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Inhibition of interferons by ectromelia virus.

Ectromelia virus (EV) is an orthopoxvirus (OPV) that causes mousepox, a severe disease of laboratory mice. Mousepox is a useful model of OPV infection because EV is likely to be a natural mouse pathogen, unlike its close relatives vaccinia virus (VV) and variola virus. Several studies have highlighted the importance of mouse interferons (IFNs) in resistance to and recovery from EV infection, but little is known of the anti-IFN strategies encoded by the virus itself. We have determined that 12 distinct strains and isolates of EV encode soluble, secreted receptors for IFN-gamma (vIFN-gammaR) and IFN-alpha/beta (vIFN-alpha/betaR) that are homologous to those identified in other OPVs. We demonstrate for the first time that the EV vIFN-gammaR has the unique ability to inhibit the biological activity of mouse IFN-gamma. The EV vIFN-alpha/betaR was a potent inhibitor of human and mouse IFN-alpha and human IFN-beta but, surprisingly, was unable to inhibit mouse IFN-beta. The replication of all of the EVs included in our study and of cowpox virus was more resistant than VV to the antiviral effects induced in mouse L-929 cells by IFN-alpha/beta and IFN-gamma. Sequencing studies showed that this EV resistance is likely to be partly mediated by the double-stranded-RNA-binding protein encoded by an intact EV homolog of the VV E3L gene. The absence of a functional K3L gene, which encodes a viral eIF-2alpha homolog, in EV suggests that the virus encodes a novel mechanism to counteract the IFN response. These findings will facilitate future studies of the role of viral anti-IFN strategies in mousepox pathogenesis. Their significance in the light of earlier data on the role of IFNs in mousepox is discussed.

Amino Acid Sequence↗

The inflammatory and immune response to mousepox (infectious ectromelia) virus.

The ectromelia virus (EV) has been recognized as the etiological agent of a relatively common infection in laboratory mouse colonies around the world, i.e., Europe (including Poland), USA and Asia. Due to widespread use of mice in biomedical research, it is important to study the biology of strains characteristic for a given country. This is particularly significant for the diagnosis, prevention and control ectromelia. In severe epizootics, approximately 90% morbidity is observed within colonies and mortality rate exceeding 70% is observed within 4 to 20 days from the appearance of clinical symptoms. The resistance to lethal infection is mouse strain-dependent. Several inbred strains of mice, including C57BL/6 and AKR are resistant to the lethal effects of EV infection, while others, such as A and BALB/c are susceptible. Recent studies indicate that (1) T lymphocytes, NK cells and interferon (IFN)-dependent host defenses must operate for the expression of resistance, (2) virus-specific T-cell precursors appear earlier in regional lymph nodes of resistant than susceptible mice, and (3) resistance mechanisms are expressed during early stages of infection. Over the past several years, (1) induction of anti-EV cytotoxic CD8+ T lymphocytes (CTL) responses in vivo in the absence of CD4+ (T helper) cells, (2) importance of some cytokines e.g., IFN-gamma in EV clearance at all stages of infection, and (3) induction of nitric oxide (NO) synthase, which is necessary for a substantial antiviral activity of IFN-gamma, have been demonstrated.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Purification, crystallization and preliminary diffraction studies of an ectromelia virus glutaredoxin.

Ectromelia, vaccinia, smallpox and other closely related viruses of the orthopoxvirus genus encode a glutaredoxin gene that is not present in poxviruses outside of this genus. The vaccinia glutaredoxin O2L has been implicated as the reducing agent for ribonucleotide reductase and may thus play an important role in viral deoxyribonucleotide synthesis. As part of an effort to understand nucleotide metabolism by poxviruses, EVM053, the O2L ortholog of the ectromelia virus, has been crystallized. EVM053 crystallizes in space group C222(1), with unit-cell parameters a = 61.98, b = 67.57, c = 108.55 A. Diffraction data have been processed to 1.8 A resolution and a self-rotation function indicates that there are two molecules per asymmetric unit.

Cloning, Molecular↗

Restricted replication of ectromelia virus in cell culture correlates with mutations in virus-encoded host range gene.

Ectromelia virus (strain Moscow) was shown to replicate poorly or not at all in cell lines derived from the rabbit or hamster. The failure of ectromelia virus to replicate in cell lines derived from the hamster suggested that the virus lacked a functional CHO host range (hr) gene required for multiplication in these cells. A DNA fragment which hybridized to the CHO hr gene was cloned from the ectromelia virus genome and shown by sequence analysis to be deleted of 506 bp within the ectromelia virus CHO hr homologue. Two additional ectromelia viruses (Hampstead and Mill Hill strains) were also shown to lack an intact CHO hr gene. Insertion of the CHO gene from cowpox virus into the ectromelia virus genome extended the host range of ectromelia virus in tissue culture. These results demonstrate that an intact CHO hr gene is not required for maintenance of ectromelia virus in nature and provide a partial explanation for ectromelia virus' narrow host range, as opposed to the broad host range of cowpox virus, which has a functional CHO hr gene.

