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Biomedical subjects

M T Muller

Publications and source records attributed to M T Muller.

At least 73 records · Page 4Linked to original sources

DNase I hypersensitivity is independent of endogenous topoisomerase II activity during chicken erythrocyte differentiation.

Endogenous topoisomerase II cleavage sites were mapped in the chicken beta A-globin gene of 12- to 14-day embryonic erythrocytes. A major topoisomerase II catalytic site was mapped to the 5' end of the globin gene which contained a nucleosome-free and DNase I-hypersensitive site and additional but minor sites were mapped to the second intron and 3' of the gene to a tissue-specific enhancer. Cleavage sites, mapped in situ by indirect end labeling, were aligned to single-base-pair resolution by comparison to a consensus sequence derived for vertebrate topoisomerase II catalytic sites. In contrast to embryonic erythrocytes, endogenous topoisomerase II cleavages were not detected in erythrocytes from peripheral blood of adult chickens; therefore, as the transcriptional activity of the beta A-globin gene declines during terminal differentiation of erythrocytes, the activity of topoisomerase II in situ declines as well, despite the fact that DNase I hypersensitivity persists. The results showed that DNase I-hypersensitive chromatin can be maintained in the absence of topoisomerase II activity and suggested that topoisomerase II acts at hypersensitive sites because of an inherent attraction to some preexisting combination of DNA sequence or chromatin structure associated with DNase I-hypersensitive regions.

Animals↗

Binding of the herpes simplex virus immediate-early gene product ICP4 to its own transcription start site.

A gel electrophoresis DNA-binding assay was used to detect proteins from herpes simplex virus type 1-infected and uninfected cells that specifically bind the upstream region of immediate-early (IE) gene 3. The assay is based on the altered electrophoretic mobility of DNA-protein complexes relative to that of free DNA in native gels. A series of end-labeled overlapping DNA fragments spanning a region from -272 to +27 (relative to the 5' terminus of the IE gene 3 mRNA) were used as probes. Two complexes were identified (referred to as A and B) which were driven by different protein factors. Formation of the A complex required infected-cell proteins extracted at any time from 2 to 16 h postinfection; a 0.5 to 1 M NaCl extract of infected cells, and a DNA probe that contained the sequences from -4 to +27 (relative to the 5' terminus of IE gene 3 mRNA). The protein that drove the formation of the A complex is not related to transcription factors TFIIIA or Sp1 or their cognate binding domains since neither the 5S RNA gene nor the GC box of simian virus 40 could compete for proteins that induced formation of the A complex. Through the use of monoclonal antibodies, the complex was shown to contain the IE gene 3 product, ICP4. A more detailed localization of the DNA-binding site in vitro by using chemical footprinting revealed that binding occurs over the sequence from -10 to +3 relative to the mRNA terminus. The binding of ICP4 to its own transcription start site may explain the repression of IE gene transcription which attends the onset of early (beta) gene expression and suggests an autoregulatory mechanism for gene control in herpes simplex virus type 1. The B complex was readily detected in uninfected cells (of a number of different cell lines), as well as in infected cells, with a probe containing the IE consensus sequence TAATGARATTC (where R is a purine) and two nested copies of the Sp1 binding motif GGGCGG; however, complexes were also detected with probes that lack the IE consensus sequence but contain Sp1 sites. These data suggest that the B complex contains the promoter-specific factor Sp1, and competition experiments with the clustered Sp1 binding domains from simian virus 40 confirmed this idea.

Binding Sites↗

The 65,000-Mr DNA-binding and virion trans-inducing proteins of herpes simplex virus type 1.

The possible identity of the herpes simplex virus type 1 (HSV-1) 65K (65,000-Mr) virion protein which stimulates transcription from immediate-early genes with the HSV-1 65K DNA-binding protein was investigated. The two proteins were found to be distinct by the three separate criteria of immunological reactivity, tryptic peptide fingerprinting, and mobility in two-dimensional gels. Using HSV-1/HSV-2 intertypic recombinants and a serotype-specific antiserum, we located the gene encoding the 65K DNA-binding protein between coordinates 0.574 and 0.682 on the HSV-1 genome. The protein is posttranslationally modified by phosphorylation. In crude extracts of HSV-1-infected cells the 65K trans-inducing protein did not detectably bind to double-stranded calf thymus DNA under the conditions of our assay.

