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High level of transgene expression in primary chronic lymphocytic leukemia cells using helper-virus-free recombinant Epstein-Barr virus vectors.

OBJECTIVE: Epstein-Barr virus (EBV)-based vectors have favorable features for gene transfer, including a high transduction efficiency especially for B cells, large packaging capacity up to 150 kb pairs, and ability to infect postmitotic cells. Recombinant EBV was explored for transduction of primary human B-cell chronic lymphocytic leukemia (CLL) cells. MATERIAL AND METHODS: EBV vectors deleted for all oncogenic sequences and encoding terminal repeats (TR) essential for encapsidation, the lytic origin of replication (oriLyt) for DNA amplification, and the enhanced green fluorescent protein (EGFP) were packaged using an optimized, helper-virus-free method. Infectious EBV virions encoding EGFP (EBV/EGFP) with an infectious titer up to 2 x 10(6) per milliliter were generated. Primary leukemic cells from 14 patients with CLL were successfully transduced with EBV/EGFP at a very low multiplicity of infection (< 1). RESULTS: Transgene expression was detected in up to 85% of cells 48 hours after infection. Transduction was specifically mediated by EBV vectors because gene transfer was inhibited by an antibody (72A1) directed against the viral envelope glycoprotein gp350/220. Furthermore, transduction of CLL cells with packaged EBV vectors coding for EGFP but deleted for TR sequences (TR-) did not result in EGFP expression compared to TR+ vector constructs (p = 0.009). CONCLUSION: Helper-virus-free EBV-based gene transfer vectors hold promise for development of genetic therapies for CLL patients.

Adult↗

Polyoma virus middle T antigen: meddler or mimic?

Polyoma virus middle T antigen duplicates the actions of growth-factor receptors in binding the signalling molecules phosphatidylinositol 3'-OH kinase and Shc. These properties indicate that middle T is mitogenic and may be required to overcome inhibition of DNA replication during the lytic life cycle of the virus.

Animals↗

Expression of a family of complementary-strand transcripts in Epstein-Barr virus-infected cells.

A major family of polyadenylylated cytoplasmic transcripts are expressed from the BamHI A-I region of the Epstein-Barr virus genome, off the strand complementary to that encoding several functions associated with viral replication and the lytic cycle, including the DNA polymerase (BALF-5). These complementary-strand transcripts (the main one is about 4.8 kilobases long), expressed in all cell types associated with Epstein-Barr virus, are present at high levels in nasopharyngeal carcinoma tumors. Sequence analysis of clones that correspond to spliced transcripts in a cDNA library from such a tumor, C15, generates a profile of the main complementary mRNA. It contains at least three AUG-initiated open reading frames, the largest of which could be translated to give a polypeptide of about 20 kDa. Evidence from several types of experiments suggests that conditions which support the up (or down) regulation of transcriptional expression from one viral DNA strand within the relevant region of the genome produce the opposite effect on transcripts from the other strand. The capacity for interference between complementary Epstein-Barr viral transcripts offers a mechanism for control of gene expression that may be related to maintenance of viral latency.

Base Sequence↗

Divergent molecular pathways of productive and latent infection with a virulent strain of herpes simplex virus type 1.

Mutants of herpes simplex virus (HSV) have been used to show that a variety of key genes associated with initiation of lytic infection or replication of viral DNA are not essential for establishment of latency. These observations are extended in the present study, in which a virulent strain of HSV type 1 that is not compromised in its ability to productively infect neurons under favorable conditions was used to demonstrate early divergence of molecular pathways leading to productive and latent infection. Our experimental strategy made unique use of the segmental innervation of the vertebrate trunk to study the spread of virus throughout the peripheral nervous system after inoculation of mouse flanks. Evidence of viral gene expression, including that of immediate-early genes, was transient, confined to ganglia directly innervating the inoculated skin (8th through 12th thoracic segments), and seen only at sites from which infectious virus could be recovered. In contrast, neurons containing latency-associated transcripts and reactivatable virus were more widely distributed (sixth thoracic through first lumbar segments), from which we conclude that replication-competent HSV type 1 can establish latency without initiating productive infection.

