首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 62 毫秒
1.
2.
The conserved U54 in tRNA is often modified to 5-methyluridine (m5U) and forms a reverse Hoogsteen base pair with A58 that stabilizes the L-shaped tRNA structure. In Gram-positive and some Gram-negative eubacteria, m5U54 is produced by folate/FAD-dependent tRNA (m5U54) methyltransferase (TrmFO). TrmFO utilizes N5,N10-methylenetetrahydrofolate (CH2THF) as a methyl donor. We previously reported an in vitro TrmFO assay system, in which unstable [14C]CH2THF was supplied from [14C]serine and tetrahydrofolate by serine hydroxymethyltransferase. In the current study, we have improved the TrmFO assay system by optimization of enzyme and substrate concentrations and introduction of a filter assay system. Using this assay, we have focused on the tRNA recognition mechanism of TrmFO. 42 tRNA mutant variants were prepared, and experiments with truncated tRNA and microhelix RNAs revealed that the minimum requirement of TrmFO exists in the T-arm structure. The positive determinants for TrmFO were found to be the U54U55C56 sequence and G53-C61 base pair. The gel mobility shift assay and fluorescence quenching showed that the affinity of TrmFO for tRNA in the initial binding process is weak. The inhibition experiments showed that the methylated tRNA is released before the structural change process. Furthermore, we found that A38 prevents incorrect methylation of U32 in the anticodon loop. Moreover, the m1A58 modification clearly accelerates the TrmFO reaction, suggesting a synergistic effect of the m5U54, m1A58, and s2U54 modifications on m5s2U54 formation in Thermus thermophilus cells. The docking model of TrmFO and the T-arm showed that the G53-C61 base pair is not able to directly contact the enzyme.  相似文献   

3.
Polyacrylamide and porous-glass supports containing the dihydroxyborylphenyl group can be prepared by a method similar to that used in the synthesis of N-[N′-(m-dihydroxyborylphenyl)succinamyl]aminoethylcellulose. The reaction of aminoethylpolyacrylamide or amino-substituted glass with N-(m-dihydroxyborylphenyl)succinamic acid in the presence of N-cyclohexyl-N′-β-(4-methyl-morpholinium) ethylcarbodiimide yields products which, together with the cellulose derivative, are all capable of binding tRNA dissolved in buffers at pH 8.7. The demonstration that bound tRNA can be released with sorbitol solutions or with low pH buffers, together with studies on the binding of tRNA species that contain chemically modified 3′-terminals, indicate that the predominant binding mechanism consists of cyclic complex formation between the immobilized dihydroxyboryl groups and the 3′-terminal cis-diol groups of the tRNA molecules. Aminoacylated tRNA does not bind under the conditions necessary to bind tRNA and this permits the isolation of specific tRNA isoacceptors. The purification of tRNAPhe and the partial purification of tRNAGlu and tRNATrp are described.  相似文献   

4.
By culturing Saccharomyces cerevisiae in growth medium containing Mg35SO4, we have determined the extent and variation of tRNA thiolation in this yeast. We find that 5-methoxycarbonylmethyl-2-thiouridine (mcm5s2U)1 is the major, if not only, thiolated derivative in S. cerevisiae tRNA. In addition, a comparison of the chromatographic mobility of mcm5s2Up on cellulose thin layers with those reported for unknown uridine derivatives found in purified yeast tRNA digests, leads to the conclusion that at least two of these tRNAs contain this modification.  相似文献   

5.
The specificity of methoxyamine for the cytidine residues in an Escherichia coli leuoine transfer RNA (tRNA1leu is described in detail. Of the six non-hydrogen-bonded cytidine residues in the clover-leaf model of this tRNA, four are very reactive (C-35, 53, 85 and 86) and two are unreactive (C-67 and 79).The specificity of l-cyclohexyl-3-[2-morpholino-(4)-ethyl]carbodiimide methotosylate for the uridine, guanosine and pseudouridine residues in the leucine tRNA was also investigated. The carbodiimide completely modified four uridine residues (U-33, 34, 50 and 51) and partially modified G-37 and Ψ-39. For technical reasons, the sites of partial modification in loop I of the tRNA were difficult to establish. There was no modification of base residues in loop IV nor of U-59 at the base of stem e of the tRNA.The modification patterns described for the leucine tRNA are compared with those observed for the E. coli initiator tRNA1met and su+III tyrosine tRNA. Several general conclusions regarding tRNA conformation are made. In particular, the evidence supporting a diversity of anticodon loop structures amongst tRNAs is discussed.  相似文献   

