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1.
Nucleic Acids Res ; 50(1): 490-511, 2022 01 11.
Article in English | MEDLINE | ID: mdl-34893887

ABSTRACT

In infected cells, Epstein-Barr virus (EBV) alternates between latency and lytic replication. The viral bZIP transcription factor ZEBRA (Zta, BZLF1) regulates this cycle by binding to two classes of ZEBRA response elements (ZREs): CpG-free motifs resembling the consensus AP-1 site recognized by cellular bZIP proteins and CpG-containing motifs that are selectively bound by ZEBRA upon cytosine methylation. We report structural and mutational analysis of ZEBRA bound to a CpG-methylated ZRE (meZRE) from a viral lytic promoter. ZEBRA recognizes the CpG methylation marks through a ZEBRA-specific serine and a methylcytosine-arginine-guanine triad resembling that found in canonical methyl-CpG binding proteins. ZEBRA preferentially binds the meZRE over the AP-1 site but mutating the ZEBRA-specific serine to alanine inverts this selectivity and abrogates viral replication. Our findings elucidate a DNA methylation-dependent switch in ZEBRA's transactivation function that enables ZEBRA to bind AP-1 sites and promote viral latency early during infection and subsequently, under appropriate conditions, to trigger EBV lytic replication by binding meZREs.


Subject(s)
DNA, Viral/metabolism , Epstein-Barr Virus Infections/virology , Herpesvirus 4, Human/genetics , Trans-Activators/metabolism , Viral Proteins/metabolism , DNA Methylation , Gene Expression Regulation, Viral , HEK293 Cells , Humans , Protein Binding , Virus Replication
2.
PLoS Pathog ; 17(4): e1009117, 2021 04.
Article in English | MEDLINE | ID: mdl-33857265

ABSTRACT

Gene editing is now routine in all prokaryotic and metazoan cells but has not received much attention in immune cells when the CRISPR-Cas9 technology was introduced in the field of mammalian cell biology less than ten years ago. This versatile technology has been successfully adapted for gene modifications in human myeloid cells and T cells, among others, but applications to human primary B cells have been scarce and limited to activated B cells. This limitation has precluded conclusive studies into cell activation, differentiation or cell cycle control in this cell type. We report on highly efficient, simple and rapid genome engineering in primary resting human B cells using nucleofection of Cas9 ribonucleoprotein complexes, followed by EBV infection or culture on CD40 ligand feeder cells to drive in vitro B cell survival. We provide proof-of-principle of gene editing in quiescent human B cells using two model genes: CD46 and CDKN2A. The latter encodes the cell cycle regulator p16INK4a which is an important target of Epstein-Barr virus (EBV). Infection of B cells carrying a knockout of CDKN2A with wildtype and EBNA3 oncoprotein mutant strains of EBV allowed us to conclude that EBNA3C controls CDKN2A, the only barrier to B cell proliferation in EBV infected cells. Together, this approach enables efficient targeting of specific gene loci in quiescent human B cells supporting basic research as well as immunotherapeutic strategies.


Subject(s)
B-Lymphocytes/virology , CRISPR-Cas Systems/genetics , Epstein-Barr Virus Infections/genetics , Gene Editing , Lymphocyte Activation/genetics , Epstein-Barr Virus Nuclear Antigens/genetics , Gene Editing/methods , Gene Knockout Techniques/methods , Herpesvirus 4, Human/genetics , Humans , Lymphocyte Activation/immunology , Viral Proteins/genetics , Viral Proteins/metabolism , Virus Latency/genetics
3.
Elife ; 102021 03 08.
Article in English | MEDLINE | ID: mdl-33683199

ABSTRACT

Eukaryotic DNA replication initiates during S phase from origins that have been licensed in the preceding G1 phase. Here, we compare ChIP-seq profiles of the licensing factors Orc2, Orc3, Mcm3, and Mcm7 with gene expression, replication timing, and fork directionality profiles obtained by RNA-seq, Repli-seq, and OK-seq. Both, the origin recognition complex (ORC) and the minichromosome maintenance complex (MCM) are significantly and homogeneously depleted from transcribed genes, enriched at gene promoters, and more abundant in early- than in late-replicating domains. Surprisingly, after controlling these variables, no difference in ORC/MCM density is detected between initiation zones, termination zones, unidirectionally replicating regions, and randomly replicating regions. Therefore, ORC/MCM density correlates with replication timing but does not solely regulate the probability of replication initiation. Interestingly, H4K20me3, a histone modification proposed to facilitate late origin licensing, was enriched in late-replicating initiation zones and gene deserts of stochastic replication fork direction. We discuss potential mechanisms specifying when and where replication initiates in human cells.