Acute Disease↗

CCAAT/enhancer binding protein alpha interacts with ZTA and mediates ZTA-induced p21(CIP-1) accumulation and G(1) cell cycle arrest during the Epstein-Barr virus lytic cycle.

Cellular CCAAT/enhancer binding protein alpha (C/EBPalpha) promotes cellular differentiation and has antimitotic activities involving cell cycle arrest at G(1)/S through stabilization of p21(CIP-1)/WAF1 and through transcriptional activation of the p21 promoter. The Epstein-Barr virus lytic-cycle transactivator protein ZTA is known to arrest the host cell cycle at G(1)/S via a p53-independent p21 pathway, but the detailed molecular mechanisms involved have not been defined. To further evaluate the role of ZTA in cell cycle arrest, we constructed a recombinant adenovirus vector expressing ZTA (Ad-ZTA), whose level of expression at a low multiplicity of infection in normal human diploid fibroblast (HF) cells was lower than or equal to the physiological level seen in Akata cells lytically induced by EBV (EBV-Akata cells). Fluorescence-activated cell sorting analysis of HF cells infected with Ad-ZTA confirmed that G(1)/S cell cycle arrest occurred in the majority of ZTA-positive cells, but not with an adenovirus vector expressing green fluorescent protein. Double-label immunofluorescence assays (IFA) performed with Ad-ZTA-infected HF cells revealed that only ZTA-positive cells induced the expression of both endogenous C/EBPalpha and p21 and blocked the progression into S phase, as detected by a lack of incorporation of bromodeoxyuridine. The stimulation of endogenous ZTA protein expression either through treatment with tetradecanoyl phorbol acetate in D98/HR1 cells or through B-cell receptor cross-linking with anti-immunoglobulin G antibody in EBV-Akata cells also coincided with the induction of both C/EBPalpha and p21 and their mRNAs, as assayed by Northern blot, Western blot, and IFA experiments. Mechanistically, the ZTA protein proved to directly interact with C/EBPalpha by coimmunoprecipitation in EBV-Akata cells and with DNA-bound C/EBPalpha in electrophoretic mobility shift assay experiments, and the in vitro interaction domain encompassed the basic leucine zipper domain of ZTA. ZTA also specifically protected C/EBPalpha from degradation in a protein stability assay with a non-EBV-induced Akata cell proteasome extract. Furthermore, both C/EBPalpha and ZTA were found to specifically associate with the C/EBPalpha promoter in chromatin immunoprecipitation assays, but the interaction with ZTA appeared to be mediated by C/EBPalpha because it was abolished by clearing with anti-C/EBPalpha antibody. ZTA did not bind to or activate the C/EBPalpha promoter directly but cooperatively enhanced the positive autoregulation of the C/EBPalpha promoter by cotransfected C/EBPalpha in transient luciferase reporter gene assays with Vero and HeLa cells as well as with DG75 B lymphocytes. Similarly, ZTA alone had little effect on the p21 promoter in transient reporter gene assays, but in the presence of cotransfected C/EBPalpha, ZTA enhanced the level of C/EBPalpha activation. This effect proved to require a previously unrecognized region in the proximal p21 promoter that contains three high-affinity C/EBPalpha binding sites. Finally, in C/EBPalpha-deficient mouse embryonic fibroblasts (MEF), Ad-ZTA was unable to induce either p21 or G(1) arrest, whereas it was able to induce both in wild-type MEF. Overall, we conclude that C/EBPalpha is essential for at least one pathway of ZTA-induced G(1) arrest during EBV lytic-cycle DNA replication and that this process involves a physical piggyback interaction between ZTA and C/EBPalpha leading to greatly enhanced C/EBPalpha and p21 levels through both transcriptional and posttranslational mechanisms.

Adenoviridae↗

Mechanism and consequence of viral persistence in cells of the immune system and neurons.

Viral persistence depends on a virus having a non-lytic strategy of replication and the ability to escape immune surveillance. Cells of the immune system (lymphocytes/monocytes/macrophages) and central nervous system (neurons) are most often infected by DNA and RNA viruses that persist. Cytotoxic T lymphocytes (CTL) are the primary host defense that aborts or prevents viral persistence. Viral interaction with these specialized cells and of such infected cells with CTL is explored in this paper.

