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R C Hoeben

Publications and source records attributed to R C Hoeben.

At least 37 records · Page 2Linked to original sources

Photodynamic treatment of adenoviral vectors with visible light: an easy and convenient method for viral inactivation.

Recombinant adenovirus vectors are popular tools for gene transfer and gene therapy. However biosafety constraints require that all handling of the vectors and vector-containing samples is restricted to dedicated containment laboratories, unless they had undergone a validated virus-inactivation procedure, which decontaminates the samples from any active virus. In this study we evaluated the feasibility of photodynamic treatment (PDT) with visible light to inactivate recombinant adenovirus vectors in biological samples, with minimum associated effects on other biological activities. Several photosensitizers were tested for their capacity to inactivate a model human adenovirus vector, AdCMVLuc, upon illumination. Four photosensitizers (methylene blue (MB), rose bengal (RB), uroporphyrin (UP) and aluminum phthalocynine tetrasulphonate (AIPcS4)) could inactivate the adenovirus, as measured by expression of the luciferase reporter gene and by plaque assay. Of these, MB demonstrated to be the most effective sensitizer in phosphate-buffered saline (PBS), giving > 7 log10 inactivation of the adenovirus. DNA isolated from MB- and light-treated virions was inefficient as a template for transcription. Furthermore, Southern blot analysis revealed fragmentation of the viral DNA. Based on its preference for DNA, MB is suited for adenovirus inactivation in blood plasma. Spiking experiments in which AdCMVLuc was added to plasma samples demonstrated a reduction (> 4 log10-fold) of reporter gene expression to almost background levels. In contrast to MB, photodynamic treatment with RB, UP or AIPcS4 did not lead to DNA damage. Although alterations of the viral capsid could not be detected, the binding pattern of the particles to target cells was significantly changed. Taken together, our data demonstrate that PDT is an efficient, convenient and useful method for the inactivation of adenovirus vectors in biological samples.

Adenoviridae↗

Adenoviruses activate human dendritic cells without polarization toward a T-helper type 1-inducing subset.

Human monocyte-derived dendritic cells (DC) infected with recombinant adenoviruses (rAd) are promising candidate vaccines for inducing protective immunity against pathogens and tumors. However, since some viruses are known to negatively affect DC function, it is important to investigate the interactions between rAd and DC. We now show that infection by rAd enhances the immunostimulatory capacity of immature human monocyte-derived DC through the upregulation of the costimulatory molecules CD80, CD86, and CD40 and the major histocompatibility complex class I and II molecules. Although rAd infection fails to induce the secretion of interleukin-12 (IL-12) and only marginally induces the expression of the DC maturation marker CD83, it acts in synergy with CD40 triggering in rendering DC fully mature. rAd-infected DC triggered through CD40 produce more IL-12 and are more efficient in eliciting T-helper type 1 responses than DC activated by CD40 triggering only. rAd lacking one or more of the early regions, E1, E2A, E3, and E4, which play an important role in virus-host cell interactions are equally capable of DC activation. Efficient DC infection requires a high multiplicity of infection (>1,000), a fact which can be attributed to the absence of the coxsackievirus and adenovirus receptor on this cell type. Despite the poor ability of DC to be infected by rAd, which may be improved by targeting rAd to alternative DC surface molecules, DC infected with all currently tested rAd constitute potent immunostimulators. Our study provides new insights into the interactions between two highly promising vaccine components, rAd and DC, and indicates that their combination into one vaccine may be very advantageous for the stimulation of T-cell immunity.

Adenoviruses, Human↗

New helper cells and matched early region 1-deleted adenovirus vectors prevent generation of replication-competent adenoviruses.

