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Biomedical subjects

D Crouch

Publications and source records attributed to D Crouch.

At least 19 recordsLinked to original sources

Minimal standards for the performance and interpretation of toxicology tests in legal proceedings.

There have been several high profile criminal and civil cases that have been litigated in recent years involving toxicologic analyses and interpretations of blood, urine, and other specimens for drugs of abuse. Disputes have erupted between prominent toxicologists and laboratory scientists as to the validity and interpretation of the data presented. The disputes centered around the fact that the procedures used in these cases had not been properly validated with analytical noise being misinterpreted as a positive result. As with any analyses, forensic tests must be conducted in a manner such that they meet the minimum standards accepted within the toxicology community. No conclusions as to presence or absence of drug, its concentration, or its physiologic effects can be made if there is a failure to meet these basic standards. Several cases are presented where these standard tenets may not have been followed.

Blood Stains↗

Apparent uncoupling of oncogenicity from fibroblast transformation and apoptosis in a mutant myc gene transduced by feline leukemia virus.

The T17 v-myc oncogene was transduced by feline leukemia virus in a spontaneous feline T-cell lymphosarcoma. Molecular cloning and sequencing of the v-myc gene revealed several unique mutations, including a large deletion affecting amino acids 49 to 124 and a 3-bp insertion within the basic DNA binding domain which converts Leu-362 to Phe-Arg. The T17 lymphoma cell line was found to express a truncated 50-kDa Myc protein at exceptionally high levels, while the endogenous c-myc gene was not detectably expressed. These observations suggest that the mutant Myc product expresses an oncogenic function in T cells. Further evidence that the T17 mutant gene retains oncogenic potential was provided by its detection in clonally integrated proviruses in secondary tumors induced by feline leukemia virus T17, where no reversion mutations were found in any of three tumors examined. However, the mutant T17 v-myc gene did not induce transformation in a chicken embryo fibroblast assay, in contrast to wild-type feline c-myc, which conferred higher growth rates on the chicken fibroblasts, along with altered morphology and the ability to form foci in soft agar. Chicken cells over-expressing feline c-myc died by apoptosis when cultured with low serum concentrations, while the T17 mutant had no discernible effect. These results suggest that the leukemogenic potential of Myc can be uncoupled from its ability to cause transformation in fibroblasts. A possible explanation for this apparent paradox is that developing T cells are acutely sensitive to a subset of Myc functions which are insufficient for fibroblast transformation.

Amino Acid Sequence↗

GCN1, a translational activator of GCN4 in Saccharomyces cerevisiae, is required for phosphorylation of eukaryotic translation initiation factor 2 by protein kinase GCN2.

Phosphorylation of the alpha subunit of eukaryotic translation initiation factor 2 (eIF-2 alpha) by the protein kinase GCN2 mediates increased translation of the transcriptional activator GCN4 in amino acid-starved yeast cells. We show that this key phosphorylation event and the attendant translational induction of GCN4 are dependent on the product of a previously uncharacterized gene, GCN1. Inactivation of GCN1 did not affect the level of eIF-2 alpha phosphorylation when mammalian eIF-2 alpha kinases were expressed in yeast cells in place of GCN2, arguing against an involvement of GCN1 in dephosphorylation of eIF-2 alpha. In addition, while GCN1 is required in vivo for phosphorylation of eIF-2 alpha by GCN2, cell extracts from gcn1 delta strains contained wild-type levels of GCN2 eIF-2 alpha-kinase activity. On the basis of these results, we propose that GCN1 is not needed for GCN2 kinase activity per se but is required for in vivo activation of GCN2 in response to the starvation signal, uncharged tRNA. GCN1 encodes a protein of 297 kDa with an 88-kDa region that is highly similar in sequence to translation elongation factor 3 identified in several fungal species. This sequence similarity raises the possibility that GCN1 interacts with ribosomes or tRNA molecules and functions in conjunction with GCN2 in monitoring uncharged tRNA levels during the process of translation elongation.

Amino Acid Sequence↗

Science and trans-science in radiation risk assessment: child cancer around the nuclear fuel reprocessing plant at Sellafield, U.K.

The assessment of health risks to the population from radionuclides in the environment is a complex and as yet incomplete science: biogeochemical mechanisms of environmental transfer and concentration are poorly understood; models of radionuclide metabolism rely largely on inconclusive and contradictory experiments with animals, and the principles by which results may be extrapolated to humans are unknown; uncertainties in the dosimetry of alpha-emitters in children and the foetus are acute; and chronic doubt persists over the magnitude of low-level dose-response for radiation carcinogenesis. To deny uncertainties of this nature is to court public distrust of scientific risk assessment; public confidence in nuclear power technologies might be strengthened through a more open discussion of the technical difficulties involved. These problems are described with reference to the assessment of cancer risks at a large nuclear facility in the north of England. The extent of uncertainties in a recent radiological risk assessment are found to be such that, should scientific concern persist over the exceptional incidence of child cancer in the locality, greater consideration should be given to a reappraisal of the risk calculation.

Child↗

The association of eIF-2 with Met-tRNAi or eIF-2B alters the specificity of eIF-2 phosphatase.

