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 203 毫秒
1.
The specificity of methoxyamine for the cytidine residues in Escherichia coli formylmethionine tRNA is described in detail. Of the nine cytidine residues not involved in hydrogen-bonding in the clover leaf model of the tRNA, three are very reactive (C-1, 75 and 76), three less so (C-16, 17 and 35) and three unreactive (C-33, 49 and 57). Surprisingly, residue C-35 at the 3′ end of the anticodon triplet is not completely modified by methoxyamine.The specificity of 1-cyclohexyl 3-[2-morpholino (4)-ethyl] carbodiimide methotosylate for the uridine and guanosine residues of this tRNA is also described in detail. Of the twelve uridine and guanosine residues not involved in hydrogen-bonding in the secondary structure of the molecule, two are reactive (U-37 and48), one less so (U-18), one partially (U-34), and eightare unreactive (U-8 and 61; G-9, 15, 19, 20, 27 and 46). No guanosine residues in the tRNA are modified by the carbodiimide. The ribosylthymine and pseudouridine residues in loop IV are also unreactive. The extent and position of the carbodiimide modification as a function of time is also described.The importance of particular residues being modified or not under the reaction conditions used is discussed in terms of transfer RNA conformation. A reduction from 10 to 4 mm-magnesium ions in the modification experiments has no apparent effect on the extent and position of the carbodiimide or methoxyamine reactions.  相似文献   

2.
Total mammalian tRNAs contain on the average less than one mole of ribothymidine per mole of tRNA. Mammalian tRNAs can be grouped into at least four classes, depending upon their ribothymidine content at position 23 from the 3′ terminus. Class A contains tRNA in which a nucleoside other than uridine replaces ribothymidine (tRNAiMet); Class B contains tRNA in which one mole of a modified uridine (rT, ψ, or 2′-O-methylribothymidine) is found per mole of tRNA (tRNASer, tRNATrp, and tRNALys, respectively). Class C contains tRNA in which there is a partial conversion of uridine to ribothymidine (tRNAPhe, tRNA1Gly, tRNA2Gly); Class D contains tRNA which totally lacks ribothymidine (tRNAVal). Only those tRNAs in Class C are acceptable substrates for E.coli uridine methylase, under the conditions used in these studies. These observations cannot be adequately explained solely on the basis of the presence or absence of a specific “universal” nucleoside other than U or rT at position 23 from the 3′ terminus. However, correlations can be made between the ribothymidine and 5-methylcytosine content of eucaryotic tRNA. We postulate that the presence of one or more 5-methylcytosines in and adjacent to loop III (minor loop) in individual tRNAs act to regulate the amount of ribothymidine formed by uridine methylase. Several experiments are proposed as tests for this hypothesis.  相似文献   

3.
Photochemical crosslinking studies on two formylmethionine tRNAs of Escherichia coli are consistent with the hypothesis that the role of 7-methylguanosine is to stabilize a tertiary structure of tRNA in which the “extra” loop is folded over so as to be close to the 4-thiouridine region of the molecule. In tRNAfmet 3, which differs from tRNAfmet 1 only by substitution of an adenosine for the 7-methylguanosine in the “extra” loop, crosslinking was virtually abolished when the tRNA was placed in 40 mm Na+, whereas tRNAfmet 1 in 40 mm Na+ was crosslinked to 95% of the maximum extent observed for both tRNAs in Mg2+. Even in Mg2+, a difference in structure between the two tRNAs could be detected by means of a two-fold decrease in the rate of crosslinking in tRNAfmet 3 as compared to tRNAfmet 1. Comparison of crosslinking in the native and metastable denatured forms of tRNATrp of E. coli revealed that these structures also differ with respect to the orientation and/or distance between 4-thiouridine (8) and cytidine (13), since denaturation abolished crosslinking. However, separation of these two residues is not obligatory for denaturation, since crosslinked tRNATrp could still be denatured. A 30% difference in fluorescence between the native and denatured forms of crosslinked-reduced tRNATrp infers an increase in hydrophilicity in the 4-thiouridine region upon denaturation.  相似文献   