Subject(s)
DNA Replication/genetics , Minichromosome Maintenance Proteins/genetics , Models, Genetic , Origin Recognition Complex/genetics , Cell Line, Tumor , Humans , Minichromosome Maintenance Proteins/metabolism , Origin Recognition Complex/metabolism
4.
Nucleic Acids Res ; 49(6): 3217-3241, 2021 04 06.
Article in English | MEDLINE | ID: mdl-33675667

ABSTRACT

Epstein-Barr virus (EBV), a herpes virus also termed HHV 4 and the first identified human tumor virus, establishes a stable, long-term latent infection in human B cells, its preferred host. Upon induction of EBV's lytic phase, the latently infected cells turn into a virus factory, a process that is governed by EBV. In the lytic, productive phase, all herpes viruses ensure the efficient induction of all lytic viral genes to produce progeny, but certain of these genes also repress the ensuing antiviral responses of the virally infected host cells, regulate their apoptotic death or control the cellular transcriptome. We now find that EBV causes previously unknown massive and global alterations in the chromatin of its host cell upon induction of the viral lytic phase and prior to the onset of viral DNA replication. The viral initiator protein of the lytic cycle, BZLF1, binds to >105 binding sites with different sequence motifs in cellular chromatin in a concentration dependent manner implementing a binary molar switch probably to prevent noise-induced erroneous induction of EBV's lytic phase. Concomitant with DNA binding of BZLF1, silent chromatin opens locally as shown by ATAC-seq experiments, while previously wide-open cellular chromatin becomes inaccessible on a global scale within hours. While viral transcripts increase drastically, the induction of the lytic phase results in a massive reduction of cellular transcripts and a loss of chromatin-chromatin interactions of cellular promoters with their distal regulatory elements as shown in Capture-C experiments. Our data document that EBV's lytic cycle induces discrete early processes that disrupt the architecture of host cellular chromatin and repress the cellular epigenome and transcriptome likely supporting the efficient de novo synthesis of this herpes virus.


Subject(s)
Chromatin/virology , Gene Expression Regulation , Herpesvirus 4, Human/physiology , Trans-Activators/metabolism , Transcriptome , Binding Sites , Cell Line , Chromatin/chemistry , Chromatin/metabolism , DNA/metabolism , Herpesvirus 4, Human/genetics , Herpesvirus 4, Human/metabolism , Humans
5.
Semin Immunopathol ; 42(2): 131-142, 2020 04.
Article in English | MEDLINE | ID: mdl-32232535

ABSTRACT

Epstein-Barr virus (EBV) is a model of herpesvirus latency and epigenetic changes. The virus preferentially infects human B-lymphocytes (and also other cell types) but does not turn them straight into virus factories. Instead, it establishes a strictly latent infection in them and concomitantly induces the activation and proliferation of infected B cells. How the virus establishes latency in its target cells is only partially understood, but its latent state has been studied intensively by many. During latency, several copies of the viral genome are maintained as minichromosomes in the nucleus. In latently infected cells, most viral genes are epigenetically repressed by cellular chromatin constituents and DNA methylation, but certain EBV genes are spared and remain expressed to support the latent state of the virus in its host cell. Latency is not a dead end, but the virus can escape from this state and reactivate. Reactivation is a coordinated process that requires the removal of repressive chromatin components and a gain in accessibility for viral and cellular factors and machines to support the entire transcriptional program of EBV's ensuing lytic phase. We have a detailed picture of the initiating events of EBV's lytic phase, which are orchestrated by a single viral protein - BZLF1. Its induced expression can lead to the expression of all lytic viral proteins, but initially it fosters the non-licensed amplification of viral DNA that is incorporated into preformed capsids. In the virions, the viral DNA is free of histones and lacks methylated cytosine residues which are lost during lytic DNA amplification. This review provides an overview of EBV's dynamic epigenetic changes, which are an integral part of its ingenious lifestyle in human host cells.


Subject(s)
Epstein-Barr Virus Infections , Herpesvirus 4, Human , Epigenesis, Genetic , Epstein-Barr Virus Infections/genetics , Gene Expression Regulation, Viral , Herpesvirus 4, Human/genetics , Humans , Life Style , Virus Latency
6.
Proc Natl Acad Sci U S A ; 116(32): 16046-16055, 2019 08 06.
Article in English | MEDLINE | ID: mdl-31341086

