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T M Fletcher

Publications and source records attributed to T M Fletcher.

27 records · Page 2Linked to original sources

Polyclonal rabbit antisera that detect the Vpr protein of SIVSM and SIVMAC on immunoblots of purified virions.

Antisera suitable for detection of SIVSM or SIVMAC Vpr proteins on Western blots of purified virions are currently not available. We have expressed the Vpr protein of SIVSMPBj1.9 in a gst-based prokaryotic expression system and used it to raise polyclonal antisera in rabbits. Two immune sera were obtained that specifically recognized both cell- and virion-associated Vpr protein on immunoblots of three different SIV isolates (SIVSMPBj1.9, SIVMACBK28, and SIVMAC239). Because Vpr is believed to play an important role in HIV/SIV replication and pathogenesis, these reagents will allow the extension of functional analyses of this protein to a broader spectrum of viruses. Both antisera and the gst-Vpr expression plasmid have been submitted to the NIAID AIDS Research and Reagent Program and are available to interested investigators.

Amino Acid Sequence↗

Simian varicella virus antibody response in experimental infection of African green monkeys.

The humoral immune response to simian varicella virus (SVV) was investigated following primary and secondary experimental infection of African green monkeys. Neutralization and immunoprecipitation assays were used to determine antibody titers to SVV throughout the course of infection. The immune response to specific viral polypeptides was analyzed by immunoprecipitation analysis. The results demonstrate that the simian varicella model offers a useful approach to investigate immune mechanisms in human varicella zoster virus (VZV) infections.

Animals↗

Transcriptional analysis of two simian varicella virus glycoprotein genes which are homologous to varicella-zoster virus gpI (gE) and gpIV (gI).

Simian varicella virus (SVV) causes a natural, varicella-like disease in nonhuman primates. The unique short region of the SVV genome contains four open reading frames (ORFs), two of which encode glycoproteins that exhibit extensive homology with varicella-zoster virus (VZV) gpIV (gI) and gpI (gE). Northern hybridization, primer extension, and RNase protection analyses were employed to define precisely the transcripts mapping to the SVV gpIV and gpI genes. A total of five transcripts composing two coterminal families of RNAs were mapped to the SVV gpIV and gpI ORF region. Based on transcriptional mapping and previous DNA sequence analysis, two transcripts 1.3 and 2.2 kb in size were assigned to the SVV gpIV and gpI genes, respectively. The transcriptional patterns described in this study for the SVV gpIV and gpI ORFs are analogous to those previously reported for the homologous glycoproteins genes encoding the herpes simplex virus type 1 Us7 (gI) and Us8 (gE) and VZV gpIV and gpI genes. In addition, the transcriptional start site for the VZV gpI RNA was determined. DNA alignments of the promoter regions for the SVV and VZV gpIV and gpI genes revealed a number of cis-acting elements which are conserved between the two viruses. The characterization of SVV glycoprotein genes will facilitate future studies to define their role in SVV pathogenesis and immunity and assist in the construction of recombinant vaccines which could be evaluated in the simian varicella model.

Base Sequence↗

Quantitative analysis of macromolecular conformational changes using agarose gel electrophoresis: application to chromatin folding.

Quantitative analysis of chromatin electrophoretic mobility (mu) in agarose gels provides a measure of three structural parameters: average surface electrical charge density, which is proportional to the gel-free mu (mu 0), effective radius (Re), and particle deformability [Fletcher, T. M., Krishnan, U., Serwer, P., & Hansen, J. C. (1994) Biochemistry 33, 2226-2233]. To determine whether the intramolecular conformational changes associated with salt-dependent chromatin folding influence these electrophoretic parameters, defined oligonucleosomes were reconstituted from monodisperse tandemly repeated 5S DNA and varying amounts of histone octamers. These oligonucleosomes were subjected to both quantitative agarose gel electrophoresis and analytical velocity ultracentrifugation in buffers containing 0-2 mM MgCl2. Ionic conditions that caused a 40% increase in the oligonucleosome sedimentation coefficient (s20,w) also caused both a 30% decrease in Re and a 60% decrease in the magnitude of the mu 0. Furthermore, the Mg(2+)-dependent changes in s20,w, Re, and mu 0 each exhibited the same nonlinear dependence on the degree of nucleosome saturation of the DNA. These data demonstrate that quantitative agarose gel electrophoresis can be used to detect and characterize the process of chromatin folding. In addition, they suggest that this approach can be used for characterization of the conformational dynamics of many other types of macromolecular assemblies, including those systems that are not yet amenable for study by more traditional quantitative biophysical techniques.