4.
Transfer RNA is highly modified. Nucleotide 37 of the anticodon loop is represented by various modified nucleotides. In Escherichia coli, the valine-specific tRNA (cmo5UAC) contains a unique modification, N6-methyladenosine, at position 37; however, the enzyme responsible for this modification is unknown. Here we demonstrate that the yfiC gene of E. coli encodes an enzyme responsible for the methylation of A37 in tRNA1Val. Inactivation of yfiC gene abolishes m6A formation in tRNA1Val, while expression of the yfiC gene from a plasmid restores the modification. Additionally, unmodified tRNA1Val can be methylated by recombinant YfiC protein in vitro. Although the methylation of m6A in tRNA1Val by YfiC has little influence on the cell growth under standard conditions, the yfiC gene confers a growth advantage under conditions of osmotic and oxidative stress.  相似文献   

5.
E. coli tRNAPhe was modified at its 3-(3-amino-3-carboxypropyl)uridine residue with the N-hydroxysuccinimide ester of N-4-azido-2-nitrophenyl)glycine. Exclusive modification of this base was shown by two-dimensional TLC analysis of the T1 oligonucleotide and nucleoside products of nuclease digestion. The fully modified tRNA could be aminoacylated to the same level as control tRNA. The aminoacylated tRNA was as active as control tRNA in non-enzymatic binding to the P site of ribosomes, and in EFTu-dependent binding to the rirobosomal A site. The functional activity of this photolabile modified tRNA allows it to be used to probe the A and P binding sites on ribosomes and on other proteins that interact with tRNA. Crosslinking to the ribosomal P site has been shown.  相似文献   

6.
A combination of hydrophobic chromatography on phenyl-Sepharose and reversed phase HPLC was used to purify individual tRNAs with high specific activity. The efficiency of chromatographic separation was enhanced by biochemical manipulations of the tRNA molecule, such as aminoacylation, formylation of the aminoacyl moiety and enzymatic deacylation. Optimal combinations are presented for three different cases. (i) tRNAPhe from Escherichia coli. This species was isolated by a combination of low pressure phenyl-Sepharose hydrophobic chromatography with RP-HPLC. (ii) tRNAIle from E.coli. Aminoacylation increases the retention time for this tRNA in RP-HPLC. The recovered acylated intermediate is deacylated by reversion of the aminoacylation reaction and submitted to a second RP-HPLC run, in which deacylated tRNAIle is recovered with high specific activity. (iii) tRNAiMet from Saccharomyces cerevisiae. The aminoacylated form of this tRNA is unstable. To increase stability, the aminoacylated form was formylated using E.coli enzymes and, after one RP-HPLC step, the formylated derivative was deacylated using peptidyl-tRNA hydrolase from E.coli. The tRNAiMet recovered after a second RP-HPLC run exhibited electrophoretic homogeneity and high specific activity upon aminoacylation. These combinations of chromatographic separation and biochemical modification can be readily adapted to the large-scale isolation of any particular tRNA.  相似文献   

7.
tRNA molecules contain 93 chemically unique nucleotide base modifications that expand the chemical and biophysical diversity of RNA and contribute to the overall fitness of the cell. Nucleotide modifications of tRNA confer fidelity and efficiency to translation and are important in tRNA-dependent RNA-mediated regulatory processes. The three-dimensional structure of the anticodon is crucial to tRNA-mRNA specificity, and the diverse modifications of nucleotide bases in the anticodon region modulate this specificity. We have determined the solution structures and thermodynamic properties of Bacillus subtilis tRNATyr anticodon arms containing the natural base modifications N6-dimethylallyl adenine (i6A37) and pseudouridine (ψ39). UV melting and differential scanning calorimetry indicate that the modifications stabilize the stem and may enhance base stacking in the loop. The i6A37 modification disrupts the hydrogen bond network of the unmodified anticodon loop including a C32-A38+ base pair and an A37-U33 base-base interaction. Although the i6A37 modification increases the dynamic nature of the loop nucleotides, metal ion coordination reestablishes conformational homogeneity. Interestingly, the i6A37 modification and Mg2+ are sufficient to promote the U-turn fold of the anticodon loop of Escherichia coli tRNAPhe, but these elements do not result in this signature feature of the anticodon loop in tRNATyr.  相似文献   

