共查询到20条相似文献,搜索用时 15 毫秒
1.
2.
3.
Crystallization of yeast phenylalanine transfer ribonucleic acid 总被引:2,自引:0,他引:2
F Cramer F von der Haar K C Holmes W Saenger E Schlimme G E Schulz 《Journal of molecular biology》1970,51(3):523-530
4.
M Litt 《Biochemistry》1971,10(12):2223-2227
5.
6.
7.
B J Ortwerth 《Biochemistry》1971,10(23):4190-4197
8.
H J Schoemaker G P Budzik R Giegé P R Schimmel 《The Journal of biological chemistry》1975,250(12):4440-4444
Yeast tRNA-Phe has been cross-linked photochemically to three aminoacyl-tRNA synthetases, yeast phenylalanyl-tRNA synthetase, Escherichia coli isoleucyl-tRNA synthetase, and E. coli valyl-tRNA synthetase. The two non-cognate enzymes are known to interact with tRNA-Phe. In each complex, three regions on the tRNA are found to cross-link. Two of these are common to all of the complexes, while the third is unique to each. Thus, the cognate and non-cognate complexes bear considerable similarity to each other in the way in which the respective enzyme orients on tRNA-Phe, a result which was also established for the complexes of E. coli tRNA-Ile (BUDZIK, G.P., LAM, S.M., SCHOEMAKER, H.J.P., and SCHIMMEL, P.R. (1975) J. Biol. Chem. 250, 4433-4439). The common regions include a piece extending from the 5'-side of the acceptor stem to the beginning of the dihydrouridine helix, and a segment running from the 3' side of the extra loop into the TpsiC helix. These two regions overlap with and include some of the homologous bases found in eight tRNAs aminoacylated by yeast phenylalanyl-tRNA synthetase (ROE, B., SIROVER, M., and DUDOCK, B. (1973) Biochemistry 12, 4146-4153). Although well separated in the primary and secondary structure, these two segments are in close proximity in the crystallographic tertiary structure. In two of the complexes, the third cross-linked fragment is near to the two common ones. The picture which emerges is that the enzymes all interact with the general area in which the two helical branches of the L-shaped tertiary structure fuse together, with additional interactions on other parts of the tRNAas well. 相似文献
9.
Yeast tRNAPhe has been studied by using proton NMR and nuclear Overhauser effect (NOE) with deuterium substitution. Direct NOE evidence is presented for assignment of imino resonances of 23 of 27 base pairs in this tRNA. Other indirect evidence is presented for tentative assignment of four other base pairs. Almost total assignment also has been made of the important noninternally bonded imino protons and tertiary interactions (however, G18-psi 55 remains unassigned). The most surprising result has been identification of GC11 at -13.68 ppm; this is the first time a GC base pair has been identified so far downfield. This peak (GC11) is also identified as the resonance of the unique imino proton that exchanges in a time of more than 1 day, as previously described. These identifications of imino proton resonances made it possible to reinterpret the proton solvent exchange rate data previously published on this tRNA and understand them better. The assignments of resonances should pave the way for more detailed solution study of this tRNA and its interaction with biologically relevant molecules. 相似文献
10.
Steven H. Blobstein Ronald Gebert Dezider Grunberger Koji Nakanishi I.Bernard Weinstein 《Archives of biochemistry and biophysics》1975,167(2):668-673
The structure of enzymatically isolated Y nucleoside of yeast phenylalanine tRNA was established by comparing its absorption, fluorescence, and mass spectra to that of the free base. The site of ribosylation was tentatively deduced by comparing the behavior under acid conditions of the natural nucleoside to that of synthetic Y nucleoside analogs. Our results indicate that the aglycone of the enzymatically isolated nucleoside has the same structure as the free base excised by acid treatment of phenylalanine tRNA, and that the ribose is probably attached to the N-3 position of the tricyclic nucleus. 相似文献
11.
12.
13.
14.
15.
The preparation and analysis of half molecules from tRNASer are described. Two pG-halves were isolated which differed only in the presence or absence of an acetyl group on the cytidylic acid residue at position 12. The CCA-half derived from tRNA1Ser was isolated pure, while the CCA-half derived from tRNA2Ser was isolated as a mixture with the CCA-half from tRNA1Ser from which the terminal CpCpA had been cleaved off.The acceptor activity of the combined complementary half molecules was 90% of the one of intact tRNASer. The Michaelis constant and maximal velocity of amino-acylation were found to be identical for tRNASer and the combined fragments.When half molecules were present at different ratios in aminoacylation studies it was found that one pG-half molecule can mediate the charging of several CCA-half molecules. There are indications that the CCA-half molecule alone can accept some serine. The CCA-half molecule alone can be aminoacylated to a rather high degree in the presence of an excess of tRNAoxSer or tRNASer-a and to a small degree in the presence of tRNAoxAla (yeast) but not at all in the presence of tRNAoxPhe or tRNAoxVal (E. coli).Combinations of half molecules from tRNASer with the opposite half molecules from tRNAPhe could not be aminoacylated with Ser or Phe or 15 other amino acids although one of the combinations was well associated according to gel electrophoresis and differential melting curves. 相似文献
16.
17.
18.
19.