The presence of replication-competent adenoviruses (RCAs) in batches of replication-defective adenovirus (Ad) vectors is a major problem for the application of these vectors in gene therapy. RCAs are generated by recombination between sequences in the Ad vector and homologous Ad sequences in the helper cells, resulting in the acquisition by the vector of early region 1. To prevent the formation of RCAs, we have developed helper cell lines, which we named PER, and matched Ad vectors that do not have sequence overlap. PER cells contain the Ad serotype 5 (Ad5) E1A- and E1B-encoding sequences (Ad5 nucleotides 459-3510) under the control of the human phosphoglycerate kinase (PGK) promoter. We demonstrate that PER cells synthesize high levels of the Ad5 E1A and E1B proteins. The yields from PER cells of E1-deleted Ads are similar to those obtained from earlier helper cells, such as 911 and 293 cells. Propagation of matched Ad vectors, which lack Ad5 nucleotides 459-3510, in one of the PER clones, PER.C6, does not result in the generation of RCAs, in contrast to propagation in 293 cells. We conclude that the combination of PER.C6 cells and nonoverlapping E1-deleted adenoviral vectors eliminates the problem of RCA generation by homologous recombination, and allows cost-effective production of safe, clinical-grade batches of recombinant Ad vectors.

Adenovirus E1A Proteins↗

[Gene therapy for hemophilia: feasible in principle but not yet clinically applicable].

The current treatment of haemophiliacs consists of injection of concentrates of blood clotting factors VIII (haemophilia A) and IX (haemophilia B). The inconvenience of the multiple injections needed, and the risk of transmission of infectious agents (HIV, hepatitis) prompted the development of alternative therapies. Gene therapy aims at introducing functional factor VIII and IX genes into the body cells of patients in order to make these cells produce the desired clotting factors. There are two strategies for gene therapy: (a) in the laboratory cells of the patient may be provided with the desired gene, followed by reintroduction of the cells that now produce factor VIII, into the patient (ex vivo strategy); (b) vectors with the desired genes may be injected into the patient in order to induce the modification (in vivo strategy) For both routes, the formal proof-of-principle has been acquired recently in animal experiments: cells modified by factor VIII or IX genes will produce adequate concentrations of the clotting products in plasma and will correct the bleeding tendency. Before the clinical evaluation and widespread application of the technology can be considered many technical problems have to be solved.

Factor IX↗

Towards gene therapy for colorectal liver metastases.

Hepatic gene therapy may provide a new approach to treating hepatic malignancies. A promising strategy involves the infection of tumor and liver cells with replication-defective adenoviral vectors carrying suicide genes. The products of these genes convert prodrugs into cytotoxic derivates. In the transduced cells the subsequently administered prodrugs are thus activated and destroy replicating tumor cells, whereas the infected liver cells are thought to be unaffected because of their minimal proliferative activity. A major concern about this approach is that the suicide genes can theoretically enter the germline and other organs with high mitotic activity and as a consequence, cause their destruction. In vivo gene delivery should therefore be tissue-specific, and methods for targeted gene delivery are required. Targeting the colorectal liver metastases is pursued by combining the suicide gene principle and the surgical technique of isolated perfusion of the liver.

Adenoviridae↗

Severe hepatic dysfunction after adenovirus-mediated transfer of the herpes simplex virus thymidine kinase gene and ganciclovir administration.

The use of so-called 'suicide' genes to activate prodrugs has been effective in animal models for several solid tumor types and is now in phase I and II clinical trials. We have exploited adenovirus vectors (Ad) for transfer and expression of the herpes simplex virus thymidine kinase (HSVtk) gene to render rat colorectal liver metastases sensitive to the anti-herpetic agent ganciclovir (GCV). The efficacy and toxicity of this enzyme-prodrug combination were tested after in situ transduction of rat colorectal tumor cells and after intraportal administration of the vector Ad.CMV.TK. Our results demonstrate the validity of the approach but reveal that hepatic expression of HSVtk, both in tumor bearing and in tumor-free rats, provokes severe liver dysfunction and mortality upon GCV administration. These data show, that in contrast to the common assumption, normally non-mitotic tissues too, can be affected by adenovirus-mediated HSVtk transfer and subsequent GCV treatment. Given the hepatotropic nature of systemically administered adenovirus type 2- and 5-derived vectors, it will be essential to monitor liver functions of patients included in all gene therapy trials involving adenoviral vectors with the HSVtk gene.

Adenoviridae↗

Protective anti-tumor immunity induced by vaccination with recombinant adenoviruses encoding multiple tumor-associated cytotoxic T lymphocyte epitopes in a string-of-beads fashion.

