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K Cichutek

Publications and source records attributed to K Cichutek.

At least 37 records · Page 2Linked to original sources

The U3 promoter and the nef gene of simian immunodeficiency virus (SIV) smmPBj1.9 do not confer acute pathogenicity upon SIVagm.

Two chimeric proviruses comprising the U3 promoter and the nef gene of simian immunodeficiency virus (SIV) smmPBj1.9 in addition to other genomic regions of SIVagm3mc from African green monkeys (Cercopithecus aethiops) were constructed. The derived chimeric viruses (SIVagm3mc/SIVsmmPBj1.9) were both able to replicate in nonstimulated peripheral blood leukocytes from pig-tailed macaques (Macaca nemestrina), a biological property often correlated with acute pathogenicity. However, only one of the chimeric viruses was acutely pathogenic, inducing a rapid depletion of the peripheral CD4+ T cells in two infected pig-tailed macaques within 10 days after infection in a manner similar to infection with SIVsmmPBj1.9 itself. The other chimeric virus actively replicated during the first 8 weeks after experimental infection of two pig-tailed macaques but induced neither acute disease nor CD4+ T-cell depletion for 113 weeks after infection. Thus, the U3 promoter and the nef gene of SIVsmmPBj1.9 alone appear to be insufficient to confer acute pathogenicity to SIVagm3mc.

Animals↗

Pseudotyping of murine leukemia virus with the envelope glycoproteins of HIV generates a retroviral vector with specificity of infection for CD4-expressing cells.

CD4-expressing T cells in lymphoid organs are infected by the primary strains of HIV and represent one of the main sources of virus replication. Gene therapy strategies are being developed that allow the transfer of exogenous genes into CD4(+) T lymphocytes whose expression might prevent viral infection or replication. Insights into the mechanisms that govern virus entry into the target cells can be exploited for this purpose. Major determinants of the tropism of infection are the CD4 molecules on the surface of the target cells and the viral envelope glycoproteins at the viral surface. The best characterized and most widely used gene transfer vectors are derived from Moloney murine leukemia virus (MuLV). To generate MuLV-based retroviral gene transfer vector particles with specificity of infection for CD4-expressing cells, we attempted to produce viral pseudotypes, consisting of MuLV capsid particles and the surface (SU) and transmembrane (TM) envelope glycoproteins gp120-SU and gp41-TM of HIV type 1 (HIV-1). Full-length HIV-1 envelope glycoproteins were expressed in the MuLV env-negative packaging cell line TELCeB6. Formation of infectious pseudotype particles was not observed. However, using a truncated variant of the transmembrane protein, lacking sequences of the carboxyl-terminal cytoplasmic domain, pseudotyped retroviruses were generated. Removal of the carboxyl-terminal domain of the transmembrane envelope protein of HIV-1 was therefore absolutely required for the generation of the viral pseudotypes. The virus was shown to infect CD4-expressing cell lines, and infection was prevented by antisera specific for gp120-SU. This retroviral vector should prove useful for the study of HIV infection events mediated by HIV-1 envelope glycoproteins, and for the targeting of CD4(+) cells during gene therapy of AIDS.

CD4 Antigens↗

Increased serum and mRNA levels of RANTES associated with elevated levels of activated CD8+CD38+ T cells in HIV-1 infected individuals.

The serum levels of the beta-chemokine RANTES and, albeit less, MIP-1 beta were found to be increased in 37 HIV-1 infected compared to seronegative individuals. In contrast the serum levels of IL-16 were only sporadically elevated in seropositives as well as in seronegatives. Concomitantly, the RANTES gene expression increased about tenfold in seropositives, whereas the MIP-1 beta and IL-16 mRNA levels were not elevated. No correlation between the increase of the MIP-1 beta and RANTES serum concentrations and the plasma virus load, the number of the peripheral CD4+ T cells or the therapy status of the patients was found. However, the increased proportion of activated CD8+CD38+ T cells in the peripheral blood of all seropositives paralleled the increased RANTES serum levels detected indicating that immune activation in HIV-1-infected individuals may contribute to increased RANTES serum levels.

ADP-ribosyl Cyclase↗

Induction of antibodies against SIV antigens after intramuscular nucleic acid inoculation using complex expression constructs.