Animals↗

Risk assessment of the use of autonomous parvovirus-based vectors.

Autonomous parvoviruses are small, non-enveloped, lytic DNA viruses replicating in the nucleus of actively dividing mammalian cells of appropriate species and tissue origins. In contrast to AAV, the other main subgroup of parvoviruses, autonomous parvoviruses do not require the assistance of an auxiliary virus for productive infection and do not stably integrate in the cellular DNA. Therefore, autonomous parvoviruses are suitable vectors for mediating transient gene transduction in dividing target cells. Interestingly, some of these viruses possess a striking inherent oncotropism, which may render them particularly suitable as selective vehicles in the clinical context of cancer gene therapy. In this chapter, we will present a brief overview of the biology of autonomous parvoviruses. This topic will be followed by a description of the design and recent developments in the production and use of parvoviral vectors, with a particular emphasis on biosafety aspects. Finally, the risk assessment related to the production and use of parvoviral vectors will be discussed in last part of the chapter.

Genetic Vectors↗

[p53: prospects for gene therapy of cancer].

PURPOSE: To evaluate the prospects for cancer gene therapy through restoration of wild-type p53 (wt-p53) protein expression and/or function. DESIGN: To review the most significant data reported in the literature with particular attention in dissecting the biological questions that are still open and need to be clarified to improve TP53-based gene therapy. RESULTS: Considerable experimental evidence obtained in vitro and in vivo indicates that wt-p53 protein can suppress the transformed phenotype of several types of cancer in humans as well as other species. Wt-p53 protein suppress transformation by inducing different biological effects including maintenance of genomic stability, inhibition of cell proliferation, induction of apoptosis, differentiation or senescence. All these findings have rendered p53 a potential helpful target for therapy of many types of human cancers. CONCLUSIONS: Different experimental strategies based on i) TP53 gene-replacement, ii) restoration of wt-p53 activity, iii) replication of defective lytic viruses specifically in altered p53-expressing tumors, have given promising results in vitro and, in some cases also in vivo. At present, a few phase one clinical trials have been started for some of the gene-replacement strategies.

Apoptosis↗

The C-mer gene is induced by Epstein-Barr virus immediate-early protein BRLF1.

BRLF1 (R) is one of two Epstein-Barr virus (EBV) immediate-early proteins that mediate the switch from the latent to the lytic form of viral replication. In this report, we show that R induces expression of the cellular C-mer gene in a variety of cell lines. C-mer expression was detected in lymphoblastoid cells immortalized with wild-type EBV but not in lymphoblastoid cells immortalized with an EBV that had BRLF1 deleted. Oral hairy leukoplakia tongue tissue, which contains the lytic form of EBV replication, also has enhanced C-mer expression. C-mer is a receptor tyrosine kinase activated by the ligand Gas6. C-mer is required for phagocytosis of apoptotic debris by monocytes/macrophages and retinal pigment epithelial cells and is capable of producing an antiapoptotic signal. Modulation of the C-mer signal transduction cascade by a variety of different approaches did not alter the ability of R to induce lytic EBV gene transcription. Therefore, C-mer activation may be important for some other aspect of lytic EBV infection.

Burkitt Lymphoma↗

Transmission of viral persistence by transfection of human cultured cells with RNA of a persistent strain of echovirus 6.

A cloned line of persistently infected (PI) human cells has been established with a strain of the normally lytic, echovirus 6. All of the cells contained non-lytic viral RNA and synthesized defective viral particles. The present study was undertaken to determine whether replication of non-lytic viral RNA occurred after transfection. Uninfected human WISH cells were transfected with viral RNA recovered either directly from persistently infected PI cells or from virus particles produced by PI cells. Cytoplasmic extracts were prepared at various times after transfection and examined for presence of viral RNA and protein. The viral RNA was detected by hybridization of Northern blots of cellular RNA extracts with a cDNA clone of wild-type, lytic echovirus 6. Viral proteins were isolated by immunoprecipitation with specific anti-viral serum and analysed by polyacrylamide gel electrophoresis. Increased concentrations of viral RNA were detectable in cellular extracts at 48 h after transfection. Replicate transfected cultures retained viral RNA and produced viral proteins after cultivation for 287 days. RNA extracts from the transfected cells did not produce cytopathology or lytic virus. Thus, conversion of uninfected cells into a persistently infected cell line was accomplished by transfection with the non-lytic genome of echovirus 6.