Vaccines harboring genes that encode functional oncoproteins are intrinsically hazardous, as their application may lead to introduction of these genes into normal cells and thereby to tumorigenesis. On the other hand, oncoproteins are especially attractive targets for immunotherapy of cancer, as their expression is generally required for tumor growth, making the arisal of tumor variants lacking these antigens unlikely. Using murine tumor models, we investigated the efficacy of polyepitope recombinant adenovirus (rAd) vaccines, which encode only the immunogenic T cell epitopes derived from several oncogenes, for the induction of protective anti-tumor immunity. We chose to employ rAd, as these are safe vectors that do not induce the side effects associated with, for example, vaccinia virus vaccines. A single polyepitope rAd was shown to give rise to presentation of both H-2 and human leukocyte antigen-restricted cytotoxic T lymphocyte (CTL) epitopes. Moreover, vaccination with a rAd encoding H-2-restricted CTL epitopes, derived from human adenovirus type 5 early region 1 and human papilloma virus type 16-induced tumors, elicited strong tumor-reactive CTL and protected the vaccinated animals against an otherwise lethal challenge with either of these tumors. The protection induced was superior compared with that obtained by vaccination with irradiated tumor cells. Thus, vaccination with polyepitope rAd is a powerful approach for the induction of protective anti-tumor immunity that allows simultaneous immunization against multiple tumor-associated T cell epitopes, restricted by various major histocompatibility complex haplotypes.

Adenoviridae↗

Activation or frustration of anti-tumor responses by T-cell-based immune modulation.

Many types of tumors (e.g. virus-induced tumors, melanomas, tumors over-expressing certain oncogenes) often express antigens that can induce T-cell-mediated tumor-specific immune responses. Nonetheless, many such tumors manage to circumvent the induction of an effective anti-tumor T-cell response, as is apparent from the many tumor-bearing patients. Therefore, optimally designed vaccination protocols may evoke a more powerful and competent T-cell-mediated anti-tumor response, allowing the host to effectively deal with at least some cancers. These vaccination approaches might include immunization with whole (tumor) cell-based vaccines, entire tumor antigens or selected T-cell epitopes derived from tumor antigens. This survey is an update of several anti-tumor vaccination approaches employed, and on novel possibilities to target the anti-tumor immune response to preselected tumor-derived T-cell epitopes.

Adenoviridae↗

Isolated-organ perfusion for local gene delivery: efficient adenovirus-mediated gene transfer into the liver.

Targeted gene delivery is essential for gene therapy involving in vivo gene transfer. In the present study we analyzed the efficiency and tissue-specificity of gene transfer into the liver with recombinant adenoviruses. Adenovirus vectors carrying the E. coli lacZ gene (Ad.RSV.beta-gal) and the firefly luciferase gene (AdCMV-luc) as reporters were administered to the liver of adult Wistar rats, either via infusion into the portal vein (intraportal infusion; IPI) or via perfusion of the vascularity isolated liver (isolated liver perfusion; ILP). Ex vivo liver perfusion experiments with Ad.RSV. beta-gal were used to optimize the conditions for hepatic gene transfer. Ex vivo perfusion of rat livers with 2 x 10(9) plaque forming units (p.f.u) Ad RSV.beta-gal was sufficient to infect about 20% of the liver parenchymal cells. Perfusion with chelating agents (1 mM EGTA, or 2 mM EDTA) prior to the administration of the vector increased the efficiency to at least 40%. Similar efficiencies were obtained in experiments with liver lobes of Rhesus monkeys. In vivo administration of AdCMV-luc via ILP resulted in a significantly more efficient (P = 0.028) and also more reproducible gene transfer when compared to IPI. Although detectable in both groups, extrahepatic luciferase expression was considerably reduced in the ILP group. Our data demonstrate that IPL can be used for efficient and reproducible liver-specific gene delivery. Therefore, we think that the perfusion of vascularly isolated organs is useful as a modality for the tissue-specific administration of recombinant adenovirus vectors.

Adenoviridae↗

Factors impeding efficient expression of factor VIII complementary DNA minigenes.