By studying the infection of rhesus macaques with simian immunodeficiency virus (SIVmac) the potential of nucleic acid immunisation against AIDS can be evaluated. As a first step towards the development of suitable expression constructs, the levels and the durations of expression elicited by the house-keeping gene promoters of the murine phospho-glycerate kinase (PGK) gene and rat proto-ras 1Ha, a lentiviral LTR and the CMV-intron A promoter were tested in BALB/c mice intramuscularly inoculated with marker gene constructs encoding luciferase. The expression levels achieved by the CMV-intron A and the lentiviral promoter were comparably high, and also the PGK promoter induced a high level of expression for at least 64 days. Following the inoculation of plasmids comprising single or multiple genes of SIV, the induction of specific antibodies directed against SIV antigens was demonstrated. We previously showed in vitro that int- and nef-defective mutants of SIVmac were able to initiate a limited and self-abortive infection of permissive cells in the absence of chromosomal integration of the viral DNA. Intramuscular inoculations in monkeys using int-defective proviral DNA of SIV will show whether an increased immune response may be induced by expression of viruses undergoing a self-limited replication in vivo.

Animals↗

Replication and cytopathogenicity of human immunodeficiency virus type 1 (HIV-1)/simian immunodeficiency virus agm3 chimeric viruses in human and monkey cells: the 5' half of the HIV-1 genome is responsible for virus cytopathogenicity.

Two chimeric viruses were constructed between human immunodeficiency virus type 1 (HIV-1) and an apathogenic simian immunodeficiency virus (SIVagm3mc) from African green monkeys. One of the chimeras, HE-A391, expressed the HIV-1-derived env, vpu, tat and rev genes and the SIVagm3mc-derived LTR and the gag, pol and vif genes. The other chimera, SE-H13, contained the SIVagm3mc-derived env, tat and rev genes and the HIV-1-derived LTR and the gag, pol, vif and nef genes. Both constructs yielded infectious viruses and their phenotypes (growth-competence and cell-killing capacity) were examined in various CD4+ cells including human and monkey PBMCs. The results indicated that the replicative properties of the chimeras were mainly dependent on the 5'-genomic half of the parental viruses, and the determinant for viral cytopathogenicity was located within the 5' half of the HIV-1 genome.

Animals↗

An in vitro assay for acute pathogenicity of immunodeficiency viruses.

As a model for AIDS, experimental infections of old-world monkeys with various simian immunodeficiency viruses (SIV) are frequently carried out to study mechanisms of pathogenicity. For example, SIVsmmPBj14 was isolated from a pig-tailed macaque (Macaca nemestrina) suffering from acute viral disease. The molecular virus clone SIVsmmPBj1.9, which displays close genetic homology to other related SIVs, was shown to induce an acute viral disease in vivo after infection of pig-tailed and rhesus macaques. The acute pathogenicity of SIVsmmPBj1.9 was correlated with its unique ability to replicate in non-stimulated peripheral blood mononuclear cells from pig-tailed macaques. We have exploited this in vitro assay to resolve putative pathogenic genetic determinants of another SIV, namelySIVagm3, isolated from African green monkeys (Cercopithecus aethiops). Hybrid viruses encompassing subgenomic regions of SVsmmPBj1.9 in place of comparable regions of molecular virus clone SIVagm3mc were constructed and tested for their ability to replicate in non-stimulated PBMC from pig-tailed macaques and African green monkeys. Only those hybrid viruses comprising the U3 region of the viral LTR of SIVsmmPBj1.9 replicated in non-stimulated peripheral blood mononuclear cells. This in vitro assay will be used to determine the potential of SIV and of hybrid viruses between different SIVs to induce acute viral disease in vivo. It will help to avoid excessive experimental infections of monkeys with respective hybrid viruses for determining genetic determinants of acute pathogenicity of immunodeficiency viruses.

Acquired Immunodeficiency Syndrome↗

Obtaining marketing authorization for nucleic acid vaccines in the European Union.

