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D O Morgan

Publications and source records attributed to D O Morgan.

At least 19 recordsLinked to original sources

Formation and activation of a cyclin E-cdk2 complex during the G1 phase of the human cell cycle.

Human cyclin E, originally identified on the basis of its ability to function as a G1 cyclin in budding yeast, associated with a cell cycle-regulated protein kinase in human cells. The cyclin E-associated kinase activity peaked during G1, before the appearance of cyclin A, and was diminished during exit from the cell cycle after differentiation or serum withdrawal. The major cyclin E-associated kinase in human cells was Cdk2 (cyclin-dependent kinase 2). The abundance of the cyclin E protein and the cyclin E-Cdk2 complex was maximal in G1 cells. These results provide further evidence that in all eukaryotes assembly of a cyclin-Cdk complex is an important step in the biochemical pathway that controls cell proliferation during G1.

Animals

Human cyclin-dependent kinase 2 is activated during the S and G2 phases of the cell cycle and associates with cyclin A.

We have analyzed the cell cycle regulation of human cyclin-dependent kinase 2 (CDK2), a protein closely related to the cell cycle-regulatory protein kinase CDC2. We find that CDK2 activity, like that of CDC2, oscillates during the cell cycle in cultured mammalian fibroblasts. Unlike CDC2 activity (which peaks during mitosis), CDK2 activity rises in late G1 or early S phase and declines during mitosis. Active S-phase CDK2 migrates in multiple large complexes on gel filtration, and CDK2 in one of these complexes is associated with cyclin A. These findings suggest that CDK2 and CDC2, in association with distinct cyclins, regulate separate functions in the mammalian cell cycle.

Amino Acid Sequence

Antigenic relationships of foot-and-mouth disease virus serotype Asia-1 isolates demonstrated by monoclonal antibodies.

A panel (26) of monoclonal antibodies (MAbs) was elicited against three distinct isolates of foot-and-mouth disease virus (FMDV) serotype Asia-1. Each MAb was characterized according to the location of its epitope: Class I, restricted to the intact virion (140S); Class II, restricted to 140S and the virion protein subunit (12Sps); Class III, available on 140S, 12Sps and virus protein 1; Class IV, restricted to 12Sps. In addition, the MAbs were further categorized by isotype, neutralization of viral infectivity, capacity to bind in radioimmunoassay and precipitation in the Ouchterlony reaction. Neutralization of FMDV infectivity by a MAb of the IgA isotype is reported for the first time. A minimum of seven distinct neutralization epitopes were described on FMDV Asia-1. Some of the neutralizing MAbs bound FMDVs in addition to those that they neutralized. The MAbs defined epitopes common to FMDV serotypes Asia-1, A, O1 and C but neutralizing capacity was restricted to serotype Asia-1. Class IV MAbs defined epitopes highly conserved throughout the FMDV serotypes. Identification of FMDV neutralization epitopes makes possible the direct selection of optimal FMDV strains for vaccine fabrication. In addition, these data are crucial to the design of future synthetic vaccines.

Animals

Cell cycle regulation of CDK2 activity by phosphorylation of Thr160 and Tyr15.

We have examined the role of phosphorylation in the regulation of human cyclin-dependent kinase-2 (CDK2), a protein closely related to the cell cycle regulatory kinase CDC2. We find that CDK2 from HeLa cells contains three major tryptic phosphopeptides. Analysis of site-directed mutant proteins, expressed by transient transfection of COS cells, demonstrates that the two major phosphorylation sites are Tyr15 (Y15) and Thr160 (T160). Additional phosphorylation probably occurs on Thr14 (T14). Replacement of T160 with alanine abolishes the kinase activity of CDK2, indicating that phosphorylation at this site (as in CDC2) is required for kinase activity. Mutation of Y15 and T14 stimulates kinase activity, demonstrating that phosphorylation at these sites (as in CDC2) is inhibitory. Similarly, CDK2 is activated in vitro by dephosphorylation of Y15 and T14 by the phosphatase CDC25. Analysis of HeLa cells synchronized at various cell cycle stages indicates that CDK2 phosphorylation on T160 increases during S phase and G2, when CDK2 is most active. Phosphorylation on the inhibitory sites T14 and Y15 is also maximal during S phase and G2. Thus, the activity of a subpopulation of CDK2 molecules is inhibited at a time in the cell cycle when overall CDK2 activity is increased.

Amino Acid Sequence

Cell cycle control in normal and neoplastic cells.