Animals↗

Quantitative agarose gel electrophoresis of chromatin: nucleosome-dependent changes in charge, sharp, and deformability at low ionic strength.

The surface electrical charge density and the deformability of nucleosomal arrays have been characterized by quantitative agarose gel electrophoresis. Monodisperse linear DNA (2.5-3.3 kbp) was reconstituted with histone octamers into either saturated (approximately 1 nucleosome/200-bp DNA) or subsaturated (< 1 nucleosome/200-bp DNA) nucleosomal arrays. The electrophoretic mobility (mu) of both nucleosome-free DNA and nucleosomal arrays was determined at low ionic strength in 0.2-3.0% agarose gels. A semilogarithmic plot of mu vs gel concentration was linear for DNA and convex for saturated nucleosomal arrays. By extrapolating the mu to 0% agarose, the magnitude of the gel-free mu of saturated nucleosomal arrays was found to be approximately 20% lower than that of nucleosome-free DNA molecules. This difference is explained by the net neutralization of approximately 85 DNA negative charges by each histone octamer. By using an internal standard to measure the effective pore size (Pe) of the agarose gel, the effective radius (R) of DNA and nucleosomal arrays was determined at each agarose concentration. In the more dilute gels (Pe > or = 400 nm), the differences between the effective R values of DNA, subsaturated nucleosomal arrays, and saturated nucleosomal arrays are consistent with the differences in their hydrodynamic shapes as measured by analytical velocity centrifugation. However, as Pe decreases, the effective R of both nucleosome-free DNA and subsaturated nucleosomal arrays decreases significantly. This is in contrast to the effective R of saturated nucleosomal arrays, which remains constant at all Pe.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

DNA sequence and genetic organization of the unique short (US) region of the simian varicella virus genome.

Simian varicella virus (SVV) infection of nonhuman primates is a model for the study of human varicella zoster virus (VZV) infections. The DNA sequence of the entire SVV unique short (US) region and adjacent flanking sequences of the inverted repeats were determined. The US region is 4904 bp in size and has a 60.9% A + T base composition. Four potential open reading frames (ORFs), designated SVUS 1, SVUS 2, SVUS 3, and SVUS 4, were identified and found to be remarkably similar in size, genetic content, and transcriptional orientation to their respective VZV US counterparts; ORF 65, ORF 66 (US PK), ORF 67 (gpIV), and ORF 68 (gpI). The SVUS 1 ORF encodes a putative 9 kDa homolog of the herpes simplex virus type-1 (HSV-1) US9 tegument phosphoprotein. The SVUS 2 ORF encodes a predicted 345 amino acid polypeptide that contains a number of sequence domains conserved in cellular and viral serine/threonine (S/T) protein kinases and exhibits extensive homology with previously reported alphaherpesviral US S/T PKs, including VZV ORF 66, HSV-1 US3, pseudorabies virus (PRV) PK, and equine herpesvirus (EHV-1) ORF 69. The SVUS 3 and SVUS 4 ORFs exhibit features characteristic of membrane glycoproteins: an amino terminal signal sequence, potential N-linked glycosylation sites, and a large hydrophobic transmembrane domain. The predicted 353 amino acid protein encoded by SVUS 3 ORF is homologous to the VZV gpIV (ORF 67), HSV-1 gI (US7), PRV gp63, and EHV-1 gI (ORF 73) gene products. The SVUS 4 ORF encodes a putative 604 amino acid polypeptide which exhibits extensive homology with VZV gpI and more limited homology with HSV-1 gE (US8), PRV gpI, and EHV gE (ORF 74). This report describes the initial characterization of individual SVV genes and further defines the evolutionary relationships between SVV, VZV, and other alphaherpesviruses.