6.
The accuracy of protein biosynthesis rests on the high fidelity with which aminoacyl-tRNA synthetases discriminate between tRNAs. Correct aminoacylation depends not only on identity elements (nucleotides in certain positions) in tRNA (1), but also on competition between different synthetases for a given tRNA (2). Here we describe in vivo and in vitro experiments which demonstrate how variations in the levels of synthetases and tRNA affect the accuracy of aminoacylation. We show in vivo that concurrent overexpression of Escherichia coli tyrosyl-tRNA synthetase abolishes misacylation of supF tRNATyr with glutamine in vivo by overproduced glutaminyl-tRNA synthetase. In an in vitro competition assay, we have confirmed that the overproduction mischarging phenomenon observed in vivo is due to competition between the synthetases at the level of aminoacylation. Likewise, we have been able to examine the role competition plays in the identity of a non-suppressor tRNA of ambiguous identity, tRNAGlu. Finally, with this assay, we show that the identity of a tRNA and the accuracy with which it is recognized depend on the relative affinities of the synthetases for the tRNA. The in vitro competition assay represents a general method of obtaining qualitative information on tRNA identity in a competitive environment (usually only found in vivo) during a defined step in protein biosynthesis, aminoacylation. In addition, we show that the discriminator base (position 73) and the first base of the anticodon are important for recognition by E. coli tyrosyl-tRNA synthetase.  相似文献   

7.
A deae-cellulose filter disk assay for aminoacyl-tRNA   总被引:1,自引:0,他引:1  
A filtration assay is described for quantitation of aminoacylated tRNA. [3H]Aminoacyl-tRNA is adsorbed on DEAE-cellulose filter disks under conditions in which unreacted amino acid is removed by a 100-mm glycine-HCl (pH 2.3) wash. The assay is rapid, simple to perform, and linear over the range of 0.005–20 A260 units/50-μl filtered aliquot. The assay is nondestructive to aa-tRNA, does not use strongly acidic solutions for removal of amino acid, and does not require carrier nucleic acid for accurate measurement of low aa-tRNA concentrations. It is a useful alternative to methods involving acid precipitation and ideally suited for measurement of low levels of highly purified aa-tRNA.  相似文献   

8.
Bacteriophage T4 tRNA<Superscript>Leu</Superscript>   总被引:3,自引:0,他引:3  
WHEN T4 bacteriophage infects Escherichia coli, the host tRNA complement is altered in two ways: (1) a tRNALeu is inactivated by endonucleolytic cleavage1–3 and sequencing has shown that this tRNA recognizes the codon CUG4,5; (2) seven or eight new tRNA species are introduced by the T4 genome6–8. One of these, a leucine tRNA, differs from all the host species of tRNALeu, having different chromatographic properties9,10, being labelled preferentially with radioactive 35SO4 following phage infection6,11 and specifically hybridizing to T4 DNA7,8,11,12.  相似文献   

9.
N7-methylguanine at position 46 (m7G46) in tRNA is produced by tRNA (m7G46) methyltransferase (TrmB). To clarify the role of this modification, we made a trmB gene disruptant (ΔtrmB) of Thermus thermophilus, an extreme thermophilic eubacterium. The absence of TrmB activity in cell extract from the ΔtrmB strain and the lack of the m7G46 modification in tRNAPhe were confirmed by enzyme assay, nucleoside analysis and RNA sequencing. When the ΔtrmB strain was cultured at high temperatures, several modified nucleotides in tRNA were hypo-modified in addition to the lack of the m7G46 modification. Assays with tRNA modification enzymes revealed hypo-modifications of Gm18 and m1G37, suggesting that the m7G46 positively affects their formations. Although the lack of the m7G46 modification and the hypo-modifications do not affect the Phe charging activity of tRNAPhe, they cause a decrease in melting temperature of class I tRNA and degradation of tRNAPhe and tRNAIle. 35S-Met incorporation into proteins revealed that protein synthesis in ΔtrmB cells is depressed above 70°C. At 80°C, the ΔtrmB strain exhibits a severe growth defect. Thus, the m7G46 modification is required for cell viability at high temperatures via a tRNA modification network, in which the m7G46 modification supports introduction of other modifications.  相似文献   