Nucleic acid vaccines are promising candidates for easy-to-handle and cost-effective vaccines that combine the safety of subunit vaccines with the efficacy of live virus vaccines. In order to obtain marketing authorization for a nucleic acid vaccine in all member states of the European Union, a single application dossier has to be filed with the European Agency for the Evaluation of Medicinal Products. Notes for Guidance on the data necessary to support applications are available. The preclinical development of nucleic acid vaccines has to follow procedures of contained use according to the relevant EC directives which were translated into the German Gene Law. Clinical trials in Germany would follow the known procedures defined in the German Drug Law, whereas the Gene Law is not applicable. Clinical trials should be started only after having obtained consent of the Commission for Gene Therapy Trials formed under the auspices of the Federal Chamber of Physicians. Experience in intramuscular nucleic acid inoculation of animals has been gained using expression constructs comprising single and multiple genes of simian immunodeficiency virus. Specific antibodies were induced against multiple antigens. No adverse effects of nucleic acid inoculations were found, but more rigorous testing of specific safety problems will have to be performed.

AIDS Vaccines↗

The U3 promoter region of the acutely lethal simian immunodeficiency virus clone smmPBj1.9 confers related biological activity on the apathogenic clone agm3mc.

Infection with the acutely pathogenic molecular virus clone SIVsmmPBj1.9, cloned from isolate PBj14 of simian immunodeficiency virus (SIV) from sooty mangabey monkeys (Cercocebus atys), leads to acute viral and often lethal disease within days or weeks. SIVsmmPBj1.9 has the unique property of replicating in nonstimulated peripheral blood mononuclear cells from pig-tailed macaques. In contrast, molecular virus clone SIVagm3mc of SIV from African green monkeys (Cercopithecus aethiops), which is apathogenic in its natural host and in pig-tailed macaques, is unable to grow in nonstimulated peripheral blood cells. Chimeric proviruses were constructed by exchanging defined regions of SIVagm3mc against comparable regions of SIVsmmPBj1.9. Four of five hybrid viruses generated by transfection into the CD4-positive T-cell line C8166 replicated in T-cell lines permissive for SIVagm3mc replication and in stimulated peripheral blood cells from pig-tailed macaques and from African green monkeys. Three hybrid viruses displayed the distinct biological property of SIVsmmPBj14 to replicate in nonstimulated peripheral blood cells from pig-tailed macaques and from African green monkeys. Replication in nonstimulated peripheral blood cells was dependent on the presence of the U3 promoter region of SIVsmmPBj1.9 within the viral long terminal repeat.

Animals↗

Development of transforming function during transduction of proto-ras into Harvey sarcoma virus.

Oncogenic retroviruses are generated by transduction of the coding region of a protooncogene and acquire genetic changes during subsequent replication. Critical genetic events which occurred during and after transduction of rat proto-ras-1Ha into Harvey sarcoma virus were identified by evaluating the transforming activity of plausible synthetic progenitor proviruses encompassing the complete proto-ras genomic region with or without various 5' deletions. All progenitor proviruses induced phenotypic transformation of mouse NIH 3T3 cells, although with a 5- to 10-fold lower frequency than Harvey sarcoma provirus. Although no tumor formation was observed in vivo after inoculation in the absence of helper murine retrovirus, both wild-type and progenitor viruses inoculated in the presence of helper virus induced tumors in newborn BALB/c mice. No critical alterations of the p21ras coding region and no deletion of 5' genomic elements were detected in a progenitor virus encompassing the complete proto-ras genomic region that had been isolated from tumors. However, one progenitor virus that included all proto-ras exons induced tumors with a decreased latency. This virus contained a mutation in codon 12 (glycine to valine), which had apparently been selected during tumorigenesis in vivo. During the genesis of Harvey sarcoma virus, critical steps conferring transforming function are therefore transduction of coding proto-ras exons and enhancement of their transforming function by specific amino acid changes in p21ras.

3T3 Cells↗

Nucleic acid immunization: a prophylactic gene therapy?

Nucleic acid (NA) vaccines may offer the safety of subunit or inactivated vaccines and, at the same time, provide the advantages of live recombinant vaccines, such as induction of a protective cellular immune response. In Germany, the so-called 'Gene Law' regulates the genetic modification of organisms such as prokaryotic or eukaryotic cells for the construction of recombinant NAs intended for use as NA vaccines. Neither NAs nor human beings treated with NAs are subject to Gene Law regulations but preclinical laboratory experiments are regulated by the Gene Law. Gene therapy, as defined in a recent draft of a European guideline for the production of gene therapeutics, includes the genetic modification of human somatic cells via transfer of NAs and thus includes NA vaccines. The guideline provides recommendations for the production of NA vaccines for human use and for preclinical safety testing. NA vaccines are products derived by biotechnological processes, as defined in part A of the annex of Council Regulation (EEC) No. 2309/93 of 22 July 1993. Applications for marketing authorization in Member States of the European Union will thus be reviewed by the European Agency for the Evaluation of Medicinal Products starting from 1 January 1995. Inoculation of NAs encompassing a full-length but int/nef-defective simian immunodeficiency provirus allowing limited replication of viruses released is being investigated at the Paul-Ehrlich-Institute as a model for a NA vaccine against AIDS.(ABSTRACT TRUNCATED AT 250 WORDS)

AIDS Vaccines↗

Self-limiting infection by int/nef-double mutants of simian immunodeficiency virus.