Blotting, Northern↗

Analysis of the DNA sequence, gene expression, origin of replication and modular structure of the Lactococcus lactis lytic bacteriophage sk1.

Bacteriophage sk1 is a small isometric-headed lytic phage belonging to the 936 species. It infects Lactococcus lactis, a commonly used dairy starter organism. Nucleotide sequence data analysis indicated that the sk1 genome is 28,451 nucleotides long and contains 54 open reading frames (ORFs) of 30 or more codons, interspersed with three large intergenic regions. The nucleotide sequence of several of the sk1 ORFs demonstrated significant levels of identity to genes (many encoding proteins of unknown function) in other lactococcal phages of both small isometric-headed and prolate-headed morphotype. Based on this identity and predicted peptide structures, sk1 genes for the terminase, major structural protein and DNA polymerase have been putatively identified. Genes encoding holin and lysin were also identified, subcloned into an Escherichia coli expression vector, and their function demonstrated in vivo. The sk1 origin of replication was located by identifying sk1 DNA fragments able to support the maintenance in L. lactis of a plasmid lacking a functional Gram-positive ori. The minimal fragment conferring replication origin function contained a number of direct repeats and 179 codons of ORF47. Although no similarity between phage sk1 and coliphage lambda at the nucleotide or amino acid sequence level was observed, an alignment of the sk1 late region ORFs with the lambda structural and packaging genes revealed a striking correspondence in both ORF length and isoelectric point of the ORF product. It is proposed that this correspondence is indicative of a strong conservation in gene order within these otherwise unrelated isometric-headed phages that can be used to predict the functions of the sk1 gene products.

Base Sequence↗

The transforming prototype of Epstein-Barr virus (B95-8) is also a lytic virus.

The B95-8 isolate of the Epstein-Barr virus (EBV) has been described as a non-lytic transforming virus. We have performed experiments in order to determine if the B95-8 EBV is capable of super-infecting and replicating in EBV-genome-positive non-producer lymphoblastoid cells. Using concentrates of B95-8 EBV, prepared from 6 different B95-8 cell lines treated with 12-O-tetradecanoylphorbol-13-acetate (TPA), we demonstrated that virus concentrates could transform human or cotton-top tamarin B-lymphocytes and also lytically replicate in Raji cells, inducing EBV antigens and infectious virus. While the virus obtained from B95-8 super-infected Raji cells was able to transform cord-blood lymphocytes (CBLs) and super-infect Raji cells, transformation was abortive, with cell cultures only growing for up to 6 weeks. Transformation titers of the B95-8 virus concentrates ranged from 10(5) to greater than 10(8) transforming units/ml; early antigen (EA) induction ranged from 1% to 50% after superinfection of Raji cells, depending on the virus stock used, as determined by immunofluorescence. Southern blot analysis was carried out on the DNA prepared from B95-8 cells and virion DNA. The results were consistent with the published EcoRI restriction pattern for B95-8 EBV. The issue of whether the B95-8 cells produce virions with a dual biological phenotype or, rather, 2 biologically distinct viruses, is addressed.

Cell Line↗

Herpes simplex virus DNA synthesis is not a decisive regulatory event in the initiation of lytic viral protein expression in neurons in vivo during primary infection or reactivation from latency.