ABSTRACT

Epstein-Barr virus (EBV) is a human tumor virus and a model of herpesviral latency. The virus efficiently infects resting human B lymphocytes and induces their continuous proliferation in vitro, which mimics certain aspects of EBV's oncogenic potential in vivo. How lymphoblastoid cell lines (LCLs) evolve from the infected lymphocytes is uncertain. We conducted a systematic time-resolved longitudinal study of cellular functions and transcriptional profiles of newly infected naïve primary B lymphocytes. EBV reprograms the cells comprehensively and globally. Rapid and extensive transcriptional changes occur within 24 h and precede any metabolic and phenotypic changes. Within 72 h, the virus activates the cells, changes their phenotypes with respect to cell size, RNA, and protein content, and induces metabolic pathways to cope with the increased demand for energy, supporting an efficient cell cycle entry on day 3 postinfection. The transcriptional program that EBV initiates consists of 3 waves of clearly discernable clusters of cellular genes that peak on day 2, 3, or 4 and regulate RNA synthesis, metabolic pathways, and cell division, respectively. Upon onset of cell doublings on day 4, the cellular transcriptome appears to be completely reprogrammed to support the proliferating cells, but 3 additional clusters of EBV-regulated genes fine-tune cell signaling, migration, and immune response pathways, eventually. Our study reveals that more than 11,000 genes are regulated upon EBV infection as naïve B cells exit quiescence to enter a germinal center-like differentiation program, which culminates in immortalized, proliferating cells that partially resemble plasmablasts and early plasma cells.


Subject(s)
B-Lymphocytes/virology , Epstein-Barr Virus Infections/virology , Herpesvirus 4, Human/physiology , B-Lymphocytes/metabolism , Epstein-Barr Virus Infections/genetics , Gene Expression Regulation, Viral , HEK293 Cells , Humans , Lymphocyte Activation/genetics , Multigene Family , Phenotype , Time Factors , Transcriptome/genetics
7.
Life Sci Alliance ; 2(2)2019 04.
Article in English | MEDLINE | ID: mdl-30926617

ABSTRACT

A hallmark of EBV infections is its latent phase, when all viral lytic genes are repressed. Repression results from a high nucleosome occupancy and epigenetic silencing by cellular factors such as the Polycomb repressive complex 2 (PRC2) and DNA methyltransferases that, respectively, introduce repressive histone marks and DNA methylation. The viral transcription factor BZLF1 acts as a molecular switch to induce transition from the latent to the lytic or productive phase of EBV's life cycle. It is unknown how BZLF1 can bind to the epigenetically silenced viral DNA and whether it directly reactivates the viral genome through chromatin remodeling. We addressed these fundamental questions and found that BZLF1 binds to nucleosomal DNA motifs both in vivo and in vitro. BZLF1 co-precipitates with cellular chromatin remodeler ATPases, and the knock-down of one of them, INO80, impaired lytic reactivation and virus synthesis. In Assay for Transposase-Accessible Chromatin-seq experiments, non-accessible chromatin opens up locally when BZLF1 binds to its cognate sequence motifs in viral DNA. We conclude that BZLF1 reactivates the EBV genome by directly binding to silenced chromatin and recruiting cellular chromatin-remodeling enzymes, which implement a permissive state for lytic viral transcription. BZLF1 shares this mode of action with a limited number of cellular pioneer factors, which are instrumental in transcriptional activation, differentiation, and reprogramming in all eukaryotic cells.


Subject(s)
ATPases Associated with Diverse Cellular Activities/metabolism , Chromatin Assembly and Disassembly/physiology , DNA-Binding Proteins/metabolism , Epstein-Barr Virus Infections/virology , Herpesvirus 4, Human/physiology , Trans-Activators/genetics , Trans-Activators/metabolism , Virus Latency , ATPases Associated with Diverse Cellular Activities/genetics , Adenosine Triphosphatases/metabolism , Binding Sites , Cell Survival , Chromosomal Proteins, Non-Histone/metabolism , DNA, Viral/metabolism , DNA-Binding Proteins/genetics , Gene Expression Regulation, Viral , Gene Knockdown Techniques , HEK293 Cells , Histones/metabolism , Humans , RNA, Small Interfering/genetics , THP-1 Cells , Transfection , Virus Activation/physiology
8.
J Virol ; 91(16)2017 08 15.
Article in English | MEDLINE | ID: mdl-28592533

ABSTRACT

Epstein-Barr virus (EBV) has established lifelong infection in more than 90% of humanity. While infection is usually controlled by the immune system, the human host fails to completely eliminate the pathogen. Several herpesviral proteins are known to act as immunoevasins, preventing or reducing recognition of EBV-infected cells. Only recently were microRNAs of EBV identified to reduce immune recognition further. This Gem summarizes what we know about immunomodulatory microRNAs of herpesviruses.


Subject(s)
Gene Expression Regulation , Herpesvirus 4, Human/immunology , Herpesvirus 4, Human/pathogenicity , Host-Pathogen Interactions , Immune Evasion , MicroRNAs/metabolism , RNA, Viral/metabolism , Humans
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