Amino Acid Sequence↗

Characterization and mapping of simian varicella virus transcripts.

The size and genomic location of viral transcripts expressed in simian varicella virus (SVV)-infected Vero cells were determined. Total cellular RNA and polyadenylated RNA were isolated from SVV-infected and mock-infected Vero cells. Viral transcripts were detected by Northern blot hybridization analysis using overlapping SVV DNA probes representative of the entire SVV genome. The results indicated that all regions of the SVV genome are transcribed during SVV infection in vitro. At least 53 distinct viral RNA species ranging in size from 9.2 to 0.8 kb were detected. DNA probes derived from the SVV DNA long (L) and short (S) components hybridized to 44 RNAs (9.2 to 0.8 kb) and nine RNAs (4.9 to 0.8 kb), respectively. A transcript map of the SVV genome was constructed. The comparison made between the transcript maps of SVV and varicella-zoster virus (VZV) provides further support that the SVV and VZV genomes have an analogous gene organization.

Animals↗

The simian varicella virus and varicella zoster virus genomes are similar in size and structure.

Simian varicella virus (SVV) DNA was purified from viral nucleocapsids and the molecular structure of the SVV genome was determined. SVV DNA was analyzed by agarose gel electrophoresis of BamHI, BglII, EcoRI, and PstI restriction endonuclease digests. SVV and varicella zoster virus (VZV) DNAs were demonstrated to have distinct restriction endonuclease profiles. Summation of the sizes of individual restriction endonuclease fragments indicate the size of SVV DNA is congruent to 121 kilobase pairs (kbp) or congruent to 76.8 megadaltons (Md). Electron microscopy, lambda exonuclease analysis, and Southern blot DNA hybridizations were utilized to determine the molecular structure of the SVV genome and to construct restriction endonuclease maps. The results indicate that SVV DNA consists of a long component (L, congruent to 100 kbp) covalently linked to a short component (S, congruent to 20 kbp) which is composed of a unique short sequence (Us, 5.3 +/- 0.7 kbp) bracketed by inverted repeat sequences (TRs and IRs, congruent to 7.2 kbp). The presence of 0.5 M PstI restriction endonuclease fragments indicates that the S component may invert relative to the L component and that the genome exists in two major isomeric forms. The findings demonstrate that the SVV and VZV genomes are similar in size and structure.

Animals↗

Simian varicella virus: characterization of virion and infected cell polypeptides and the antigenic cross-reactivity with varicella-zoster virus.

Simian varicella virus (SVV) causes a varicella-like disease in non-human primates. In this study, SVV virions were purified from SVV-infected BSC-1 cells by zonal and differential gradient centrifugation and the virion polypeptide composition was analysed by SDS-PAGE. SVV virions had a buoyant density of 1.21 g/ml, identical to the value obtained for varicella-zoster virus (VZV) virions purified by the same method. Electron microscopy of the concentrated SVV virions revealed characteristic herpesvirus morphology. SVV virions consisted of at least 30 polypeptide species ranging from 16K to greater than 200K. The electrophoretic profiles of radiolabelled SVV and VZV virion polypeptides were very similar. Immunoprecipitations of solubilized SVV-infected cell preparations using SVV immune sera revealed at least 18 viral polypeptides with an Mr range of 12K to 142K and six glycoproteins ranging from 46K to 115K. In addition, extensive cross-reactivity between SVV and VZV proteins and glycoproteins was demonstrated by immunoprecipitation with heterologous immune sera. The high degree of antigenic relatedness between SVV and VZV provides further support for simian varicella as a model for VZV infections.

Animals↗