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J F Anson

Publications and source records attributed to J F Anson.

At least 19 recordsLinked to original sources

Comparison of the cell cycle regulated synthesis and phosphorylation of stress proteins, actin isoforms and a novel actin-like protein following drug administration in cultured rat lymphocytes.

Administration of phytohemagglutinin initiated cycling of rat lymphocytes in vitro, and following treatment with this drug and other drugs in combination, lymphocytes were pulse labeled with [3H] leucine of [32P] phosphate. The nuclei were isolated from lymphocytes and collected from partitions of the cell cycle, and the proteins analyzed from fluorographs following gel electrophoresis for protein biomarkers after drug exposure. Stress proteins (sps) were dependent on a specific drug or drugs in combination (i.e., interleukin-2, bleomycin) for their synthesis that occurred only during the G1-phase of the cell cycle. An "actin-like" protein (A4) with electrophoretic mobilities similar to the actin complex, was synthesized in S and G2 phases and phosphorylated in all phases of the cell cycle only following the administration of drugs in combination. A4 exhibited a binding affinity for sp 24 that was cell cycle regulated (i.e., A4 from S phase did not bind with sp 24, but A4 from G2 phase did bind with the sp. Protein A4 appeared similar in some structural aspects to the nonmuscular actin isoform family but differed in epitope, suggesting a unique relationship and represented a stable protein, perhaps a product from the mutation of an actin gene. The dependence of certain sps and protein A4 for their induction by drugs in combination may serve as biomarkers of chemical interaction and toxicity.

Actins↗

Retinoic acid-induced stress protein synthesis in the mouse.

We have previously demonstrated that stress proteins (SPs) are synthesized in tissues in which malformations are later observed following treatment with the developmental toxicant, retinoic acid (RA), on day 11 of gestation (GD 11). These proteins were not synthesized in tissues which did not present with malformations near partuition. The purpose of the present investigation was to determine if this correlation between early SP synthesis and later malformation was present at other times during gestation. CD-1 strain mice were dosed orally with corn oil or 100 mg/kg body weight RA on GD 10 or 13. Some of the mice in each group were given an intraperitoneal injection of 3H-leucine to label embryonic protein synthesis one hour after dosing with RA. These animals were sacrificed 1.5 hour later, and embryonic protein synthesis was determined by two-dimensional gel electrophoresis followed by autoradiography. Other animals in each group were sacrificed on day 17 of gestation, and fetuses were examined for the presence of malformations. Following treatment with RA on day 10 of gestation, malformations were observed in the forelimbs, the hindlimbs and the tail; heart defects were not observed. SPs of 20-25,000 and 90,000 relative molecular mass (Mr) were synthesized in the forelimb bud and tail; in addition, a second low molecular weight (20-25,000) and a 84,000 Mr SPs were synthesized in forelimb buds. No SPs were synthesized in the hindlimb bud or the heart. Following RA treatment on GD 13, cleft palate was observed in 58% of fetuses; no other malformations were found. Proteins of 34,000, 84,000 and 90,000 Mr were synthesized in craniofacial tissue; SPs were not observed in forelimb bud, hindlimb bud, heart or tail tissues at this time. Therefore, it appears that there may be a correlation between tissue-specific SP synthesis early in organogenesis and the presence of a malformation later in gestation.

Abnormalities, Drug-Induced↗

The homology of a novel polypeptide with stress protein characteristics in embryonic mice brain and in the hypothalamus of caloric restricted rats as determined by ultramicro western blotting.

A novel protein (p34) was observed in polyacrylamide gel fluorographs of gestation day 13 embryonic mouse brain following retinoic acid dosing of dams. Another p34 polypeptide with identical gel migratory characteristics was seen in the hypothalamus of old caloric restricted rats after "food deprivation stress". Western blotting, employing an ultramicro trans-blot cell developed in our laboratory, detected identical immunochemical determinants between these proteins, verifying their homology. Peptide mapping and Western blotting further validated the uniqueness of p34 compared with other stress proteins including heme oxygenase.

Animals↗

Comparative studies of synthesis, phosphorylation, DNA binding and proteolytic characteristics of a novel protein during phases of the mouse spleen cell cycle.