Recent studies of cell cycle control suggest that cyclin-dependent protein kinases play a central role in the cell's commitment to a new division cycle in late G1. The regulation of these kinases in normal and neoplastic growth is becoming clear.

Animals

Association of p60c-src with endosomal membranes in mammalian fibroblasts.

We have examined the subcellular localization of p60c-src in mammalian fibroblasts. Analysis of indirect immunofluorescence by three-dimensional optical sectioning microscopy revealed a granular cytoplasmic staining that co-localized with the microtubule organizing center. Immunofluorescence experiments with antibodies against a number of membrane markers demonstrated a striking co-localization between p60c-src and the cation-dependent mannose-6-phosphate receptor (CI-MPR), a marker that identifies endosomes. Both p60c-src and the CI-MPR were found to cluster at the spindle poles throughout mitosis. In addition, treatment of interphase and mitotic cells with brefeldin A resulted in a clustering of p60c-src and CI-MPR at a peri-centriolar position. Biochemical fractionation of cellular membranes showed that a major proportion of p60c-src co-enriched with endocytic membranes. Treatment of membranes containing HRP to alter their apparent density also altered the density of p60c-src-containing membranes. Similar density shift experiments with total cellular membranes revealed that the majority of membrane-associated p60c-src in the cell is associated with endosomes, while very little is associated with plasma membranes. These results support a role for p60c-src in the regulation of endosomal membranes and protein trafficking.

Animals

Activation of human cyclin-dependent kinases in vitro.

We have analyzed the activation of human cyclin-dependent kinases in a cell-free system. Human CDC2, cyclin-dependent kinase 2 (CDK2), cyclin A, and cyclin B1 were produced in insect cells by infection with recombinant baculoviruses. CDC2 or CDK2 monomers in lysates of infected cells could be activated by the addition of lysates containing cyclin A or B1. CDC2 activation by cyclin B1, as well as CDK2 activation by cyclins A and B1, was accompanied by the formation of high molecular weight complexes. In contrast, CDC2 did not bind effectively to cyclin A. CDC2 activation by cyclin B1 was studied in detail and was found to be accompanied by phosphorylation of CDC2 on Threonine 161. The binding of CDC2 to cyclin B1 also occurred under conditions where CDC2 phosphorylation was prevented, resulting in an inactive complex that could then be phosphorylated and activated on addition of cell extract. Highly purified CDC2 and cyclin B1 also formed inactive complexes that could be activated in an ATP-dependent fashion by unidentified components in crude cell extracts. These data suggest that the CDC2 activation process begins with cyclin binding, after which CDC2 phosphorylation, catalyzed by a separate enzyme, leads to activation.

Amino Acid Sequence

A human issue.

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Acquired Immunodeficiency Syndrome

Expression, processing, and assembly of foot-and-mouth disease virus capsid structures in heterologous systems: induction of a neutralizing antibody response in guinea pigs.

Plasmids containing the foot-and-mouth disease virus structural protein precursor (P1) and 3C protease genes or the P1 gene alone were expressed in Escherichia coli. A recombinant baculovirus containing the P1 gene was also generated and expressed in Spodoptera frugiperda cells. Expression of the P1 and 3C genes in E. coli resulted in efficient synthesis and processing of the structural protein precursor and assembly into 70S empty capsids. This material reacted with neutralizing monoclonal antibodies which recognize only conformational epitopes and elicited a significant neutralizing antibody response in vaccinated guinea pigs. Expression of the P1 gene in E. coli resulted in synthesis of an insoluble product, whereas in insect cells infected with the recombinant baculovirus a soluble product was synthesized. Both soluble and insoluble P1 reacted with a 12S-specific monoclonal antibody, but only soluble P1 elicited a neutralizing antibody response in guinea pigs.

Animals

Detection of foot-and-mouth disease virus by competitive ELISA using a monoclonal antibody specific for the 12S protein subunit from six of the seven serotypes.

Foot-and-mouth disease (FMD) prevention and control programs are dependent upon rapid, reliable diagnostic procedures. The widely used FMD diagnostic complement fixation (CF) procedures require a specific antiserum for each of the seven FMDV serotypes making the tests both cumbersome and difficult to standardize. An FMD diagnostic, monoclonal antibody based inhibition-ELISA procedure was developed. The test uses a single monoclonal antibody (MAb) that reacts with all European and South American FMDV isolates examined. The procedure detects a highly conserved epitope on the 12S protein subunit of FMDV which appears to be common to all FMDV's with the exception of the South African Territories 2 serotype. The results indicate that the sensitivity of this test is greater than CF and approaches that of virus isolation.