8.
Purified HeLa cell tRNA methylases have been used for site-specific methylations of Escherichia coli formylmethionine transfer ribonucleic acid (tRNAfMet). Guanine-N2-methylase catalyzed the methylation of a specific guanine residue (G27) and adenine-1-methylase that of a specific adenine residue (A59). The combined action of both of these enzymes leads to a total incorporation of two methyl groups and results in the methylation of both G27 and A59.The effect of introducing additional methyl groups on the function of tRNA has been studied by a comparison in vitro of the biological properties of tRNAfMet and enzymically methylated tRNAfMet. It was found that none of the following properties of E. coli tRNAfMet are altered to any significant extent by methylation: (a) rate, extent, and specificity of aminoacylation, (b) ability of methionyl-tRNA to be enzymically formylated, and (c) ability of formylmethionyl-tRNA to initiate protein synthesis in cell-free extracts of E. coli in the presence of f2 RNA as messenger. Also, the temperature versus absorbance profile of the doubly methylated tRNAfmet was virtually identical to that of the E. coli tRNAfMet, and enzymically methylated tRNAfmet resembled tRNAfMet in that both were resistant to deacylation by E. coli, N-acylaminoacyl-tRNA hydrolase.  相似文献   

9.
The selective modification of cytidine, uridine, guanosine and dihydrouridine residues in 32P-labelled yeast phenylalanine transfer RNA has been studied by the use of specific reagents.The selective modification of cytidine residues with the reagent methoxyamine is described. Of the six cytidines in the single-stranded regions of the cloverleaf formula, only two are completely reactive, C74 and C75 at the 3′-terminus. Cm32 in the anticodon loop is reactive to only a small extent.The selective modifications of uridine and guanosine residues with 1-cyclohexyl 3-[2-morpholino(4)-ethyl] carbodiimide methotosylate, is described. The reagent is also shown to be reactive with dihydrouridine. In the single-stranded regions of the secondary structure of yeast phenylalanine transfer RNA there are 16 base residues which this reagent could be specific for. However, only G20, Gm34 and U47 are extensively modified, whilst U33 and D16 are partially modified. G18 is modified to a very small extent.The results obtained in this study are also in good agreement with previous chemical modification studied by other workers, carried out on unlabelled yeast phenylalanine transfer RNA using different reagents to the ones described here.The pattern of chemical modification is compared with the three-dimensional structure obtained by an X-ray crystallographic analysis of the same tRNA species. The correlation between exposed regions of the model and the regions of chemical reactivity are everywhere consistent.  相似文献   

10.
11.
《Gene》1997,193(1):59-63
Polymerase chain reaction (PCR) was used to amplify a fragment of DNA encoding a tRNA that recognizes the abundant CUC leucine codon from the chromosome of Streptomyces coelicolor. Sequence analysis of the gene, designated leuU, indicated that it codes for a tRNA 88 nucleotides in length that shares 75% identity with the Escherichia coli tRNALeuCUC, while it shares only 65% identity with the only other sequenced leucyl tRNA from S. coelicolor, the bldA encoded tRNALeuUUA. Accumulation of the leuU tRNA was examined by Northern blot analysis and shown to be present at constant levels throughout growth in contrast to the bldA-encoded tRNA which shows a temporal pattern of accumulation [Leskiw et al., 1993. J. Bacteriol., 175, 1995–2005].  相似文献   

12.
13.
Escherichia coli 15T? treated with chloramphenicol produces tRNAphe which is deficient in minor nucleosides. Undermodified tRNAphe chromatographs as two new peaks from a benzoylated diethylaminoethyl-cellulose column. Chloramphenicol tRNAphe was purified by phenoxyacetylation of phenylalanyl-tRNA and subsequent chromatography on benzoylated diethylaminoethyl-cellulose. Purified tRNAphe had an altered Chromatographie profile as a result of the purification procedure. Phenoxyacetylation of an unpurified tRNA preparation, which was either charged with phenylalanine or kept discharged, resulted in a permanent alteration of tRNAphe which was similar to the alteration of the purified tRNAphe. The altered tRNAs eluted with higher salt or ethanol concentrations from benzoylated diethylaminoethyl-cellulose. The alteration was also shown for tRNAphe of phenoxyacetylated tRNA from late log phase E. coli 15T?. tRNAglu and tRNALeu were not changed, but both tRNAArg and tRNAIle were altered. tRNA2Val and tRNAMet shifted in the elution profile; tRNA1Val and tRNAfMet were not affected.Comparison of the primary structures of the alterable and nonalterable tRNA's revealed that all alterable tRNA's have the undefined nucleoside X in the extra loop. Phenoxyacetylation of nucleoside X probably was the cause of the altered profiles.tRNAphe from E. coli 15T? treated with chloramphenicol was less reactive towards phenoxyacetylation than normal tRNA, possibly because of a different conformation of the modification-deficient molecule relative to the normal tRNAphe. tRNAphe from E. coli 15T?, starved for cysteine and methionine and treated with chloram-phenicol, is more deficient in minor nucleosides and showed even less reactivity.Acceptor capacities of the altered tRNA species were not changed significantly; only the acceptor capacity for tRNAIle decreased approximately 25%. The recognition site for the aminoacyl-tRNA synthetases probably is not affected.  相似文献   