1. Cultured mouse spleen cells were exposed to the mitogen Concanavalin A followed by isoproterenol, and nuclei were electronically sorted from seven partitions of the cell cycle. 2. Several nuclear proteins, including stress proteins, which were cell-cycle-stage specific, were elicited by isoproterenol as determined by micro-electrophoresis and fluorography. 3. Two novel S-phase proteins (X0 and X') demonstrated differing synthesis and phosphorylation patterns during the cell-cycle phases. 4. X' showed DNA binding characteristics and proteolytic properties (hydrolyzing X0 or beta-galactosidase); both proteins were cell-cycle regulated.

Animals↗

Target tissue specificity of retinoic acid-induced stress proteins and malformations in mice.

Retinoic acid (RA) is teratogenic in rodents and also induces the synthesis of stress proteins in fetal mouse limb buds. To determine if the RA induction of stress proteins is target tissue specific, pregnant CD-1 mice were gavaged with 100 mg/kg RA on day 11 of gestation, and nuclei isolated from tissues susceptible to RA-induced malformations (target tissues) as well as nuclei isolated from nontarget tissues were examined for stress protein synthesis and malformations. Forelimb and hindlimb (target tissues), as well as heart and tail (nontarget tissues), were removed from embryos 2.5 hours after RA treatment (1.5 hr after [3H]leucine labeling). Cell nuclei were isolated, stained with a DNA specific fluorochrome, propidium iodide, and sorted from the G0 + G1 and G2 + M phases of the cell cycle. Forelimb and hindlimb target tissues showed the synthesis in these embryonic nuclear proteins of an 84,000 relative molecular mass (Mr) protein and a 90,000 Mr protein following RA treatment. Two 20,000-25,000 Mr stress proteins were also labeled both in forelimb and hindlimb. Forelimb and hindlimb from untreated dams showed no stress protein labeling. Neither heart nor tail, nontarget tissues, showed any stress protein labeling following RA treatment. Classical teratological evaluation of embryos treated on GD 11 and sacrificed on GD 17 showed that 100% of the fetuses had forelimb and/or hindlimb malformations, while no malformations were observed in either the heart or tail. Based on the correlation of teratological anomalies with the identification of stress proteins in target tissue only, we postulate that stress proteins may be involved in the teratogenic process. Further work is necessary to establish whether a causal relationship exists.

Abnormalities, Drug-Induced↗

Nuclear protein phosphorylation in rat cerebral cells following acute exposure to ethanol.

The sequelae of acute ethanol toxicity encompass a broad spectrum of metabolic and cellular derangements, including the induction of stress proteins in cells exposed to high levels of ethanol. In this investigation, the effects of ethanol exposure on nuclear protein synthesis and phosphorylation were compared by two-dimensional gel electrophoresis in glial-enriched cultures, adult rat cerebrum and regenerated liver. Cellular exposure to ethanol was at clinically relevant levels and tissue was analyzed at 1 h and 48 h after exposure. Cell nuclei were stained with propidium iodide, a DNA specific fluorochrome and flow cytometrically sorted to obtain cell cycle phase populations of nuclei for analysis. Ethanol treatment of intact rats and glial-enriched cultures induced phosphorylation of specific nuclear proteins, which were detected by two-dimensional electrophoresis and autoradiography. The autoradiographs of [32P]phosphate and [3H]leucine labeled proteins from glial-enriched cultures and from the G0/G1 phase of the regenerating liver tissue exhibited intense labeling indicative of active protein synthesis and phosphorylation. In contrast, the autoradiographs of proteins from adult rat cerebra showed substantial phosphorylation, but weak protein synthesis. Ethanol treatment was associated with phosphorylation of a 50,000 Mr protein in G0/G1 phase cells of the cultures and in predominantly G0 cells of the adult rat cerebra. A protein with similar characteristics was not found in ethanol exposed regenerating rat liver tissue and has not been observed in other 'heat shock' or 'stress' protein systems which we have previously studied.

Animals↗

Synthesis and phosphorylation of nuclear matrix proteins following a toxic dose of retinoic acid in cycling and differentiating HL-60 cells.

Exposure of HL-60 cells to 2 microM retinoic acid, twice the dose necessary for differentiation, initiated protein synthesis within 2 h exposure in the nuclear matrix proteins and phosphorylation of a subfraction of these proteins, designated the phenol-soluble nuclear proteins. These processes were examined by fluorography of two-dimensional polyacrylamide gels. Three cell-cycle related stress proteins (22, 70c, 70x Mr x 10(-3)), were seen in the nuclear matrix fraction that were synthesized early and disappeared rapidly following dosing with retinoic acid. In control cells, protein 120 was also cell-cycle related and showed modest synthesis in nuclear matrix and strong phosphorylation in phenol-soluble fraction. Within 5 h after dosing, p120 exhibited alteration in phosphorylation as evidenced by mapping of [32P]-labeled peptides. Two nuclear matrix proteins, p52 and p55, incorporated [3H] retinoic acid rapidly, were cell-cycle-related, and disappeared within 12 h of dosing. Progressive increases in the labeling of the nuclear matrix and phenol-soluble nuclear proteins with increasing retinoic acid exposure was apparent in G2-phase at 96 h time-after-dosing.