Antigens, Viral↗

Quantitation of eukaryotic topoisomerase I reactivity with DNA. Preferential cleavage of supercoiled DNA.

A method has been used to quantitate the reaction between eukaryotic type I DNA topoisomerase and topological forms of DNA. This procedure (Trask, D.K., DiDonato, J.D. and Muller, M.T. (1984) Eur. Mol. Biol. Organ. J. 3, 671-676) measures the efficiency of DNA cleavage and concurrent formation of a covalent enzyme/DNA complex. Eukaryotic type I topoisomerases react preferentially by 5-10-fold with supercoiled DNA. The effect of supercoiling is clearly evident in that both the initial rate and final extent of the reaction is elevated. Because the dissociation rate is much lower than the association rate, it is possible to isolate native topoisomerase/DNA complexes. These complexes are comprised of enzyme molecules which are catalytically active when challenged with a second supercoiled DNA substrate. Collectively, the data support the conclusion that a functional intermediate in the reaction sequence is being detected and that the avian topoisomerase I preferentially cleaves supercoiled DNA.

Animals↗

Topoisomerase I is the predominant nuclear protein from avian erythrocytes that can be covalently linked to DNA.

Nuclear extracts of erythrocytes contain proteins which stably or possibly covalently bind to DNA. These proteins can be detected by an assay which was originally developed to quantify stable binding of topoisomerases to DNA [Trask, DiDonato & Muller (1984) EMBO J. 3, 671-676]. In this report, we show that the number of activities detected by this assay in crude extracts of nuclei is limited predominantly to various forms of topoisomerase I. One form, a 50 kDa protein, copurifies with histone H1. Western blotting experiments suggest that the 50 kDa topoisomerase exists in chromatin along with the 105 kDa form. In addition, the ratio between the high and low-Mr forms is relatively constant in erythrocytes and embryonic fibroblasts. These results imply that the multiple forms are not unique to one tissue setting.

Animals↗

Eukaryotic type I topoisomerase is enriched in the nucleolus and catalytically active on ribosomal DNA.

The distribution of eukaryotic DNA topoisomerase I in the cell has been analyzed at four levels: (i) at the level of the nuclear matrix; (ii) at the cytological level by immunofluorescence of whole cells; (iii) at the electron microscopic level using the protein A/colloidal gold technique; and (iv) at the level of DNA to identify in situ the sequence upon which topoisomerase I is catalytically active. Although topoisomerase I is clearly distributed non-randomly in the nucleus, the unique distribution of the enzyme is not related to the nuclear matrix. The data support the conclusion that topoisomerase I is heavily concentrated in the nucleolus of the cell; furthermore, particular regions within the nucleolus are depleted of topoisomerase. A technique has been developed which allows isolation and analysis of the cellular DNA sequences covalently attached to topoisomerase. Ribosomal DNA sequences are at least 20-fold enriched in topoisomerase/DNA complexes isolated directly from a chromosomal setting, relative to total DNA. This is the first direct evidence that topoisomerase I is catalytically active on ribosomal DNA in vivo.

Animals↗

Association of type I DNA topoisomerase with herpes simplex virus.

A topoisomerase activity is associated with herpes simplex virus type 1. The enzyme was recovered from purified virions which were disrupted with 6 M-guanidine-HCl followed by renaturation of extracted proteins. Based upon the following observations, the virion activity is classified as a type I topoisomerase: (i) the linking number of a unique DNA topoisomer is altered in steps of one; (ii) ATP and MgCl2 are not required for activity; (iii) the enzyme can be trapped in a covalent complex with DNA; (iv) the covalent linkage to DNA is through a 3' phosphoryl bond. A number of lines of evidence strongly indicate that the topoisomerase is external to the nucleocapsid. For example, the activity was released by treatment of intact virions with NP40, and subsequent washing steps extracted most residual activity. When guanidine extracts were prepared from nucleocapsids, topoisomerase activity was not detectable. Finally, DNA within the virion did not appear to contain covalently attached proteins with properties similar to topoisomerases. Thus, the enzyme appears to be a component of the envelope or tegument structure of the virion.