Animals↗

In vitro and in vivo study of the ectromelia virus homolog of the vaccinia virus K1L host range gene.

Ectromelia virus encodes a protein which is homologous to the product of the vaccinia virus host range gene, K1L, except for eight conservative and two non-conservative substitutions and an additional threonine residue at the carboxyl terminus. Unlike the vaccinia virus gene, the ectromelia virus homolog failed to support optimal virus replication in RK-13 cells and appeared to be expressed 20-fold less efficiently. This lower level of expression was not due to the genetic background of the virus, K1L RNA transcription, sequence of the K1L RNA leader, or stability of K1L RNA or protein. Infections of RK-13 cells with ectromelia or vaccinia virus mutants lacking an intact K1L gene resulted in transient expression of early genes followed by a rapid and irreversible cessation of both virus and host protein synthesis. Infections of the disease-susceptible ANCR or -resistant C57BL/6 mice with the K1L-lacking ectromelia virus yielded a pathogenesis pattern indistinguishable from wild-type, suggesting that the ectromelia virus homolog of vaccinia virus K1L is not important for ectromelia virus in vivo replication and spread.

Animals↗

The genomic sequence of ectromelia virus, the causative agent of mousepox.

Ectromelia virus is the causative agent of mousepox, an acute exanthematous disease of mouse colonies in Europe, Japan, China, and the U.S. The Moscow, Hampstead, and NIH79 strains are the most thoroughly studied with the Moscow strain being the most infectious and virulent for the mouse. In the late 1940s mousepox was proposed as a model for the study of the pathogenesis of smallpox and generalized vaccinia in humans. Studies in the last five decades from a succession of investigators have resulted in a detailed description of the virologic and pathologic disease course in genetically susceptible and resistant inbred and out-bred mice. We report the DNA sequence of the left-hand end, the predicted right-hand terminal repeat, and central regions of the genome of the Moscow strain of ectromelia virus (approximately 177,500 bp), which together with the previously sequenced right-hand end, yields a genome of 209,771 bp. We identified 175 potential genes specifying proteins of between 53 and 1924 amino acids, and 29 regions containing sequences related to genes predicted in other poxviruses, but unlikely to encode for functional proteins in ectromelia virus. The translated protein sequences were compared with the protein database for structure/function relationships, and these analyses were used to investigate poxvirus evolution and to attempt to explain at the cellular and molecular level the well-characterized features of the ectromelia virus natural life cycle.

Animals↗

A role for early cytotoxic T cells in resistance to ectromelia virus infection in mice.

Ectromelia virus-specific cytotoxic T (Tc) cell precursors were present in the draining popliteal lymph node of all strains of mice tested at 2 to 3 days after footpad inoculation of a high dose (10(5) p.f.u.) of the virulent Moscow strain of ectromelia virus. To detect this response it was necessary to culture lymph node cells from infected mice in the presence of T cell growth factors and to use the more sensitive neutral red assay for measuring cytotoxicity. Cells with lytic activity were virus-specific, major histocompatibility complex-restricted TC cells. C57BL/6J resistant mice, which express a single dominant gene conferring innate resistance had virus-specific TC cell precursors 1 to 2 days sooner than did susceptible BALB/b mice. This TC cell-mediated immune response early after infection could account for the barrier to virus dissemination known to operate 1 to 2 days after infection to slow virus passage into the lymphoreticular system.

Animals↗

Ectromelia virus: the causative agent of mousepox.

Ectromelia virus (ECTV) is an orthopoxvirus whose natural host is the mouse; it is related closely to Variola virus, the causative agent of smallpox, and Monkeypox virus, the cause of an emerging zoonosis. The recent sequencing of its genome, along with an effective animal model, makes ECTV an attractive model for the study of poxvirus pathogenesis, antiviral and vaccine testing and viral immune and inflammatory responses. This review discusses the pathogenesis of mousepox, modulation of the immune response by the virus and the cytokine and cellular components of the skin and systemic immune system that are critical to recovery from infection.

Animals↗

Biosynthesis of the IFN-gamma binding protein of ectromelia virus, the causative agent of mousepox.