Antigens, Nuclear↗

Synthesis and biochemical characteristics of nucleoproteins following a toxic dose of retinoic acid in cycling and differentiating HL-60 cells.

Exposure of HL-60 cells to 2 microM retinoic acid (RA), twice the dose necessary for differentiation, initiated rapid synthesis (2 h) of the nuclear stress proteins (SPs) e.g., 90, 70c, 70x, 22 (Mr x 10(-3)) during the G0 + G1 phase of the cell cycle as observed by polyacrylamide gel electrophoresis (PAGE). Synthesis of SPs was cell cycle correlated and not dependent on time-after-dosing, and all labeling disappeared from these proteins within 48 h of RA exposure. Stress proteins were not elicited with a 1 microM dose or less of retinoic acid. Non-stress nuclear proteins revealed changes in synthesis levels (e.g., actin, lamins, tubulins) which were cell cycle related and temporally associated with dosing. A major non-stress nuclear protein (Mr 120,000) which possessed an affinity for actin in binding assays, was cell cycle related in control cells, and was suppressed in synthesis in cells exposed to 2 microM retinoic acid. Two additional nuclear non-SPs 51 and 55 (Mr x 10(-3)) covalently bound the isotope [3H]retinoic acid, and their incorporation was cell cycle correlated during early periods of RA exposure. Except for the induction of SPs, the autoradiographs of nuclear proteins of RA dosed HL-60 cells, showed more quantitative than qualitative changes.

Actins↗

Flow cytometric DNA analysis of corneal epithelium.

We have modified an existing technique in order to perform DNA analysis by flow cytometry (FCM) of corneal epithelium from the mouse, rat, chicken, rabbit, and human. This protocol permitted an investigation of human corneal scrapings from several categories: normal, aphakic bullous keratopathy (ABK), keratoconus (KC), Fuch's dystrophy, edema, epithelial dysplasia, and lipid degeneration. No abnormal characteristic cell-kinetic profile was detected when averaged DNA histograms were compared statistically between the normal and either ABK, KC, edema, or Fuch's dystrophy groups. Abnormal DNA histograms were recorded for cell samples that were taken 1) from three individuals who had epithelial dysplasia and 2) from one individual diagnosed with lipid degeneration. The former condition was characterized by histograms that had a subpopulation of cells with an aneuploid amount of DNA or had higher than normal percentages of cells in the S and G2 + M phases of the cell cycle. Corneal cells from the patient who had lipid degeneration had an abnormally high percentage of cells in the G2 + M phases of the cell cycle. The availability of accurate DNA flow cytometric analysis of corneal epithelium allows further studies on this issue from both experimental and clinical situations.

Animals↗

Differential phosphate labeling of stress protein polypeptides in toxic dose response during S-phase of mouse lymphoma cells: a micro-electrophoretic study.

Following dosing with various levels of sodium arsenite (NaAsO2), differential [32P]-incorporation (turnover) of polypeptide fragments, generated by protease V8, from a set of four closely related stress proteins (SPs), termed 'c','b','x' and 'y', (80,000-84,000 Mr) was investigated by polyacrylamide gel (PAG) autoradiography. These SPs were physically sorted sequentially from five partitions of S-phase of a mouse lymphoma cell line (YAC-1). The fragments of each of the four SPs exhibited differential [32P]-incorporation patterns with progression in S-phase following varied dose levels of NaAsO2. The majority of V8 protease-fragments of the four SPs had identical electrophoretic mobilities. A minority of polypeptides showed varied distribution among the four SPs and these fragments revealed increased [32P]-labeling progressively in S-phase. These fragments were the most sensitive to altered dose levels of NaAsO2. It was suggested that these four SPs are discrete but structurally similar proteins. A group of other SPs (S1, S2 and S3) observed predominantly in S-phase, showed reduction in polypeptide labeling during S with varied dosing of NaAsO2. The [32P]-labeling of fragments from the SPs seems generally to follow an ordered scheme of turnover (phosphorylation-dephosphorylation) during S-phase.

