. These results demonstrate that there is significant flexibility in the structural requirements for metallothionein to function in copper detoxification and that yeast metallothionein is also capable of detoxifying cadmium under conditions of constitutive expression.

Amino Acid Sequence↗

Regulation of the yeast metallothionein gene.

To study regulation of the yeast CUP1 gene, we have employed plasmids containing the CUP1 regulatory sequences fused to the Escherichia coli galK gene. A comparison of galK expression from low- and high-copy-number CUP1/galK fusion plasmids demonstrated that both basal and induced levels of galactokinase (GalK) increase proportionately with plasmid copy number. Host strains with an amplified, single or deleted CUP1 locus were compared to look for effects of chromosomal CUP1 gene dosage on expression from the episomal CUP1 promoter. Basal GalK levels are similar in CUP1R and cupls hosts, but can be induced to higher levels in the cup1s than the CUP1R host. In contrast, in a strain deleted for the chromosomal copy of CUP1, synthesis of GalK is constitutive but can be induced to yet higher levels by copper. A hybrid vector, placing the CUP1 coding sequence under the control of a constitutive promoter, was constructed. Introduction of this hybrid CUP1 gene into the deletion host containing the CUP1/galK plasmid restores regulation. Thus, metallothionein, in trans, can effect repression of the CUP1 promoter. The possible roles of metallothionein and free copper in CUP1 regulation are discussed.

Copper↗