Ectromelia virus (ECTV), the causative agent of mousepox, expresses an extracellular interferon-gamma binding protein (IFN-gammaBP) with homology to the ligand binding domains of the IFN-gamma high affinity receptor (IFN-gammaR1). Unlike the cellular receptor, the IFN-gammaBP binds IFN-gamma from several species. The IFN-gammaBP is synthesized early after infection, accumulating in the extracellular milieu as dimers composed of two protein species with Mr of 34.6 or 33.0 kDa. Homodimers are covalently linked by an interchain disulphide bond at position 216. The IFN-gammaBP has complex N-linked oligosaccharides at positions 41 and 149 as determined by site-directed mutagenesis and glycosidase treatment. Glycosylation at position 41 is required for secretion from mammalian cells and may play a role in the activity of the IFN-gammaBP. Glycosylation at position 149 is not required for secretion, and the lack of glycosylation at this site does not diminish ligand binding as measured by surface plasmon resonance (SPR) and ELISA.

Animals↗

Stability of ectromelia virus strain NIH-79 under various laboratory conditions.

Ectromelia virus strain NIH-79 was suspended in fetal bovine serum (FBS), minimum essential medium, Hanks' base plus 10% FBS (MEMH + FBS), phosphate-buffered saline (PBS) or PBS plus 50% glycerol (PBS + G). Suspensions were held as liquids or as dry spots at various temperatures. Virus was most stable in FBS and least stable in PBS + G at 4 degrees C, room temperature (23-25 degrees C) or 37 degrees C. Virus held at 4 degrees C was more stable than virus held at higher temperatures, irrespective of supporting medium. Dried spots of blood or serum from ectromelia virus-infected mice remained infectious at room temperature for 11 days and 4 days, respectively. Dried spots of FBS that contained virus were infectious for 5 days, whereas virus retained infectivity for 1 day after drying in other media. Virus was inactivated completely in 10% serum in PBS exposed to 60 degrees C for 30 minutes. Virus was inactivated completely in slices of infected liver and spleen immersed in 10% neutral buffered formalin for 20 hours. These results show that the stability of ectromelia virus strain NIH-79 is medium and temperature dependent and that rapid inactivation occurs after treatments routinely used in diagnostic and research procedures.

Animals↗

Analysis of host response modifier ORFs of ectromelia virus, the causative agent of mousepox.

From the right-hand end of the ectromelia virus (strain Moscow) genome, 32318 bps have been sequenced, and characterized to include a total of 18 open reading frames (ORFs) and six regions which apparently no longer code for functional proteins. At least six of the ORFs appear to be involved in blocking the inflammatory/immune host response to infection, and therefore probably contribute significantly to the virulence of this virus in its natural host, the mouse. One of these genes encoded an isolog of the poxvirus chemokine binding protein, and was shown to be the most abundant protein secreted from ectromelia virus infected cells. Two regions were found to have significant similarity to poxvirus genes encoding tumor necrosis factor (TNF) binding proteins. Both are distinct from cytokine response modifier (crm)B and crmC but only one is predicted to encode a functional TNF binding protein. A novel similarity between the C-terminal domain of poxvirus TNF binding proteins and several other poxvirus proteins is also presented. The results are discussed in the context of ectromelia virus pathogenesis of mice.

Amino Acid Sequence↗

Observations on the replication of ectromelia virus in mouse-derived cell lines: implications for epidemiology of mousepox.

Ectromelia virus was shown to replicate in vitro in all lymphoma cell lines and in a small proportion of hybridoma lines tested. It was demonstrated that certain hybridoma cell lines, which were passed in ectromelia virus-infected mice, yielded ectromelia virus infectivity on explantation into tissue culture. This finding further substantiated the belief that ascitic fluid and hybridoma cell lines exposed to virus during mouse-passage could be important in the epidemiology of mousepox.

Animals↗

Species specificity of ectromelia virus and vaccinia virus interferon-gamma binding proteins.

Interferon-gamma functions within the immune system as a potent anti-viral and immunoregulatory cytokine. In order to successfully replicate within a host cell, poxviruses have evolved a number of strategies to counteract the pleiotropic effects of interferon-gamma. In particular, the leporipoxvirus myxoma virus was shown to express an extracellular soluble interferon-gamma receptor homolog, denoted M-T7, which is capable of inhibiting the anti-viral activities of rabbit interferon-gamma (C. Upton, K. Mossman, and G. McFadden, 1992, Science 258, 1369-1372). Here, we demonstrate that expression of soluble interferon-gamma receptor homologs appears to be characteristic of all poxviruses tested, including Shope fibroma virus, vaccinia virus (strains WR and IHDW), ectromelia virus, cowpox virus, and rabbitpox virus. We have cloned, sequenced, and characterized the interferon-gamma binding protein in supernatants from ectromelia virus-infected cells, and demonstrate the capability of this soluble protein to bind human, murine, and rabbit interferon-gamma with similar affinity. We also investigate the properties of the vaccinia virus interferon-gamma binding protein and demonstrate that this protein binds human and rabbit interferon-gamma with similar affinity and binds murine interferon-gamma with a significantly lower relative affinity. The implications of these studies with respect to viral pathogenesis and the evolutionary relationship between a virus and its host are discussed.

Amino Acid Sequence↗