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At least 19 recordsLinked to original sources

Separation of formyl-methionyl transfer RNA, methionyl transfer RNA, and transfer RNAfmet using mixed-mode high-performance liquid chromatography on C6-modified aminopropylsilyl-hypersil.

Preparative amounts of formyl-methionyl-tRNAfmet, methionyl-tRNAfmet, and tRNAfmet were separated from each other with baseline resolution in 30 min using mixed-mode HPLC on hexanoic anhydride-modified aminopropylsilyl-Hypersil 2. Pure tRNAfmet was aminoacylated with [35S]methionine in the presence or absence of a formyl donor and was immediately fractionated on the column. Two isoacceptors, tRNA1fmet and tRNA2fmet, as well as aminoacyl-tRNA synthetases were clearly separated from each other. The purified f[35S]-methionyl-tRNA was biologically active in that as much as 98% could be bound to ribosomes in response to AUGUAA in vitro. Formyl-methionine was released from this complex by the action of termination factor and greater than 92% of bound formyl-methionine was released by puromycin.

Caproates↗

Base composition differences between avian myeloblastosis virus transfer RNA and transfer RNA isolated from host cells.

Using a novel chemical tritium derivative method, we have determined the base composition of 4S RNA isolated from an RNA tumor virus, the avian myeloblastosis virus, and from normal and neoplastic host cells. Extensive differences were detected, particularly with respect to the amount of methylated bases in the viral RNA. The viral 4S RNA, which fulfills the criteria for designation as transfer RNA, appears to be derived from a precursor pool that is different from the precursor population of host-cell 4S RNA. These results are discussed in regard to the possible relationship between transfer RNA of avian mycoblastosis virus and cellular transfer RNA.

Animals↗

Transfer RNA and transfer RNA methylase activity in spleens of patients with Hodgkin's disease and histiocytic lymphoma.

tRNA levels, base composition, and tRNA methylase activities of normal and tumor tissue from the spleens of 24 patients (18 with Hodgkin's disease and 6 with histiocytic lymphoma) were studied. There were no significant differences in major base composition of normal and tumor tissue. Methylated guanosine was increased in tumor tissue of some patients, and tRNA methylase activities were increased in extracts from the tumors.

Hodgkin Disease↗

Simultaneous binding of two proteins to opposite sides of a single transfer RNA.

Transfer RNA (tRNA) is a small nucleic acid (typically 76 nucleotides) that forms binary complexes with proteins, such as aminoacyl tRNA synthetases (RS) and Trbp111. The latter is a widely distributed structure-specific tRNA-binding protein that is incorporated into cell signaling molecules. The structure of Trbp111 was modeled onto to the outer, convex side of the L-shaped tRNA. Here we present RNA footprints that are consistent with this model. This binding mode is in contrast to that of tRNA synthetases, which bind to the inside, or concave side, of tRNA. These opposite locations of binding for these two proteins suggest the possibility of a ternary complex. The formation of a tRNA synthetase--tRNA--Trbp111 ternary complex was detected by two independent methods. The results indicate that the tRNA is sandwiched between the two protein molecules. A thermodynamic and functional analysis is consistent with the tRNA retaining its native structure in the ternary complex. These results may have implications for how the translation apparatus is linked to other cellular machinery.

Acylation↗