Animals

Antibodies elicited by a biosynthetic peptide related to a major immunogenic area of FMDV A12.

Foot-and-mouth disease virus (FMDV) capsid contains 60 copies each of four structural proteins, virus proteins 1-4. Virus protein 1 (VP1) plays an important immunogenic role, being the only VP that is immunogenic as an isolated protein. Even peptides representing a partial amino acid (AA) sequence of VP1 can induce protective immunity in experimental hosts. A 32 AA residue, in a tandem repeat configuration (32dimer), of sero/subtype A-12 Lp ab VP1 (AA 132-168) was highly immunogenic for its homologous subtype and partially protective for FMDV serotype A strain A24. This cross-reactivity was further demonstrable in the ELISA and mouse protection tests. Three different antibody populations were isolated by affinity chromatography (AFC) from the serum of a steer immunized with the 32dimer. Each population seems to recognize a different epitope on the 32dimer peptide since each fraction was defined as unique by its reactivity with different subtypes of FMDV virus in RIA, ELISA, neutralization and competition assays. Considering the neutralizing activity of each of the antibody populations the pattern of neutralization of the 32dimer elicited antiserum can be described. Two of the three epitopes were mapped by competition assays using synthetic peptides.

Animals

Protection of cattle and swine against foot-and-mouth disease, using biosynthetic peptide vaccines.

A single dose of foot-and-mouth disease (FMD) virus protein 1 (VP1) peptide, expressed in Escherichia coli as a fusion protein with 190 amino acids (AA) of the LE' protein of the tryptophan operon of E coli, elicited an immune response in steers sufficient to withstand the challenge of exposure to animals with acute FMD. The 58-micrograms dose of viral peptide, composed of a segment of the VP1 from the A12 strain (A12) of FMD virus (FMDV; A12-32dimer) in a tandem repeat configuration of AA137 through 168 and emulsified with oil adjuvant, elicited a serologic response in cattle equivalent to that obtained using conventional whole virus vaccines. Two groups of swine were vaccinated, 1 with the A12-32dimer as used in cattle and 1 with AA131 through 157 from VP1 of the A24 strain (A24) of FMDV (A24-peptide), expressed in the same system as A12-32dimer, but as a single copy per molecule. In swine, the 58-micrograms dose of the A12-32dimer repeated at 28 days was an effective immunogen; all swine were protected against A12 and, in addition, the vaccine protected 50% of the swine against A24. The 29-micrograms dose of A24-peptide, administered according to the same schedule, elicited protection against A24 in 50% of the vaccinates and, in addition, protected 25% of those vaccinates against A12. The serologic response elicited by A12-32dimer against A24 virus was considerably greater than the response elicited by A24-peptide against A12 virus. The evidence of multiple immunogenic epitopes between AA131 and AA168 was evaluated.

Amino Acid Sequence

Analysis of foot-and-mouth disease virus-neutralizing idiotypes from immune bovine and swine with anti-murine idiotype antibody probes.

Rabbit anti-idiotypic antibodies (a-IdAb) induced by foot-and-mouth disease virus (FMDV) neutralizing mAb were used as probes to identify anti-FMDV Id in immune serum from bovine and swine. In a competitive RIA, at least two of the a-IdAb exhibited a dose-dependent capacity to compete with labeled virus for anti-FMDV antibodies from a convalescent bovine serum. These a-IdAb were immobilized on activated Sepharose and used to isolate anti-viral Id from bovine, swine, and murine FMDV immune sera. Both the bovine and swine antibodies recovered from the a-IdAb/Sepharose columns reacted with virus, and to a lesser extent with corresponding mAb-resistant virus variants. The binding of affinity isolated bovine and swine antibodies to virus was specifically inhibited by the homologous a-IdAb, and in addition, both were capable of neutralizing FMDV in suckling mouse protection and plaque reduction neutralization assays. Therefore, by means of a-IdAb probes generated against FMDV murine Id, two neutralizing Id were identified in bovine and swine. These results suggest that FMDV-neutralizing epitopes recognized by murine systems play a role in the overall immunity of foot-and-mouth disease-susceptible animals.

Animals

Mitosis-specific phosphorylation of p60c-src by p34cdc2-associated protein kinase.