Animals↗

Differential [32P]-labeling of chemically induced stress proteins in S-phase mouse lymphoma cells.

A portion of our research involves the investigation of biomarkers as preclinical indicators of toxic stress. Stemming from this effort, we report three unique proteins that phosphorylate and synthesize during the S-phase of lymphoma cells following chemical insult. Mouse lymphoma cell nuclei were physically sorted (using a fluorescence activated cell sorter) from partitions of the cell cycle and specific nuclear proteins in each partition were examined by gel microelectrophoresis. The changes in [32P]-incorporation by stress proteins (SPs) were examined in each of seven partitions following administration of sodium arsenite. Four SPs [80,000-84,000 relative molecular mass (Mr)], designated 'c','b','x', and 'y', underwent significant alterations in [32P]-labeling and each exhibited varying degrees of differential [32P]-incorporation in partition 3 of G1 phase, all five partitions of S-phase, and partition 1 of G2 phase of the cell cycle. Three other predominantly S-phase SPs (designated S1, S2 and S3) were phosphorylated after sodium arsenite treatment. Stress protein S1 was labeled exclusively in S-phase, while proteins S2 and S3 were labeled only in partition 3 of G1 and S-phase. Stress protein S1 possessed an identical isoelectric point, molecular mass, distribution of polypeptide fragments and immunochemical determinants as S-phase SPs found previously in mouse spleen (X') and mouse liver (LP-S). The identical biochemical characteristics of these three S-phase (SPs), found in diverse tissue types, suggest they are homologous.

Animals↗

Comparative immunochemical and structural similarities of five stress proteins from various tissue types.

1. Incorporation of radioactive phosphate or leucine by stress proteins from rodent lymphoma, submaxillary and liver nuclei were observed in two-dimensional gels following chemical and environmental stress. 2. The stress proteins were isolated from second-dimension gels and their similarities compared. Mol. wt determinations, immunochemical blotting and protease V8 peptide mapping confirmed the identical nature of the stress proteins possessing identical Mr, but from diverse tissue types. 3. These data imply that highly similar stress proteins exist in diverse tissues, are conserved during evolution, and possess some elemental and essential function.

Animals↗

Phenytoin-induced stress protein synthesis in mouse embryonic tissue.

Several proteins have been shown to be synthesized in response to various environmental stimuli, including treatment with teratogens. The role of these proteins in the teratogenic process is unknown. Pregnant A/J mice were treated with either a teratogenic or a non-teratogenic dose of the anticonvulsant drug, phenytoin (PHT). Protein synthesis in embryonic craniofacial (target) tissue or forelimb buds (non-target) was determined by incorporation of radiolabeled leucine and analysis by two-dimensional polyacrylamide gel electrophoresis. Synthesis of three proteins in target tissue and one protein in non-target tissue was stimulated by drug treatment. These results suggest that synthesis of specific stress proteins may serve as biomarkers of drug-target tissue interaction.

Animals↗

Cell cycle-specific effects of sodium arsenite and hyperthermic exposure on incorporation of radioactive leucine and phosphate by stress proteins from mouse lymphoma cell nuclei.

Cultured mouse lymphoma cells incorporated [3H]leucine and [32P]phosphate into nuclear stress proteins within 3 h after exposure to either elevated temperature (45 degrees C) or sodium arsenite. Radiolabeled proteins were detected by autoradiography after two-dimensional polyacrylamide gel electrophoresis. To determine the cell cycle stage specificity of labeling, nuclei were isolated and sorted into two cell cycle phases using a fluorescent activated cell sorter. After either heat shock or sodium arsenite treatment, the majority of [3H]leucine incorporation into stress proteins occurred during the G0 + G1 phase with minimal labeling in the G2 phase. On the other hand, 32P labeling of stress proteins occurred in both the G0 + G1 and G2 phases after exposure to sodium arsenite, while incorporation of 32P was limited after heat stress. Following sodium arsenite treatment, a distinct set of four stress proteins (80-84 kDa) was detected with [3H]leucine only in G0 + G1 phase, but with [32P]phosphate these stress proteins were labeled in both G0 + G1 and G2. There was differential [32P]phosphate labeling between proteins of the 80-84 kDa set during cell cycling. Individual proteins of this set were isolated from gel plugs after sodium arsenite or heat-shock treatment. Coelectrophoresis of proteins from the two treatment groups showed that they had similar electrophoretic mobilities. All four proteins of the 80-84 kDa set (sodium arsenite induced) possessed similar polypeptide maps after digestion with V8 protease. Cytofluorometric analysis demonstrated a reduction in the number of nuclei in both S and G2 phases of the cell cycle two h after heat shock, but not following sodium arsenite treatment. However, there was a significant depression in the number of nuclei in S and G2 4 h after exposure to sodium arsenite and very modest labeling with 32P of stress proteins was observed at this time.