Simian immunodeficiency virus (SIVmac) infectious for rhesus monkeys was altered by site-directed mutagenesis of genes influencing in vivo replication and persistence with the long-term goal to develop attenuated lentiviruses with limited replication capacity in vivo. Double mutants of SIVmac (termed delta-int 1 to 3) were generated by introducing frameshift and deletion mutations into the nef gene and into the pol gene region coding for the integrase protein. Delta-int/delta-nef viruses formed after transfection of CD(4+)-lymphocyte cell lines were unable to establish sustained replication. In contrast, both wild-type SIVmac and mutant SIVmac delta-nef (coding for a truncated NEF protein and a wild-type INT protein) replicated continuously and at a comparable rate. However, a transient and self-limiting infection of the C8166 T-cell line was observed subsequent to transfection of double mutant proviruses into HeLa-tat-III cells. Viruses attenuated by int/nef-double mutation were able to enter the T-cells, initiate synthesis of viral DNA as shown by PCR amplification of closed circular episomes, and express viral antigens in infected cells as demonstrated by immunocytochemical staining. Integration of the int mutant viruses into the chromosome was completely inhibited. Episomal viral DNA was detectable in the infected cells for up to 2 weeks, after which it disappeared. Thus, SIVmac attenuated by int and nef mutation established a transient infection of permissive cells resulting in the expression of viral antigen from episomal viral DNA over a limited period of time.

Antigens, Viral↗

Development of a quasispecies of human immunodeficiency virus type 1 in vivo.

During treatment with one specific batch of blood clotting factor IX, a number of hemophilia B patients in Germany recently became infected with human immunodeficiency virus type 1 (HIV-1). The nucleotide sequences of cloned HIV-1 envelope gene regions including the variable V3 loop and the V4 region derived from short-term virus cultures and directly from peripheral blood cells of these patients were shown to be highly homologous. Based on the assumption that the corresponding consensus sequence (termed HIV-1MBK) was identical to the genotype of the initially infecting virus, we were able to construct phylogenetic trees of the developing quasispecies in two patients studied in detail. True intermediates between input and multiply mutated genotypes were found in individual blood samples. Except for the initially infecting variant HIV-1MBK, variants found at 11 months postinfection had replaced those seen at 5 months postinfection. Variability early after infection was shown to cluster in two small regions located 3' of the V3 loop (i.e., outside the loop) and within the V4 region. This communication therefore describes the evolution of an HIV-1 quasispecies in humans starting from a single genotype.

Amino Acid Sequence↗

Quantitation of a lentivirus in its natural host: simian immunodeficiency virus in African green monkeys.

We have examined the viral load in the peripheral blood of simian immunodeficiency virus (SIV)-infected African green monkeys with a view to the unexplained apathogenicity of African green monkey SIV (SIVagm) in its natural host. By using polymerase chain reaction, viral DNA was detected in fresh peripheral blood mononuclear cells (PBMC) of each of nine seropositive animals. The virus DNA load was variable among the monkeys tested, ranging from 5 to 50 (mean = 15) copies per 10(5) PBMC, which is comparable to that of human immunodeficiency virus type 1 (HIV-1) in humans. The level of infectious SIVagm in PBMC was measured by endpoint dilution cultures. SIVagm was recovered from PBMC from 14 of 17 antibody-positive monkeys (82%), and the mean SIVagm titer in PBMC of seropositive African green monkeys was 10 tissue culture infectious doses per 10(6) cells, similar to the titer shown for HIV in asymptomatic carriers. Free infectious virus was isolated from the plasma of 4 of 17 monkeys (24%), and SIVagm expression in peripheral blood in vivo, as demonstrated by in situ hybridization, was detectable only in those animals which were viremic. SIVagm replication is therefore not totally suppressed in vivo, and SIVagm has a viral load equivalent to that seen for HIV-1 in asymptomatic humans.