The herpes simplex virus genome can enter a repressed transcriptional state (latency) in sensory neurons of the host nervous system. Although reduced permissiveness of the neuronal environment is widely accepted as a causal factor, the molecular pathway(s) directing and maintaining the viral genome in the latent state remains undefined. Over the past decade, the field has been strongly influenced by the observations of Kosz-Vnenchak et al., which have been interpreted to indicate that, in sensory neurons in vivo, a critical level of viral DNA synthesis within the neuron is required for sufficient viral immediate-early (IE) and early (E) gene expression (M. Kosz-Vnenchak, J. Jacobson, D. M. Coen, and D. M. Knipe, J. Virol. 67:5383-5393, 1993). The levels of IE and E genes are, in turn, thought to regulate the decision to enter the lytic cycle or latency. We have reexamined this issue using new strategies for in situ detection and quantification of viral gene expression in whole tissues. Our results using thymidine kinase-null and rescued mutants as well as wild-type strains in conjunction with viral DNA synthesis blockers demonstrate that (i) despite inhibition of viral DNA replication, many neurons express lytic viral proteins, including IE proteins, during acute infection in the ganglion; (ii) at early times postinoculation, the number of neurons expressing viral proteins in the ganglion is not reduced by inhibition of viral DNA replication; and (iii) following a reactivation stimulus, the numbers of neurons and apparent levels of lytic viral proteins, including IE proteins, are not reduced by inhibition of viral DNA replication. We conclude that viral DNA replication in the neuron per se does not regulate IE gene expression or entry into the lytic cycle.

Animals↗

Transcriptional activation by the product of open reading frame 50 of Kaposi's sarcoma-associated herpesvirus is required for lytic viral reactivation in B cells.

Kaposi's sarcoma (KS)-associated herpesvirus (KSHV) is a lymphotropic virus strongly linked to the development of KS, an endothelial cell neoplasm frequent in persons with AIDS. Reactivation from latency in B cells is thought to be an important antecedent to viral spread to endothelial cells during KS pathogenesis. Earlier experiments have posited a role for the transcriptional activator encoded by KSHV open reading frame 50 (ORF50) in such reactivation, since ectopic overexpression of this protein induces reactivation in latently infected B cells. Here we have explored several aspects of the expression, structure, and function of this protein bearing on this role. The ORF50 gene is expressed very early in lytic reactivation, before several other genes implicated as candidate regulatory genes in related viruses, and its expression can upregulate their promoters in transient assays. The protein is extensively phosphorylated in vivo and bears numerous sites for phosphorylation by protein kinase C, activators of which are potent stimulators of lytic induction. The C terminus of the ORF50 protein contains a domain that can strongly activate transcription when targeted to DNA; deletion of this domain generates an allele that expresses a truncated protein which retains the ability to form multimers with full-length ORF50 and functions as a dominant-negative protein. Expression of this allele in latently infected cells ablates spontaneous reactivation from latency and strikingly suppresses viral replication induced by multiple stimuli, including phorbol ester, ionomycin, and sodium butyrate. These results indicate that the ORF50 gene product plays an essential role in KSHV lytic replication and are consistent with its action as a putative molecular switch controlling the induction of virus from latency.

Amino Acid Sequence↗

Nitric oxide inhibits Epstein-Barr virus DNA replication and activation of latent EBV.

Nitric oxide (NO), a mediator of biological functions, has antimicrobial activity against a variety of pathogens including viruses. Effects of NO donors on EBV replication in two EBV lytic systems, Raji cells infected with P3HR-1 virus and P3HR-1 cells activated with TPA plus n-butyrate, were studied. S-nitroso-N-acetylpenicillamine (SNAP), which generates NO when placed in an aqueous solution, and 3-morpholinosydnonimine (SIN-1), which liberates NO and O2-, resulting in the formation of peroxynitrite, were used as NO donors. Immunoprecipitation analysis showed that in superinfected Raji cells, SNAP inhibited EBV late protein synthesis but not EBV early protein expression. Analysis of the structure of EBV DNA termini demonstrated that SNAP suppressed the amplification of EBV DNA in superinfected Raji cells at a dose which did not affect synthesis of EBV early proteins required for EBV DNA replication. In TPA plus n-butyrate-treated P3HR-1 cells, SNAP inhibited synthesis of both early and late proteins of EBV. Northern blot analysis of RNA expressed in TPA plus n-butyrate-treated P3HR-1 cells demonstrated that expression of EBV immediate-early mRNAs coded from BZLF1 and BRLF1 genes was inhibited by SNAP. SIN-1 showed no or little effect on EBV replication in both cell systems. Cell viability and cellular protein synthesis were not affected by either NO donor under the conditions used. These findings suggest that NO prevents EBV replication by inhibiting EBV DNA amplification during the lytic phase of the life cycle as well as by blocking activation of the latent EBV genome. The mechanism for inhibiting of EBV replication by NO was discussed in relation to the role of NO in EBV latency in vivo.