Haemophilia A is a bleeding disorder that affects approximately 1 in 10,000 males. It is caused by a deficiency of functional blood-clotting factor VIII. Protein-replacement therapy has been effective as treatment, resulting in a vast improvement in the quality of life and dramatically increasing the life expectancy of patients. However, therapy with plasma-derived factor VIII has allowed the transmission of several human viruses, such as hepatitis viruses, human immunodeficiency virus and parvovirus B19. To date, the safety of the therapeutic agent is one of the key issues in haemophilia A treatment. The use of recombinant factor VIII in haemophilia therapy can avoid the dependence on blood-derived products and prevent the occurrence of transfusion-associated infections with blood-borne pathogens. Gene therapy could go further, and offers the prospect of one-time treatment which may, optimally, achieve a total cure of the disease. Therefore, haemophilia is an appealing and challenging target for somatic-cell gene therapy. On the basis of the phenotypic correction that is achieved upon infusion of factor VIII protein, it is expected that an increase in the factor VIII plasma level to 10% of the level found in healthy individuals would suffice to prevent the manifestation of the bleeding tendency. In this paper, we review the progress and the problems of gene therapy for haemophilia, with special focus on the problems specifically associated with the transfer and expression of human factor VIII complementary DNA.

Animals↗

Characterization of 911: a new helper cell line for the titration and propagation of early region 1-deleted adenoviral vectors.

Currently, the preferred host for the production of early region-1 (E1)-deleted recombinant adenoviruses (rAdV) is cell line 293, which was generated by transformation of human embryonic kidney cells by sheared adenovirus 5 (Ad5) DNA. To develop alternative hosts for the production of rAdV, we generated adenovirus-transformed human cell lines by transformation of human embryonic retinoblasts (HER) with a plasmid containing base pairs 79-5789 of the Ad5 genome. One of the established HER cell lines, which we called 911, exhibited favorable growth characteristics and was chosen for further study. This cell line is demonstrated to have several characteristics in common with the well-known 293 cell line: The 911 cell line is highly transfectable, and exhibits similar frequencies of homologous recombination. However, it has additional characteristics that make it a useful alternative for 293. The 911 cells perform particularly well in plaque assays. Upon infection with E1-deleted adenoviruses, plaques become apparent in monolayers of 911 cells already after 3-4 days versus 4-10 days in monolayers of 293 cells, thereby reducing the time required for quantitative plaque assays. Furthermore, yields of E1-deleted adenovirus vectors up to three times as high as those achieved with 293 cells can be obtained with 911 cells. Finally, the Ad5-DNA content of the 911 cell line is completely known. These features make the 911 cell line a useful alternative for the construction, propagation, and titration of E1-deleted recombinant adenoviruses.

Adenovirus E1 Proteins↗

Application of in vitro Myo-differentiation of non-muscle cells to enhance gene expression and facilitate analysis of muscle proteins.

Introduction of the myogenic-determination gene MyoD forces non-muscle cell cultures into myogenesis, thereby inducing expression of muscle-specific proteins and facilitating their analysis. In several MyoD-transfected fibroblasts, immunohistochemical detection showed expression of desmin after three days, of titin after five days and of dystrophin after seven days. Cell fusion (myotube formation) could be observed after five days. After nine days a fraction of the cells showed a striated titin pattern, indicating an advanced state of muscle differentiation. Dystrophin (the protein absent in Duchenne Muscular Dystrophy patients) can be detected in MyoD-transfected and differentiated fibroblasts from healthy individuals, and is absent in those of patients. MyoD-transfection increases transcription of the dystrophin gene, facilitating RNA-based mutation detection. Using RNA from MyoD-transfected, differentiated fibroblasts of a deceased patient with an unknown, non-deletion mutation, we were able to identify a CGA-->TGA nonsense mutation in the rod domain at basepair 6492 and to establish a rapid mutation specific test for future diagnosis of the mutation in his relatives.

Base Composition↗

Gene therapy for the hemophilias.