Animals↗

Vaccine protection against SIVmac infection by high- but not low-dose whole inactivated virus immunogen.

Eight rhesus macaques were immunized intramuscularly four times (0, 1, 2, and 4 months) over a period of 4 months with a formalin-inactivated whole Simian immunodeficiency virus (SIV) vaccine in the presence of muramyl dipeptide (MDP) as adjuvant. Four animals received 0.5 mg and the other four received 0.1 mg immunogen per injection. Three weeks after the final immunization, the vaccinated monkeys along with two control monkeys were challenged intravenously with 50 MID50 of SIVmac251-32H. At the time of challenge, one monkey from the high dose group had a high titer (1:761) of antibody able to neutralize in vitro the homologous 32H strain of SIV mac. All other animals had lower but measurable titers (1:57-1:453), although there was no correlation between the levels of neutralizing antibody and subsequent protection. Upon challenge, three of four animals from the low dose group (plus the nonvaccinated control animals) became infected as demonstrated by reisolation of virus from peripheral blood mononuclear cells, by SIVmac-specific polymerase chain reaction, and by the development of a strong anamnestic response. In the sera from these animals the titer of neutralizing antibody rose to over 1:5,100. All other animals (one from low dose group and all four of the high dose group) remained negative by all parameters at 4 months post challenge. These data indicate that when used in conjunction with MDP, the amount of immunogen required per immunization for protection against challenge is between 0.1 and 0.5 mg.

Animals↗

Development of vivo of genetic variability of simian immunodeficiency virus.

Rapid development of genetic variability may contribute to the pathogenicity of lentiviruses as it may allow escape from immune surveillance and/or from suppression of virus replication. Although apathogenic in African green monkeys, simian immunodeficiency virus isolated from African green monkeys is shown to display extensive genetic variability and defectiveness in the V1- and V2-like variable domains of the external envelope protein comparable to that known for human immunodeficiency virus. However, in contrast to the situation in human immunodeficiency virus-infected individuals, a predominant major virus variant was detected neither in a monkey naturally infected for more than 10 years nor in two monkeys infected with a molecular virus clone for 15-20 months. Extensive variability evolves from a single genotype with a maximal rate of 7.7 mutations per 1000 nucleotides per year. A remarkable selection for nonsynonymous mutations that accounts for 92% of all changes indicates continuous selection of variants.

Amino Acid Sequence↗

Transforming function of proto-ras genes depends on heterologous promoters and is enhanced by specific point mutations.

Based on transfection into cells in culture or natural transduction into retroviruses, proto-ras genes seem to derive transforming function either from heterologous promoters or from point mutations. Here we ask how such different events could achieve the same results. To identify homologous regulatory elements, about 3 kilobases of rat DNA upstream of the first untranslated proto-Ha-ras exon was sequenced. Surprisingly, the sequence shares at -1858 a homology of 148 nucleotides with Harvey (Ha) sarcoma virus, 5' of viral ras, signaling possibly a second untranslated proto-Ha-ras exon. In addition the sequence contains a perfect repeat of 25 CA dinucleotides at -2655. A retroviral promoter, even from upstream of the poly(CA), conferred transforming function on proto-Ha-ras and increased transcription greater than 100-fold compared with that of unrearranged proto-ras. Point mutations were not necessary for transforming function of rat and human proto-Ha-ras genes with retroviral promoters but did enhance it greater than 10-fold. A unifying hypothesis proposes that proto-ras genes depend on high expression from heterologous promoters or enhancers for transforming function, which is modulated by ras point mutations. The hypothesis makes two testable predictions. (i) Unrearranged proto-ras genes with point mutations, which occur in some cancers, have no transforming function. Indeed, tumors with mutated proto-ras genes, even those that also lack hypothetical tumor-suppressor genes, are indistinguishable from counterparts with normal proto-ras genes. (ii) Proto-ras genes in transfected cells derive transforming function from heterologous promoters or enhancers acquired via illegitimate recombination from vector DNAs and particularly from viral helper genes that must be cotransfected for transformation of primary cells. Indeed, expression of exogenous proto-ras genes in cells transformed by transfection is as high as for viral ras genes and is much higher than in the cells of origin.

Animals↗