Blotting, Northern↗

Identification and characterization of the Orf49 protein of Kaposi's sarcoma-associated herpesvirus.

Kaposi's sarcoma-associated herpesvirus (KSHV) is the etiological agent of Kaposi's sarcoma, primary effusion lymphoma, and multicentric Castleman's disease. Kaposi's sarcoma is the most common neoplasm among human immunodeficiency virus-positive individuals. Like other herpesviruses, KSHV is able to establish a predominantly latent, life-long infection in its host. The KSHV lytic cycle can be triggered by a number of stimuli that induce the expression of the key lytic switch protein, the replication and transcription activator (RTA) encoded by Orf50. The expression of Rta is necessary and sufficient to trigger the full lytic program resulting in the ordered expression of viral proteins, release of viral progeny, and host cell death. We have characterized an unknown open reading frame, Orf49, which lies adjacent and in the opposite orientation to Orf50. Orf49 is expressed during the KSHV lytic cycle and shows early transcription kinetics. We have mapped the 5' and 3' ends of the unspliced Orf49 transcript, which encodes a 30-kDa protein that is localized to both the nucleus and the cytoplasm. Interestingly, we found that Orf49 was able to cooperate with Rta to activate several KSHV lytic promoters containing AP-1 sites. The Orf49-encoded protein was also able to induce transcriptional activation through c-Jun but not the ATF1, ATF2, or CREB transcription factor. We found that Orf49 could induce phosphorylation and activation of the transcription factor c-Jun, the Jun N-terminal kinase (JNK), and p38. Our data suggest that Orf49 functions to activate the JNK and p38 pathways during the KSHV lytic cycle.

Animals↗

A-type and B-type Epstein-Barr virus differ in their ability to spontaneously enter the lytic cycle.

In this study replication of A-type and B-type Epstein-Barr virus (EBV) strains has been assessed. A-type and B-type type lymphoblastoid cell lines (LCLs) were established by infecting B lymphocytes, isolated from five EBV-seropositive donors, with different A-type and B-type virus isolates. The presence of viral capsid antigens (VCA) in these LCLs was determined by immunofluoresence assay and by immunoblotting. All of the B-type EBV strains were capable of spontaneously generating virus regardless of the origin of the donor cells. In contrast the A-type strains, other than strain IARC-BL36, did not readily produce VCA in any of the different donor lymphocytes used. This study demonstrates another biological difference between the two virus types: their ability to spontaneously enter the lytic cycle.

Animals↗

Genetic dissection of cell growth arrest functions mediated by the Epstein-Barr virus lytic gene product, Zta.

Expression of the Epstein-Barr virus (EBV) latency-associated genes activates cell cycle progression and drives immortalization of the infected cell. In contrast, progression of the EBV replication program occurs most efficiently in growth-arrested cells. Previous studies showed that the EBV-encoded immediate-early transcription factor, Zta, can induce expression of the cyclin-dependent kinase inhibitors, p21 and p27, the tumor suppressor, p53, and cell growth arrest. Moreover, Zta-mediated induction of growth arrest occurs independently of its transcriptional transactivation function. Here we show that substitution of Zta's basic DNA binding domain with the analogous region of the Zta homologue, c-Fos, abrogates Zta's ability to induce growth arrest and to induce p21, p27, or p53 expression, suggesting that protein-protein interactions between this region of Zta and key cell cycle control proteins are involved in signaling cell cycle arrest. We also show that despite the crucial role for Zta's basic domain in eliciting cell growth arrest, its amino terminus is required for efficient induction of p27 and it modulates the level of p53 induction. Last, we provide evidence that Zta-mediated inductions of p21, p27, and p53 occur, at least in part, through distinct pathways. Therefore, Zta interacts with multiple growth arrest pathways, a property which may have evolved partly as a means to ensure that lytic replication occurs in a growth-arrested setting in multiple different tissues in various states of differentiation.

Amino Acid Sequence↗