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Biomedical subjects

K Muto

Publications and source records attributed to K Muto.

At least 73 records · Page 4Linked to original sources

In vivo degradation of rat globin messenger RNA during maturation of reticulocytes.

The degradation of globin mRNA in rat reticulocytes maturing in the peripheral blood was investigated. Poly(A) and non poly(A) portions of mRNA molecules were determined quantitatively by hybridization with radioactive poly(U) and complementary DNA, respectively. During the degradation of mRNA in vivo, it was shown that (1) globin mRNA and the bulk of RNA decrease in parallel, (2) the average chain length of poly(A) segments in the mRNA does not change, (3) the percentage of poly(A) (-) globin mRNA in total globin mRNA does not change, and (4) fragments of large molecular weight do not accumulate. Possible mechanisms of degradation of globin mRNA in the reticulocytes are discussed on the basis of these observations.

Animals↗

Changes in fat content and some characteristics of lipolytic activity during pregnancy and lactation in mouse mammary gland.

The amount of free fatty acid in the mouse mammary gland continuously increased throughout pregnancy and lactation, while the amount of triglyceride which had been stored in the gland rapidly decreased after parturition. Higher lipolytic activity in the gland was observed in pregnancy than in nonpregnant and lactating animals. The optimum pH of the activities before and after parturition were about 6 and 7, respectively, and the activities did not decrease at high ionic strength in contrast to the ion dependent inactivation described in lipoprotein lipase. Incubation of the enzyme extract of the lactating mouse mammary gland at 50 degrees C for 10 min led to a remarkable increase in the lipolytic activity measured at pH 6.0, suggesting the existence of either an inactive form of the lipase whose optimum pH is 6.0 or some heat sensitive inhibitor(s) or inactivator(s) of the enzyme in the lactating mammary gland. The triglyceride stored in the gland in pregnancy will be consumed within the first 3rd days after parturition, and the lipases play an important role in the decomposition of the triglyceride.

Animals↗

Mechanism of adriamycin resistance in a subline of mouse lymphoblastoma L5178Y cells.

The biochemical mechanism of anthracycline resistance was studied with an adriamycin-resistant subline of mouse lymphoblastoma L5178Y cells. Both uridine and thymidine uptakes in the resistant cells were observed more resistant to adriamycin and daunorubicin than those in the parental cells. Aclacinomycin A exhibited the same degree of inhibition of nucleic acid syntheses in the sensitive cells and in the resistant cells. The resistance pattern observed by the inhibition of RNA and DNA syntheses seemed to parallel that by growth inhibition. No significant difference was demonstrated between the parental and resistant cells in the inhibition of RNA and DNA polymerase reactions with isolated nuclei. The uptake and retention of [3H]adriamycin was observed significantly less in the resistant cells than in the sensitive cells. The results suggested that the adriamycin resistance may be due to alteration of the cytoplasmic membrane and/or cytoplasm, resulting in decreased uptake and retention of the antibiotic in the resistant cells.

Animals↗

Mechanism of action of macromomycin: DNA strand scission, inhibition of DNA synthesis and mitosis.

The effects of macromomycin (MCR), a high molecular weight peptide antibiotic, on cell division, DNA synthesis and DNA fragmentation were examined in cultured mammalian tumor cells. When MCR was added to HeLa cell culture simultaneously with [3H]thymidine, inhibition of DNA synthesis was observed depending on the amount of the drug present, although the inhibition was partial even at a high concentration of the drug. Preincubation of cells with MCR for 2 hours before assay was required for the complete inhibition of DNA synthesis. Cell division of synchronized L5178Y cells, arrested at metaphase, was strongly inhibited by MCR, indicating that the inhibition of cell mitosis by the drug was not dependent on the inhibition of DNA synthesis. Strand scission of DNA in MCR-treated cells was observed by alkaline sucrose gradient centrifugation. The fragmentation of cellular DNA occurred at low concentration of the drug and within a very short incubation time (37 degrees C, 5 minutes). At high concentrations of the drug, however, the size of the fragmented DNA remained constant. DNA polymerase activity in isolated nuclei from HeLa and L5178Y cells was stimulated by MCR. These data suggest that MCR works directly on cell nuclei and strand scission of DNA is one of the more important actions of the drug.

Antibiotics, Antineoplastic↗