As cells enter mitosis, the protein-tyrosine kinase, p60c-src, is known to be extensively phosphorylated on threonine in its amino-terminal region. In the present work, extracts of mitotic cells were searched for the protein kinase responsible for this phosphorylation. HeLa cells and Xenopus eggs were found to contain a mitosis-specific protein kinase activity capable of phosphorylating highly purified p60c-src in vitro on threonine residues. Tryptic phosphopeptide maps indicate that the mitotic HeLa kinase phosphorylates the same sites in vitro as those used during mitosis in vivo. In addition, this mitotic HeLa kinase comigrates on gel filtration with p34cdc2-associated histone H1 kinase, a well known regulator of mitotic events. Finally, antibodies to the C-terminal peptide of human p34cdc2 specifically deplete p60c-src-phosphorylating activity from mitotic extracts. These results suggest that p60c-src may act as an effector of p34cdc2 in certain mitotic processes.

Animals

Identification of virus neutralizing epitopes on naturally occurring variants of type A12 foot-and-mouth disease virus.

Four naturally occurring antigenic variants of foot-and-mouth disease virus type A12 were examined for their capacity to be neutralized by a number of monoclonal antibodies (MAb) which recognize different sites on the virus surface. The VP1 coding region of the RNA genome was sequenced and amino acid changes were determined for the variants. One of the neutralizing sites accounted for the differing antigenic properties of the variants and the epitope was mapped to amino acid residues 150-156 of VP1. Another epitope originally thought to occupy a single site in the area of amino acids 168-179 of VP1 was found on all of the variants. Competitive binding assays did not identify the exact binding site for this monoclonal antibody and the results suggest that the epitope may represent a site more complex than a sequential epitope. A polyclonal antiserum to a 13 kDa fragment of VP1 (residues 55-179) was found to have all the virus reactivity associated with sites located between residues 133-164 of VP1. In contrast, an antiserum to VP1 was found to have additional virus binding sites outside of the 133-164 region of VP1.

Antibodies, Monoclonal

Antigenic comparison of different foot-and-mouth disease virus types using monoclonal antibodies defining multiple neutralizing epitopes on FMDV A5 subtypes.

Thirteen monoclonal antibodies (MAbs) were elicited with A5 Spain-86 virus, the cause of the most recent foot-and-mouth disease virus (FMDV) outbreak in Spain. The MAbs were tested for ability to bind 140S virions and 12S protein subunits by liquid-phase radioimmunoassay (RIA), and to bind VP1 capsid protein by Western immunoblot assay. One of the thirteen MAb was virion (140S) specific, seven recognized 140S and 12S subunits, one bound to 140S, 12S and VP1 and four were 12S specific. These MAbs presented varying binding patterns when tested against different FMDV subtypes and serotypes, indicating the presence of conserved and non-conserved epitopes among FMDV serotypes and subtypes. Neutralization assays, in vivo and in vitro, showed that none of the 140S specific MAbs or 12S specific MAbs were neutralizing, but notably several of the 12S specific MAbs bound to all the different FMDV serotypes and can be useful diagnostic reagent for the detection of FMDV. The remaining MAbs showed varying behavior with the different types tested: not all types to which the MAbs bound were neutralized, demonstrating that the presence of an epitope and subsequent neutralization of infectivity are not necessarily correlated. Five type A12 neutralizing MAbs, previously characterized, have been used in this work. Four bound to A5 Spain-86 virus, but only one neutralized viral infectivity. On the basis of differential reactivity and neutralization among various FMDV subtypes and serotypes, and cross-inhibition binding assays between these MAbs, seven neutralization related epitopes have been defined on A5 Spain-86 virus.

Animals

Characterization of anti-idiotypic antibodies generated against foot-and-mouth disease virus neutralizing monoclonal antibodies.

A series of seven neutralizing monoclonal antibodies (nMAbs) against type A12 foot-and-mouth disease virus (FMDV) was used to induce polyclonal anti-idiotypic antibodies (anti-ids) in rabbits. The anti-ids were semi-purified through isotype affinity columns and assayed by solid-phase radioimmunoassay for cross-reactivity. nMAbs which map to the same epitope on the virion appear to contain a common idiotype, and the corresponding anti-ids competitively inhibited the virus-nMAb reaction. Using a modified ELISA assay, it was possible to demonstrate binding of purified anti-ids to FMDV susceptible tissue culture cells. Such antibodies however, did not interfere with the binding of virus to cells, and the binding of anti-ids to FMDV receptor-negative cells could also be demonstrated. Mice were inoculated with purified anti-ids, and two elicited anti-viral antibodies, although these antibodies were non-neutralizing. Thus anti-ids to anti-FMDV nMAbs failed to react with cellular receptors for the virus, but were able to induce anti-viral antibody and thus should be examined as an alternative vaccine strategy for this virus.

Animals