PubMed HealthSearch

Biomedical subjects

Y Kuchino

Publications and source records attributed to Y Kuchino.

14 recordsLinked to original sources

Under-modified Y base in a tRHAPhe isoacceptor observed in tumor cells.

A fluorescent wye (Ye) was isolated from tRHAPhe specific to Ehrlich ascites cells. The structure was determined to be alpha-amino-beta-hydroxy-4,9,-dihydro-4,6-dimethyl-9-oxo-1-H-imidazo(1,2-alpha)purine-7-butyric acid: namely the compound lacking methyl carboxyl and methyl groups and thus is an under-modified precursor of hydroxy-Y base present in normal liver tRNAPhe.

Animals

Nucleotide sequence of starfish initiator tRNA.

The nucleotide sequence of starfish ovary initiator tRNA was determined to be pA-G-C-A-G-A-G-U-m1G-m2G-C-G-C-A-G-U-G-G-A-A-G-C-G-U-G-C-U-G-G-G-C-C-C-A-U-t6A-A-C-C-C-A-G-A-G-m7G-D-m5C-C-G-A-G-G-A-psi-C-G-m1A-A-A-C-C-U-C-G-C-U-C-U-G-C-U-A-C-C-AOH. The sequence was determined by a combination of the two different post-labeling techniques. Two-dimensional cellulose thin-layer chromatography was adopted for analysis of 5'-terminal nucleotides of tRNA fragments produced by formamide treatment. The nucleotide sequence of starfish initiator tRNA is very similar to that of mammalian cytoplasmic initiator tRNAs, but has seven different nucleotide residues and two modifications: residue 55 is psi instead of U, and residue 26 is unmodified G instead of m2G.

Amino Acyl-tRNA Synthetases

Isolation of hydroxy-Y base from rat liver tRNAPhe.

A Y-base derivative was isolated from rat liver tRNAPhe and its structure was assigned to be alpha-(carboxyamino)-beta-hydroxy-4,9-dihydro-4,6-dimethyl-9-oxo-1H-imidazol[1,2-a]purine-7-butyric acid dimethyl ester (hydroxy-Y), based on the results of mass spectrometry and chemical degradation. This modified base seems to be the major fluorescent component of rat liver tRNAPhe; the peroxy-Y base previously isolated from rat liver tRNAPhe and characterized by Nakanishi and his coworkers (1,2) was not present in our preparation.

Animals

Nucleotide sequence of formylmethionine tRNA from an extreme thermophile, Thermus thermophilus HB8.

The nucleotide sequence of formylmethionine tRNA from an extreme thermophile, Thermus thermophilus HB8, was determined by a combination of classical methods using unlabeled samples to determine the sequences of the oligonucleotides of RNase T1 and RNase A digests and a rapid sequencing gel technique using 5'-32P labeled samples to determine overlapping sequences. Formylmethionine tRNA from T. thermophilus is composed of two species, tRNAf1Met and tRNAf2Met. Their nucleotide sequences are almost identical, and are also almost identical with that of E. coli tRNAfMet, except for slight modifications and replacements. Both species have modifications at three points which do not exist in E. coli tRNAfMet: 2'-O-methylation at G19, N-1-methylation at A59 and 2-thiolation at T55. Moreover U51 in E. coli tRNAfMet is replaced by C51 in both species, so that a G-C pair is formed between this C51 and G65. tRNAf2Met has a reversed G-C pair at positions 52 and 64 compared with those in tRNAf1Met and E. coli tRNAfMet. Other regions are mostly the same as those in all prokaryotic initiator tRNAs so far reported. The thermostability of these thermophile initiator tRNAs is discussed in relation to their unique modifications.

Base Sequence

Tumour-specific phenylalanine tRNA contains two supernumerary methylated bases.

Every malignant tumour examined contains aberrant tRNA methyltransferases and a few tRNAs which are absent from the normal tissue of origin. To determine whether tumour-specific tRNAs have different modifications from those in normal tissue, we purified the most frequently occurring tumour-specific isoaccepting tRNA from two malignant tissues. The isoaccepting phenylalanine tRNA from Novikoff hepatoma and Ehrlich ascites cells both contain two supernumerary methylated bases. One of these l-methylguanine, is absent from the phenylalanine tRNA of normal rat, mouse, rabbit and calf liver. An increase in the levels of 5-methylcytidine and dihydrouridine was also detected.

Animals

Lysine transfer RNA2 is the major target for L-ethionine in the rat.

Ethionine, a hepatocarcinogen, ethylates macromolecules in vivo especially tRNA of rat liver. When rats were injected with L-[ethyl-3H]ethionine, the tRNA fraction of the liver was found to be labeled. One tRNA with the highest specific activity was purified and identified as lysine-tRNA2.

Animals

Deficiency of S-adenosylmethionine-homocysteine methyltransferase activity in hepatoma cells.

S-Adenosylmethionine-homocysteine methyltransferase, which catalyzes synthesis of methionine from homocysteine, with the use of S-adenosylmethionine as the methyl donor, is absent in tumor tissue such as rat ascites hepatoma and Morris hepatoma but is present in rat liver homogenate. Absence of the enzymatic activity in tumor cells is not due to the action of an inhibitor. S-Adenosylhomocysteine hydrolase, however, is present in both rat liver and hepatoma tissue.

Animals

Changes in transfer RNA's in human malignant trophoblastic cells (BeWo line).

Ten aminoacyl transfer RNA's prepared from human malignant trophoblastic cells (BeWo line) were compared with the corresponding aminoacyl transfer RNA's from normal human chorionic tissue by cochromatography on a RPC-5 column. Phenylalanyl transfer RNA (Phe-tRNA) of BeWo cells had, in addition to the single species of Phe-tRNA found in normal chorionic tissues, an early eluting component. When Phe-tRNA from the chorion was exposed to mild acid, which selectively excises the Y base, it eluted in the same position as the early eluting Phe-tRNA of BeWo cells. Therefore, the BeWo Phe-tRNA is partially undermodified. Tyrosyl transfer RNA of BeWo cells exhibited a broad-based peak which eluted later than the normal and probably consists of two or more tyrosyl transfer RNA's. Seryl transfer RNA of BeWo cells showed two peaks of acceptor activity, while seryl transfer RNA of normal chorion had a third peak that eluted at a higher salt concentration. In addition, in an early eluting methionyl and lysyl transfer RNA and in a late eluting arginyl transfer RNA from BeWo cells and normal charion, quantitative alterations were detected. The remaining four transfer RNA's, leucyl, aspartyl, valyl, and histidyl, from the two sources did not show any significant differences in elution profiles. These alterations of the chromatographic profile appeared to be due to new or altered species of transfer RNA. They were not due to differences in the aminoacyl transfer RNA synthetase. The transfer RNA methyltransferase capacity of the enzymes from BeWo cells was 2-fold higher than that of the enzymes extracted from the chorion.

Amino Acids

Distribution of the modified nucleoside Q and its derivatives in animal and plant transfer RNA's.

The modified nucleoside, 7-(4,5-cis-dihydroxy-1-cyclopenten-3-yl-aminomethyl)-7-deazaguanosine, designated as Q, and its derivative, Q*, were found in tRNA's from various organisms, including several mammalian tissues, other animals such as starfish, lingula and hagfish, and wheat germ. Q isolated from rat liver tRNA was found to be identical with E. coli Q by mass spectrometry and thin-layer chromatography. Thus the rare modified nucleoside Q originally isolated from E. coli tRNA, is widely distributed in various organisms. Analysis of the mass spectrum of Q* suggested that it has a different side chain from Q.

Animals