Capsid↗

Rapid detection and isolation of covalent DNA/protein complexes: application to topoisomerase I and II.

A rapid and simple method has been developed which allows detection and isolation of covalent DNA/protein adducts. The method is based upon the use of an ionic detergent, SDS, to neutralize cationic sites of weakly bound proteins thereby resulting in their dissociation off the helix. Proteins tightly or covalently bound to DNA that are not dissociable by SDS, result in the precipitation of the DNA fragment by the addition of KCl; however, free nucleic acid does not precipitate. The method is particularly useful as an analytical tool to titrate the binding of prototypic covalent binding proteins, topoisomerase I and II; thus, quantitation of topoisomerase activity is possible under defined conditions. As an analytical tool the method can be used as a general assay in the purification of as yet unidentified topoisomerases or other activities that bind DNA covalently. Moreover, the technology can be adapted for use in a preparative mode to separate covalent complexes from free DNA in a single step.

DNA↗

Plasmodium berghei: characterization of antigens and their role in inducing immunity to infection.

In vitro, Plasmodium berghei infected erythrocytes incorporated 35S-methionine into 31 polypeptides with molecular weights from 21 kd to 300 kd. Hemoglobin and additional smaller molecular weight polypeptides were labelled with 35S-methionine by a population of uninfected, reticulocyte-rich rat erythrocytes. 3H-glucosamine was incorporated into at least 3 components by Plasmodium berghei infected erythrocytes. Uninfected, reticulocyte-rich rat erythrocytes did not incorporate 3H-glucosamine. Rabbit antisera against small, free plasmodia formed complexes which contained between 12 and 22 of the 31 labelled polypeptides in the 35S-methionine labelled antigen preparation. Rabbit antisera against soluble antigens washed from small, free plasmodia formed complexes containing many of the same labelled plasmodial polypeptides, however the reactions were particularly strong with those components which yielded polypeptides with molecular weights of 25 kd and 31 kd. Rabbit origin antisera against the 2 preparations did not form detectable complexes with the 3H-glucosamine labelled plasmodial components. Sera from rats undergoing progressive P. berghei infection formed complexes containing an increasing number of 35S-methionine labelled plasmodial polypeptides. Hyperimmune rat serum, the only serum protective upon passive transfer into mice, formed complexes containing 7 polypeptides with molecular weights of 35 kd, 75 kd, 80 kd, 92 kd, 100 kd, 150 kd and 190 kd. Antigens containing 1 or more of these polypeptides may be important in the induction of a protective antibody response against the parasite.

Animals↗

Nucleosomes contain DNA binding proteins that resist dissociation by sodium dodecyl sulfate.

A new, rapid, and quantitative method has been developed to show that nucleosomes contain non-histone proteins which are not dissociated by an ionic detergent and are firmly, possibly covalently, bound to DNA. The ability of the method to detect and quantitate the binding of proteins known to form stable (covalent) complexes with DNA has been verified using purified topoisomerase I; in addition, the method will measure DNA/protein adducts formed by ultraviolet light. The distribution of detergent resistant proteins in a population of nucleosomes is non-uniform; the mono- through trimers are depleted of these proteins while higher oligomers are enriched. The data suggest that these proteins are not associated with the nucleosome core but more likely with linker regions between core particles.

Animals↗

Biochemical characterization of topoisomerase I purified from avian erythrocytes.