10.
A simple quantitative assay that is about 95% specific for uracil tRNA methylases of E. coli and A. aerogenes has been developed. tRNA was isolated from a strain of E. coli carrying the trm? mutation. These organisms have a low level of uracil methylase and consequently produce tRNA with a selective deficiency of ribothymidine. This RNA acted as a specific substrate for uracil tRNA methylases, when exposed to cell extracts from E. coli or A. aerogenes containing tRNA-methylating enzymes of multiple specificities. This assay can be used to screen organisms for trm? mutations and for studies with inhibitors.  相似文献   

11.
An assay has been developed for quantitation of the modified nucleoside, t6A, in tRNA at the pmole level. For tRNA from a variety of species, the content of t6A was found to be 0.18–0.25 mole %. These values lend support to the suggestion that t6A is located at the 3′-end of the anticodon in tRNA's whose codons begin with adenosine. Essentially no t6A was found in Mycoplasma sp. (Kid) tRNA which is deficient in many modified nucleosides. In the rat, no organ specific differences were found. The amount of t6A in Novikoff hepatoma tRNA was essentially the same as in tRNA from normal rat liver.  相似文献   

12.
A method is described for the assay of [35S]sulfate reduction in which filter paper wicks are used to trap [35S]sulfide. The simplicity of the technique enables large numbers of samples to be conveniently processed. Enhanced sensitivity is achieved since all acid-volatile [35S]sulfides produced during the incubation period are counted. Recovery of radioactivity from added Na235S is excellent (mean, 100.1%; standard deviation, 1.81; n = 9) and is unaffected by sulfide concentrations of up to 400 μg per sample. Field trial results with anoxic sediment samples are presented.  相似文献   

13.
The active site of a protein folding reaction is in domain V of the 23S rRNA in the bacterial ribosome and its homologs in other organisms. This domain has long been known as the peptidyl transferase center. Domain V of Bacillus subtilis is split into two segments, the more conserved large peptidyl transferase loop (RNA1) and the rest (RNA2). These two segments together act as a protein folding modulator as well as the complete domain V RNA. A number of site-directed mutations were introduced in RNA1 and RNA2 of B.subtilis, taking clues from reports of these sites being involved in various steps of protein synthesis. For example, sites like G2505, U2506, U2584 and U2585 in Escherichia coli RNA1 region are protected by deacylated tRNA at high Mg2+ concentration and A2602 is protected by amino acyl tRNA when the P site remains occupied already. Mutations A2058G and A2059G in the RNA1 region render the ribosome Eryr in E.coli and Lncr in tobacco chloroplast. Sites in P loop G2252 and G2253 in E.coli are protected against modification by the CCA end of the P site bound tRNA. Mutations were introduced in corresponding nucleotides in B.subtilis RNA1 and RNA2 of domain V. The mutants were tested for refolding using unfolded protein binding assays with unfolded carbonic anhydrase. In the protein folding assay, the mutants showed partial to complete loss of this activity. In the filter binding assay for the RNA–refolding protein complex, the mutants showed an extent of protein binding that agreed well with their protein folding activity.  相似文献   

