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A Carpousis

Publications and source records attributed to A Carpousis.

4 recordsLinked to original sources

Preferential usage of tRNA isoaccepting species in collagen synthesis.

A new double label technique is described for determining the usage of individual isoaccepting tRNA species by in vitro protein-synthesizing systems. Employing this method we show that of four major species of glycyl-tRNA one which is cognate to GGU and GGC is used predominantly in collagen synthesis by polysomes isolated from embryonic chick calvaria. A similar preferential usage was found for one of two alanyl-tRNA species. No preference for any particular isoaccepting tRNA species was observed in the synthesis of noncollagenous proteins by either calvaria or liver polysomes except for the disproportionate usage of one lysyl-tRNA species. Whether such preferential usage permits translational control of collagen synthesis in vivo remains to be determined.

Alanine

Preferential usage of glycyl-tRNA isoaccepting species in collagen synthesis.

Chick embryo tRNA charged with [3H]glycine was incubated in an in vitro protein-synthesizing system using polysomes isolated from either chick embryo liver or calvaria. Using collagenase digestion to measure the fraction of protein synthesized which was collagenous, the results indicate that in the calvaria system approximately 65% of the incorporated [3H]glycine was in collagen. The incorporation of [3H]glycine into protein from individual isoaccepting species was determined by chromatography on a reversed phase system of the charged tRNA before and after incubation in the polysome systems. In the calvaria system, a single tRNAGly species cognate to GGU and GGC and which is found in unusually large amounts in collagen-synthesizing tissues was used preferentially in collagen-synthesizing tissues was used preferentially in collagen synthesis. In the liver system, the rate of incorporation was similar to the calvaria, but no collagen synthesis was detected and only a relatively small preferential usage of any of the four major isoaccepting species was observed. These results support the notion that the complement of tRNA found in a cell may be adapted to the synthesis of a particular protein. It is also possible that under certain circumstances, collagen synthesis may be controlled in vivo at the translational level by the concentration of particular tRNA species.

Animals

Inhibition of the assembly and secretion of procollagen by incorporation of a threonine analogue, hydroxynorvaline.

Hydroxynorvaline (DL-alpha-amino-beta-hydroxyvaleric acid) was shown to competitively inhibit the activation of threonine and valine when tested with tRNA and synthetases prepared from whole chick embryos. However, the hydroxynorvaline was transferred only to threonyl-tRNA and not valyl-tRNA. The hydroxynorvaline had no effect when tested with other amino acids. The Km for threonine was 25 muM and the Ki for hydroxynorvaline was 181 muM. When fibroblasts from embryonic chick tendons were incubated with [3H]threonine and increasing concentrations of hydroxynorvaline, there was a progressive decrease in the incorporation of [3H]threonine so that 1 mM hydroxynorvaline the incorporation into nondialyzable protein was 26% of the control value. A much smaller decrease in the incorporation of other radioactive amino acids was observed. When the cells were incubated hith [14C]proline and 1 mM hydroxynorvaline, the labeled procollagen containing hydroxynorvaline accumulated intracellularly and very little was secreted. Control experiments demonstrated that free hydroxynorvaline did not inhibit the secretion of unsubstituted procollagen. Although the individual pro alpha chains containing hydroxynorvaline were of normal molecular weight (125,000) and hydroxyproline content, only about 50% of this intracellularly retained procollagen was triple helical within the cell as 37 degrees as measured by sensitivity to pepsin digestion. Also only approximately 50% of the pro alpha chains were disulfide-linked to form triple stranded molecules as compared to greater than 85% linkage in unsubstituted procollagen. We postulate that incorporation of hydroxynorvaline alters the conformation of the propeptide extension sufficiently so that: (a) normal assembly of disulfide-linked, triple helical molecules is reduced and (b) assembled triple helical molecules are not properly recognized by the secretory mechanism.

Amino Acyl-tRNA Synthetases