This review discusses the progress of gene therapy for the hemophilias. The development of gene therapy for hemophilia A has been more problematic than that for hemophilia B. It is now well established that reduced expression of the human clotting factor VIII cDNA is caused by transcriptional repression. Multiple sequences within the factor VIII cDNA are involved. So far, attempts to improve the factor VIII cDNA expression have been unsuccessful. However, improved retroviral vectors and adenovirus-based vectors have been constructed that increase factor VIII expression. The use of these vectors has resulted in clinically relevant levels of human factor VIII in mice and hemophilic dogs. Thus, gene therapy for hemophilia A has reached the same developmental stage as that for hemophilia B. If further improvements can increase the persistence of expression and decrease the immunologic responses, phase I clinical trials in human individuals can be considered.

Animals↗

The human clotting factor VIII cDNA contains an autonomously replicating sequence consensus- and matrix attachment region-like sequence that binds a nuclear factor, represses heterologous gene expression, and mediates the transcriptional effects of sodium butyrate.

Expression of the human blood-clotting factor VIII (FVIII) cDNA is hampered by the presence of sequences located in the coding region that repress transcription. We have previously identified a 305-bp fragment within the FVIII cDNA that is involved in the repression (R.C. Hoeben, F.J. Fallaux, S.J. Cramer, D.J.M. van den Wollenberg, H. van Ormondt, E. Briet, and A.J. van der Eb, Blood 85:2447-2454, 1995). Here, we show that this 305-bp region of FVIII cDNA contains sequences that resemble the yeast (Saccharomyces cerevisiae) autonomously replicating sequence consensus. Two of these DNA elements coincide with AT-rich sequences that are often found in matrix attachment regions or scaffold-attached regions. One of these elements, consisting of nucleotides 1569 to 1600 of the FVIII cDNA (nucleotide numbering is according to the system of Wood et al. (W.I. Wood, D.J. Capon, C.C. Simonsen, D.L. Eaton, J. Gitschier, D. Keyt, P.H. Seeburg, D.H. Smith, P. Hollingshead, K.L. Wion, et al., Nature [London] 312:330-337,1984), binds a nuclear factor in vitro but loses this capacity after four of its base pairs have been changed. A synthetic heptamer of this segment can repress the expression of a chloramphenicol acetyltransferase (CAT) reporter gene and also loses this capacity upon mutation. Furthermore, we demonstrate that repression by FVIII sequences can be relieved by sodium butyrate. We demonstrate that the synthetic heptamer (FVIII nucleotides 1569 to 1600), when placed upstream of the Moloney murine leukemia virus long terminal repeat promoter that drives the CAT reporter, can render the CAT reporter inducible by butyrate. This effect was absent when the same element was mutated. The stimulatory effect of butyrate could not be attributed to butyrate-responsive elements in the studied long terminal repeat promoters. Our data provide a functional characterization of the sequences that repress expression of the FVIII cDNA. These data also suggest a link between transcriptional repression by FVIII cDNA elements and the stimulatory effect of butyrate on FVIII cDNA expression.

Base Sequence↗

Expression of the blood-clotting factor-VIII cDNA is repressed by a transcriptional silencer located in its coding region.

Hemophilia A is caused by a deficiency of factor-VIII procoagulant (fVIII) activity. The current treatment by frequent infusions of plasma-derived fVIII concentrates is very effective but has the risk of transmittance of blood-borne viruses (human immunodeficiency virus [HIV], hepatitis viruses). Use of recombinant DNA-derived fVIII as well as gene therapy could make hemophilia treatment independent of blood-derived products. So far, the problematic production of the fVIII protein and the low titers of the fVIII retrovirus stocks have prevented preclinical trials of gene therapy for hemophilia A in large-animal models. We have initiated a study of the mechanisms that oppose efficient fVIII synthesis. We have established that fVIII cDNA contains sequences that dominantly inhibit its own expression from retroviral as well as from plasmid vectors. The inhibition is not caused by instability of the fVIII mRNA (t1/2, > or = 6 hours) but rather to repression at the level of transcription. A 305-bp fragment is identified that is involved in but not sufficient for repression. This fragment does not overlap the region recently identified by Lynch et al (Hum Gene Ther 4:259, 1993) as a dominant inhibitor of RNA accumulation. The repression is mediated by a cellular factor (or factors) and is independent of the orientation of the element in the transcription unit, giving the repressor element the hallmarks of a transcriptional silencer.

Amino Acid Sequence↗