Animals↗

Retinoic acid induction of stress proteins in fetal mouse limb buds.

Retinoic acid (RA) is teratogenic in rodent embryos. Several teratogens have been shown to induce the synthesis of a subset of heat shock proteins (stress proteins) in Drosophila. To determine if RA induces the synthesis of these proteins in rodent embryos, pregnant ICR mice were dosed with 100 mg/kg RA on Day 11 of gestation. Forelimb buds were removed from embryos 2.5 hr post-RA-treatment and nuclei were isolated, stained, and sorted from stages of the cell cycle. Nuclear proteins were extracted and analyzed by two-dimensional polyacrylamide gel electrophoresis. Nuclear proteins with molecular weights of approximately 84 and 25 kDa were synthesized in embryos in the G0 + G1 phase after pregnant dams were treated with RA. Isoelectric points, molecular weights, immunochemical blotting, and polypeptide mapping demonstrated that these proteins are indistinguishable from stress proteins isolated under a variety of conditions from rat submaxillary glands and mouse lymphoma cells. These results suggest that treatment with RA induces the synthesis of a subset of stress proteins; the role of these proteins in the teratogenic effects of RA is not known.

Animals↗

The turnover of radiolabeled nuclear proteins in rats exposed to environmental and chemical stress.

Exposure to a 12 h light/12 h dark (L/D) cycle for 1 month, followed by reversal to a 12 h D/12 h L (D/L) cycle stimulated within 18 h the incorporation of [3H]leucine and [32P]orthophosphoric acid into new proteins (130-25 kDa) in the G0 phase of the cell cycle of the non-regenerating and regenerating rat liver as observed in two-dimensional gel autoradiograms. Six additional proteins from the rat submaxillary gland (130-20 kDa) revealed labeling with 32P within 3 h following combined administration of isoproterenol and sodium arsenite. Labeling disappeared within 7 days for all stressed proteins.

Animals↗

Analysis of protein incorporation of radioactive isotopes in the Chinese hamster ovary cell cycle by electronic sorting and gel microelectrophoresis.

The patterns of [3H]-leucine and [32P]-phosphate incorporation of proteins extracted with varying molarities of sodium chloride were analyzed from nuclei physically sorted from six fluorescence windows after propidium iodine staining of the G0 + G1 and G2 + M phases of the Chinese hamster ovary (CHO) cell cycle. Eight hundred nanograms of protein were used in each electrophoretic analysis obtained from 200,000 nuclei, a portion of the sample, from each window. Autoradiography was performed in a two-dimensional polyacrylamide gel ultra-microelectrophoresis apparatus (UMEA) designed and fabricated in this laboratory. There was a net reduction and/or loss of [3H]-leucine- and [32P]-phosphate-labeled protein regions from the autoradiographs occurring primarily in the G2 + M phase. Two phosphorylated proteins that were stage specific were observed in partitions of the G2 + M phase. The use of isolated proteins and the coelectrophoresis of these markers demonstrated the similarity in mobility of a number of proteins seen in the autoradiographs of proteins extracted with high and low salt molarities and implied they are synonymous. Coelectrophoresis indicated that a substantial number of high molecular weight proteins that decreased or disappeared at late stages of G2 + M and early mitosis were composed, in part, of nucleolar proteins.

Animals↗

Drug modulation of chromosomal protein subtypes during specific phases of the submaxillary cell cycle.

The H1 subtype proteins a, b, c, d, e, and 1 degree and the high mobility group (HMG) proteins 14 and 17 were extracted from submaxillary gland (SMG) nuclei treated in vivo and sorted from specific phases of the cell cycle, and analyzed by gel electrophoresis. Significant differences in these proteins were noted between quiescent (GO) phase nuclei and proliferating nuclei in both stained and autoradiographic gels. Stimulation of the SMG into cell division with DL-isoproterenol-HCl alone or in conjunction with sodium phenobarbital (PB) provided a system for the analysis of drug effects in stained, 3H lysine, and 32P pulse-labeled nuclear proteins obtained from different phases of the cell cycle.

Animals↗