In unfractioned reticulocyte lysate, interaction of eukaryotic initiation factor 2 (eIF-2) with other components regulates the accessibility of phosphatases and kinases to phosphorylation sites on its alpha and beta subunits. Upon addition of eIF-2 phosphorylated on both alpha and beta subunits (eIF-2(alpha 32P, beta 32P) to lysate, the alpha subunit is rapidly dephosphorylated, but the beta subunit is not. In contrast, both sites are rapidly dephosphorylated by the purified phosphatase. The basis of this altered specificity appears to be the association of eIF-2 with other translational components rather than an alteration of the phosphatase. Formation of an eIF-2(alpha 32P,beta 32P) Met-tRNAi X GTP ternary complex prevents dephosphorylation of the beta subunit, but has no effect on the rate of alpha dephosphorylation. eIF-2B, a 280,000-dalton polypeptide complex required for GTP:GDP exchange, also protects the beta subunit phosphorylation site from the purified phosphatase. However, the dephosphorylation of eIF-2(alpha 32P) is inhibited by 75% while complexed with eIF-2B. The altered phosphatase specificity upon association of eIF-2 with eIF-2B also affects the access of protein kinases to these phosphorylation sites. In the eIF-2B X eIF-2 complex, the alpha subunit is phosphorylated at 30% the rate of free eIF-2. Under identical conditions, phosphorylation of eIF-2 beta can not be detected. These results illustrate the importance of substrate conformation and/or functional association with other components in determining the overall phosphorylation state allowed by alterations of kinase and phosphatase activities.

Animals↗

The protein phosphatases involved in cellular regulation. 4. Classification of two homogeneous myosin light chain phosphatases from smooth muscle as protein phosphatase-2A1 and 2C, and a homogeneous protein phosphatase from reticulocytes active on protein synthesis initiation factor eIF-2 as protein phosphatase-2A2.

Two homogeneous protein phosphatases, termed 'smooth muscle phosphatase-I' and 'smooth muscle phosphatase-II', isolated from turkey gizzard as enzymes active against the 20-kDa light chain of smooth muscle myosin, and a third homogeneous protein phosphatase from rabbit reticulocytes, purified as an enzyme active against protein synthesis initiation factor eIF-2, were classified using the criteria defined by Ingebritsen and Cohen [Eur. J. Biochem. (1983) 132, 255-261]. All three enzymes were type-2 protein phosphatases based on their specificity for the alpha-subunit of phosphorylase kinase and insensitivity to inhibitor-1 and inhibitor-2. The substrate specificities of smooth muscle phosphatase-I and the eIF-2 phosphatase were similar to the catalytic subunit of protein phosphatase-2A. Smooth muscle phosphatase-I could be designated as protein phosphatase-2A1 and eIF-2 phosphatase as protein phosphatase-2A2 on the basis of their subunit compositions. The substrate specificity, dependence of activity on Mg2+ and subunit composition of smooth muscle phosphatase-II allowed its assignment as protein phosphatase-2C.

Animals↗

Purification and properties of eIF-2 phosphatase.

Eukaryotic initiation factor 2 (eIF-2) phosphatase has been purified 840-fold to apparent homogeneity from rabbit reticulocyte lysate. Native eIF-2 phosphatase has a Mr = 98,000, pI = 6.1, s20,w = 5.1, and a Stokes radius = 38 A. A subunit composition of one 60,000-dalton polypeptide and one 38,000-dalton polypeptide is indicated. The Km for [32P]eIF-2 is 30 microM and the Vmax = 1.1 nmol of phosphate released/min/microgram. The 38,000-dalton subunit of eIF-2 phosphatase does not co-electrophorese with the catalytic subunit of liver phosphorylase phosphatase, a type 1 protein phosphatase. The specificity of eIF-2 phosphatase for phosphorylation sites on th alpha- and beta-subunits of eIF-2 appears to be determined by the environment of the phosphatase and substrate. Both the alpha- and beta-subunits of [32P]eIF-2 are rapidly dephosphorylated by the purified phosphatase. In unfractionated lysate and in unfractionated lysate supplemented with an equivalent activity of the purified phosphatase, only the alpha-subunit of eIF-2 is dephosphorylated. This indicates other factors are present in the lysate which govern the dephosphorylation of eIF-2.

Animals↗

Indirect inactivation of eukaryotic initiation factor 2 in reticulocyte lysate by selenite.

Addition of selenite to rabbit reticulocyte lysate produces a biphasic pattern of translational inhibition. Sucrose density gradient shows that the onset of translational inhibition is accompanied by decreased Met-tRNAf binding to 43 SN ribosomal subunits and loss of polysomes. Control rates of translation are restored by the addition of exogenous eukaryotic initiation factor 2 (eIF-2). Selenite also directly inhibits Met-tRNAf binding activity of eIF-2. While selenite could react directly with unpaired cysteine residues of eIF-2 to inhibit protein synthesis initiation, a more complex mechanism than a direct inactivation of eIF-2 is suggested by the following observations: 1) translational inhibition produced by selenite is accompanied by an apparent increase in the phosphorylation state of eIF-2alpha; and 2) the extent of translational inhibiton is not proportional to steady-state level of phosphorylation. Rather, the time required for the onset of translational inhibition decreases as the level of eIF-2alpha phosphorylation is increased. This suggests a multistep sequence for eIF-2 inactivation, dependent upon an initial activation of eIF-2alpha kinase and followed by additional eIF-2 modification(s).

Animals↗