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F Varricchio

Publications and source records attributed to F Varricchio.

At least 37 records · Page 2Linked to original sources

Hamster mitochondrial transfer RNA lacks T and the universal GUUCG sequence.

Earlier inferences (based on incorporation of radio-activity from methyl-labeled methionine) that mammalian mitochondrial tRNA lacks ribothymidine ('T') have been confirmed using [14C]uridine as precursor. Moreover, oligonucleotide fingerprint analysis of 32P-labeled samples have shown that hamster mitochondrial tRNA lacks the 'universal' pentanucleotide of conventional tRNA in which T normally occurs, CTpsiCG, in modified or unmodified form.

Animals↗

Synthesis of transfer ribonucleic acid in KB cells infected with adenovirus type 2.

The synthesis of low mol. wt. RNA has been studied in KB cells infected with adenovirus type 2 after labelling with 3H-uridine or 32P. An increasing amount of virus-coded VA RNA is detected from 8 h after infection onward. The rate of synthesis of tRNA is unchanged up to 16 h after infection and thereafter decreases; from 24 to 48 h after infection, the specific activity of tRNA is about 60% of the control value. The specific activity of cellular 5S RNA increases from 12 h after infection. When the tRNA is analysed by a two-dimensional gel electrophoresis system resolving the tRNA into 42 to 47 spots, changes in synthesis of tRNA in individual spots are seen. From 8 to 12 h after infection, an increase in the relative rate of incorporation into RNA is observed in 7 spots, while a significant decrease is detected in 8 spots. From 12 to 16 h after infection, incorporation into RNA is increased in 6 spots, but is most marked (sevenfold) in 1 spot. A decrease of incorporation into RNA in 6 spots is observed at the same time. From 24 to 34 h after infection, an increase in synthesis of RNA in 8 spots is observed and a decrease also in 8 spots. Incorporation into RNA in 2 spots is virtually shut off.

Adenoviruses, Human↗

The primary structure of Bacillus subtilis and Bacillus stearothermophilus 5 S ribonucleic acids.

The nucleotide of Bacillus stearothermophilus 5 S RNA is pC-C-U-A-G-U-G-A-C-A-A-U-A-G-C-G-(G-A-G-A-G-G-)-A-A-A-C-A-C-C-C-G-U-U-C-C-C-A-U-C-C-C-G-A-A-C-A-C-G-G-A-A-G-U-U-A-A-G-C-U-C-U-C-C-A-G-C-G-C-C-G-A-U-G-G-U-A-G-U-U-G-G-G-G-C-C-A-G-C-G-C-C-C-C-U-G-C-A-A-G-A-G-U-A-G-G-U-C-G-U-U-G-C-U-A-G-G-COH; the nucelotide sequence of Bacillus subtilis 5 S RNA is pU-U-U-G-G-U-G-G-C-G-A-U-A-G-C-G-A-A-G-A-G-G-U-C-A-C-A-C-C-C-G-U-U-C-C-C-A-U-A-C-C-G-A-A-C-A-C-G-G-A-A-G-U-U-A-A-G-C-U-C-U-U-C-A-G-C-G-C-C-G-A-U-G-G-U-A-G-U-C-G-G-G-G-G-U-U-U-C-C-C-C-C-U-G-U-G-A-G-A-G-U-A-G-G-A-C-G-C-C-G-C-C-A-A-G-COH. Comparison of the sequence of B. stearothermophilus 5 S RNA to the sequence of B. subtilis 5 S RNA and to that of Bacillus megaterium 5 S RNA (Pribula, C. D., Fox, G. E., Woese, C. R., Sogin, M., and Pace, N. (1974) FEBS Lett. 44, 322-323) indicates that the 5 S RNA isolated from the thermophile contains unique nucleotide sequences not found in 5 S RNAs isolated from the two mesophilic species of genus Bacillus.

Bacillus subtilis↗

Transfer RNA of a collagen producing tissue, chick-embryo calvaria.

Transfer RNA was isolated from calvaria prepared from chick embryos incubated for 15-17 days. The chargeability of the unfractionated tRNA with ten amino acids tested was very similar to that of unfractionated tRNA from adult chicken liver when data were expressed on the basis of pmoles of amino acceptance per A260 unit of tRNA. However, the relative amount of tRNA in calvaria is only about one-fourth the amount in liver. Analysis of individual species of tRNA by two-dimensional electrophoresis on polyacrylamide gels shows that there are fewer isoaccepting species of tRNA in calvaria than in liver.

Amino Acids↗

Thermal denaturation of mesophilic and thermophilic 5S ribonucleic acids.

The Tm of Bacillus stearothermophilus 5S ribonucleic acid (RNA) is 1.5 +/- 0.5 C higher than that of 5S RNAs from B. subtilis and Escherichia coli. Melting in 50% methanol and in formaldehyde indicate that both base stacking and helical regions are involved in the slightly increased thermal stability of B. stearothermophilus 5S RNA. It is probable that the 5S RNA makes only a minor contribution to the thermostability of B. stearothermophilus 50S ribosomal subunits.

Bacillus subtilis↗