A type I topoisomerase has been purified from avian erythrocyte nuclei. The most pure fraction contains one major polypeptide of Mr = 105,000 (80% of total) and several minor ones of lower molecular weight. Active forms of the topoisomerase were identified by covalently binding the enzyme to 32P-DNA, digesting with nuclease and detecting 32P labeled peptides by sodium dodecyl sulfate polyacrylamide gel electrophoresis. Topoisomerase activity, as measured by the ability to covalently bind DNA, is associated with the following peptides: Mr = 105, 83, 54 and 30,000. The similar chromatographic properties of the various forms of topoisomerase suggests a common structural identity as previously proposed for the HeLa topoisomerase I (Liu, L.F. and Miller, K.G. (1981) Proc. Natl. Acad. Sci. USA 78, 3487-3491). The avian enzyme is similar to other eucaryotic type I DNA topoisomerases in that it covalently binds double and single stranded DNA forming an enzyme linked to the 3'-phosphoryl end and after binding to single stranded DNA it can transfer the single stranded donor DNA to an acceptor DNA possessing 5'-OH end groups. The binding site size of topoisomerase on DNA has also been determined using micrococcal nuclease to digest unprotected DNA in the native enzyme/DNA complex. The enzyme blocks access to the helix over a span of 25 bp. These findings are discussed in light of the distribution and function of topoisomerase I in chromatin.

Animals↗

Acute phase reactants of mice. I. Isolation of serum amyloid P-component (SAP) and its induction by a monokine.

The acute phase reactant of mice, serum amyloid P-component (SAP), was purified and separated from C-reactive protein (CRP). The purified SAP is composed of identical M, 31 Kd polypeptide subunits, determined by SDS-PAGE. SAP levels increased five-fold by 24 hr after challenge with lipopolysaccharide (LPS) or thioglycollate. This response closely correlated with blood monocytosis and required new macromolecule (protein + RNA) synthesis and secretion by the liver. The induction of the SAP response was adoptively transferred by a serum factor produced in optimal concentrations only 90 min after an inflammatory stimulus, which preceded a detectable increase in SAP. A potent SAP inducer was identified in culture supernatants of LPS-activated macrophages. The rapid induction of SAP synthesis in LPS-unresponsive C3H/HeJ mice was dependent on the amount of lymphocyte-activating factor, LAF(IL 1), present in the macrophage culture supernatants. Partially purified human IL 1 also induced a rapid increase in SAP. Thus the induction of SAP in mice appears to be mediated by a product of macrophages, a cell population that is also expanded as part of the systemic inflammatory response.

Amyloid↗

Role of cytosol proteins in DNA chain growth and chromatin replication in Friend erythroleukemia cell nuclei.

The influence of cytosol proteins on the replication of DNA and chromatin in isolated nuclei from Friend erythroleukemia cells has been investigated. The overall process has been clearly shown to proceed stepwise. In the absence of cytosol proteins DNA chain growth tends to stop after the addition of approximately 200 nucleotides to the ends of growing chains. In the presence of cytosol proteins these sections grow to approximately 250 nucleotides, and participate in the stepwise extension of the replication process through adjacent nucleosomal sections of the template. Immediately following pulse labeling, the newly replicated DNA resides in a chromatin form which appears to be relatively resistant to digestion by micrococcal nuclease. During a chase interval, the association of the pulse-labeled DNA with nuclear proteins matures to a form which yields lengths of DNA upon digestion with micrococcal nuclease that correspond to mono-, di-, tri- and polynucleosomal units of chromatin. In the absence of cytosol proteins the nuclease resistant state of the labeled DNA tends to predominate and persist. The data support the view that DNA replication in a chromosomal setting proceeds stepwise over successive nucleosomal sections of template made accessible by the interaction of the cytosol proteins at or near the replication fork.

Animals↗

Regulation of murine cytomegalovirus gene expression. I. Transcription during productive infection.

Murine cytomegalovirus RNA synthesis in productively infected mouse embryo cultures was measured by reassociation kinetics with iodinated viral DNA. The data were analyzed by a computer program and indicated the following: before DNA replication approximately 25% of the genome was transcribed into asymmetric transcripts, of which slightly fewer than half of the sequences were recovered from the cytoplasm. After viral DNA replication, approximately 38% of the genome was transcribed (5% as symmetric transcripts), and again less than half of the sequences appeared in the cytoplasm. Both early and late RNA comprised two abundance classes differing about 8- to 10-fold in concentration. Early RNA was a subset of late RNA. The RNE sequences synthesized in late-infected cells in the presence of cytosine arabinoside or cycloheximide were similar to early RNA. Thus, murine cytomegalovirus displays temporal, quantitative, and post-transcriptional controls over gene expression, but the pattern differs considerably from herpes simplex virus.

Animals↗