14.
Small-angle neutron scattering studies of Escherichia coli tyrosyl-tRNA synthetase indicate that in solution this enzyme is a dimer of Mr, 91 (±6) × 103 with a radius of gyration RG of 37.8 ± 1.1 Å.The increase in the scattering mass of the enzyme upon binding tRNATyr has been followed in 20 mm-imidazole · HCl (pH 7.6), 10 mm-MgCl2, 0.1 mm-EDTA, 10 mm-2-mercaptoethanol, 150 mm-KCl. A stoichiometry of one bound tRNA per dimeric enzyme molecule was found. The RG of the complex is equal to 41 ± 1 Å. Titration experiments in 74% 2H2O, close to the matching point of tRNA, show an RG of 38.5 ± 1 Å for the enzyme moiety in the complex. From these values, a minimum distance of 49 Å between the centre of mass of the bound tRNA and that of the enzyme was calculated.In low ionic strength conditions (20 mm-imidazole-HCl (pH 7.6), 10 mm-MgCl2, 0.1 mm-EDTA, 10 mm-2-mercaptoethanol) and at limiting tRNA concentrations with respect to the enzyme, titrations of the enzyme by tRNATyr are characterized by the appearance of aggregates, with a maximum scattered intensity at a stoichiometry of one tRNA per two enzyme molecules. At this point, the measured Mr and RG values are compatible with a compact 1:2, tRNA: enzyme complex. This complex forms with a remarkably high stability constant: (enzyme:tRNA:enzyme)/(enzyme:tRNA)(enzyme) of 0.1 to 0.3(× 106) m?1 (at 20 °C). Upon addition of more tRNA, the complex dissociates in favour of the 1:1, enzyme:tRNA complex, which has a higher stability constant (1 to 3 (× 106) m?1).  相似文献   

15.
16.
In extremely thermophilic tRNA, ribosylthymine is replaced by 2-thioribosylthymine at the key site in tRNA. By means of the ab initio molecular orbital (MO) calculation using the 4–31G basis set, we evaluate how this replacement brings about an increment of stacking energy, and how this increment in stacking energy is responsible for the stability of the thermophile tRNA. Calculated stacking energy for G : s2T : Ψ is larger by 4·85 kJ/mol (1·16 kcal/mol) than that for G : T : Ψ. Taking account of the thermodynamical data of yeast tRNAs by Privalov & Filimonov (1978), such an increment in stacking energy seems to considerably contribute to the increase of the midpoint melting temperature (Tm) in the thermophile tRNA, although other factors such as hydrogen bonding, ribose puckering and magnesium ions can not be excluded. It is found that the dispersion force mainly contributes to the stacking energies for G : T : Ψ and G : s2T : Ψ, especially for the latter. From the decomposition of the SCF energy, electrostatic and charge transfer energies are found to contribute to the stabilization of the thermophile tRNA, though the contribution of the former is larger than the latter.  相似文献   

17.
18.
Readthrough in vitro of the Qβ coat protein terminator codon UGA has been used as an assay for suppression by UGA-suppressor tRNATrp. When the tRNA is covalently crosslinked between 4-thiouracil(8) and cytosine(13) by irradiation at 334 nm, it is found that UGA suppression by this assay is reduced to the low level characteristic of the wild type tRNATrp. In contrast, crosslinking has little effect on incorporation of tryptophan in response to UGG codons. Thus, incorporation of tryptophan during translation of R17 messenger RNA is unaffected by photochemical crosslinking. Furthermore, dilution experiments using R17 mRNA in which tryptophan incorporation is dependent on precharged suppressor Trp-tRNA show that the crosslinked species competes well with non-irradiated tRNA. These results further emphasize the influence on tRNA-ribosome interactions of the region in tRNA around the dihydrouridine arm, where the mutation, in the suppressor is found and the photochemical crosslink is introduced.  相似文献   

19.
It has been previously shown that Clostridium sticklandii specifically synthesized three readily separable 75Se-labeled tRNAs, designated seleno-tRNAs I, II and III, and the partially purified seleno-tRNA II cochromatographed with l-prolyl-tRNA on DEAE-Sephadex A-50 (Chen, C.S. and Stadtman, T.C. (1980) Proc. Natl. Acad. Sci. U.S.A. 77, 1403–1407). In the present study a highly purified 75Se-labeled tRNA I was obtained by chromatography on benzoylated DEAE-cellulose, DEAE-Sephadex A-50 and Sepharose 4B. The 75Se-labeled tRNA I cochromatographed with an l-valine-accepting species on DEAE-Sephadex A-50 and Sepharose 4B. Addition of a 285-fold molar excess of unlabeled l-valine to the l-valine acceptor activity assay mixture markedly decreased the amount of l-[14C]valine bound to seleno-tRNA I.  相似文献   

20.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号