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Biomedical subjects

B Kosciolek

Publications and source records attributed to B Kosciolek.

6 recordsLinked to original sources

Oncogene expression in neurofibromatosis.

To investigate the role of oncogenes in malignancies characteristic of neurofibromatosis, oncogene transcripts were quantitated in a neurofibrosarcoma and in control tissue from a patient with hereditary neurofibromatosis. Sis and N-ras were moderately hyperexpressed, raf, Blym, and erbA were slightly hyperexpressed, and abl, erbB, fes/fps, fgr, fos, mos, myb, myc, N-myc, rasHarvey, rasKirsten, ros, src, and yes were not hyperexpressed in the tumor compared to the control tissue. Although additional tumors will be assayed before conclusions are possible, it may be significant that the two oncogenes most hyperexpressed are prior suspects for a pathogenetic role in tumors of the nervous system.

Gene Expression Regulation

K562 human erythroleukemia cell variants resistant to growth inhibition by butyrate have deficient histone acetylation.

K562 is an established human erythroleukemia cell line, inducible for hemoglobin synthesis by a variety of compounds including n-butyrate. To elucidate the role of butyrate-induced histone acetylation in the regulation of gene expression in K562 cells, we isolated 20 variants resistant to the growth inhibitory effect of butyrate. Four variants having different degrees of resistance were selected for detailed study. All four were found to be resistant to the hemoglobin-inducing effect of butyrate, suggesting that the two aspects of butyrate response, restriction of growth and induction of hemoglobin synthesis, are coupled. Further, after (5 days) culture with butyrate, two of the four variants exhibit less acetylation of H3 and H4 histones than does the butyrate-treated parent. Analysis of histone deacetylases from the variants indicated that each variant was distinct and that butyrate resistance may be accounted for by decreased affinity of the variant enzymes for butyrate, increased affinity of the enzymes for acetylated histone, or both. The fact that variants selected for resistance to growth inhibition by butyrate are also deficient in butyrate-induced hemoglobin synthesis and have abnormal histone deacetylase activity argues for butyrate inducing K562 cells to synthesize hemoglobin and restrict growth via histone acetylation.

Acetylation

Hemin preferentially stimulates synthesis of alpha-globin in K562 human erythroleukemia cells.

K562 human erythroleukemia cells are an established cell line derived from an adult with chronic myelogenous leukemia. Hemin stimulates their synthesis of embryonic and fetal hemoglobins. We have found that their globin synthetic pattern depends on the concentration of added hemin. Clone RA6 was cultured with 0--100 microM hemin and the globin synthetic pattern determined by 3H-leucine incorporation and analysis of 3H-globins by polyacrylamide gel electrophoresis in Triton X acid urea followed by fluorography and densitometry. The higher the hemin concentration, the greater the synthetic rate of each type of globin. However, the relative increase was greatest for alpha-globin. We propose that the differential dependence of alpha synthesis on added hemin is a reflection of translational inefficiency of alpha messenger RNA and that this property is exposed when the translational capacity of the cell is limited by hemin deficiency. We suggest that the differential dependence of alpha-chain synthesis on added hemin in clone RA6 is evidence of an intrinsic deficiency in heme synthesis.

Cell Line

Trypsin enhances erythropoiesis in vitro.

When a single cell suspension of human adult marrow or fetal liver is treated briefly with trypsin, the number of erythroid bursts arising in culture is significantly increased. Erythroid colonies show less stimulation. The time to reach maximum burst number may also be shortened. The absolute increase in burst number is greater at higher concentrations of erythropoietin, suggesting a synergistic effect of trypsin treatment with that of erythropoietin. Trypsin also increases the size of the individual burst subunit. The trypsin effect is not limited to a given class of bursts as distinguished by subunit number. Other enzymes, pronase, chymotrypsin and phospholipase D, also increase burst number but to a lesser degree. The burst-stimulating effect of trypsin is enzymatic since it is completely prevented by DFP, a specific inhibitor of trypsin action.

Adult

Hemoglobin synthesis in cultures of hepatic erythroid cells from the human fetus.

A recent theory of the control of human fetal hemoglobin synthesis, based on studies in cultured adult marrow, proposes that the phenotypic expression of fetal hemoglobin is largely dependent on the level of differentiation of the parental stem cells; that is, the earlier the progenitor, the greater the ability of its progeny to express fetal hemoglobin [Papayannopoulou, Th., Brice, M. & Stamatoyannopoulos, G. (1977) Proc. Natl. Acad. Sci. USA 74, 2923-2927]. To test this relationship with fetal tissue, we have studied hemoglobin synthesis in cultured human fetal liver, comparing gamma chain synthesis in the descendants of the early progenitors ("bursts") with that in the descendants of the later progenitors ("colonies"). Cells from the livers of midtrimester fetuses were cultured in methylcellulose with erythropoietin. The beta/(beta + gamma) globin synthetic ratio on days 5 to 7, when colonies predominated, was 0.09-0.11, a value characteristic of fetal reticulocytes, and on days 11 and 12, when bursts predominated, was 0.15-0.17. Thus, in fetal liver, the descendants of the earlier progenitor, the burst-forming unit, may be making more beta chains rather than more gamma chains, compared to descendants of the later progenitor, the colonyforming unit. Our data on fetal liver, taken together with the data on adult marrow by others, suggest that the erythroid colonies express the gene characteristic of the age of the organism to a greater degree than bursts, which express beta and gamma genes less specifically. Thus, the capacity for highly selective gene expression characteristic of differentiated cells appears to be less well developed in the burst-forming unit than in the colony-forming unit.

Cells, Cultured