14.
15.
Codon-anticodon recognition and transfer RNA utilization for the leucine tRNA isoaccepting species of Escherichia coli have been studied by protein synthesis in vitro directed by sequenced bacteriophage MS2 RNA. We have added radioactive Leu-tRNALeu isoaccepting species as tracers, rather than use a tRNA-dependent system, since in the presence of an excess of non-radioactive leucine, there is no transfer of radioactive leucine from one isoaccepting species to another. MS2-specific peptides containing leucine residues encoded by known codons were isolated and identified, and the relative abilities of the Leu-tRNALeu isoaccepting species to transfer leucine into these peptides compared. Sequenced tRNA1Leu and sequenced tRNA3Leu are of roughly equal efficiency in their ability to recognize CUC and CUA codons, while tRNA3Leu is highly preferred for the CUU codon; tRNA4Leu and tRNA5Leu both recognize UUA and UUG codons, with tRNA4Leu slightly preferred for the UUA codon. We conclude that: (1) wobble is greater than permitted by the wobble hypothesis; (2) there is still some discrimination in the third code letter, and that the CUX4 (CUC, CUA, CUU, CUG) portion of the leucine family of six codons is not read by a simple “two out of three” mechanism; (3) a Watson-Crick pair (C · G) between codon and anticodon does not appear to be preferred over an unorthodox pair (C · C) in the wobble position; (4) a standard wobble pair (U · G) between codon and anticodon is preferred over an unorthodox pair (U · C); and (5) the extensive wobble observed in the CUX4 leucine codon series is not paralleled in the UUX4 leucine (UUG, UUA) and phenylalanine (UUU, UUC) codon series, where mistranslation would be the consequence of such wobble.  相似文献   

16.
Guanosine residues in Escherichia coli formylmethionine transfer RNA have been modified by photo-oxidation in the presence of methylene blue. After irradiation to the extent of 50% loss of amino-acid acceptor activity, separation of active and inactive molecules has shown that guanosine rsesidues in the stem adjacent to the dihydrouridine loop and the guanosine at position no. 2 from the 5′ terminus are not required for aminoacylation or transformylation. Active molecules containing these modifications are amino-acylated with a Km threefold higher than that for unmodified tRNAfMet. No change in Vmax occurs. Modification of a guanosine residue in the small loop joining the anticodon stem and the TΨC stem results in inactivation of methionine acceptor activity. This represents the first experimental evidence that a modification in this region affects the aminoacylation of a tRNA.  相似文献   

17.
In the bacterial decoding system, the AUA codon is deciphered as isoleucine by tRNAIle bearing lysidine (L, 2-lysyl-cytidine) at the wobble position. Lysidine is an essential modification that determines both the codon and amino acid specificities of tRNAIle. We identified an enzyme named tRNAIle lysidine synthetase (TilS) that catalyzes lysidine formation by using lysine and ATP as substrates. Biochemical studies revealed a molecular mechanism of lysidine formation that consists of two consecutive reactions involving the adenylated tRNA intermediate. In addition, we deciphered how Escherichia coli TilS specifically discriminates between tRNAIle and the structurally similar tRNAMet, which bears the same anticodon loop. Recent structural studies unveiled tRNA recognition by TilS, and a molecular basis of lysidine formation at atomic resolution.  相似文献   

18.
Transformation of 4-thiouridine residues in Escherichia coli transfer ribonucleic acids is achieved under conditions which leave the major bases and the primary structure unaffected. The modifications of 4-thiouridine involve either alteration with N-ethylmaleimide, cyanogen bromide, or hydrogen peroxide, or a photochemical transformation effected by irradiation at 330 nm of tRNA in an organic solvent. These selective modifications were made on unfractionated species (Phe, Leu, fMet, Tyr, and Val) and purified species (Phe, fMet, and Val) of E. coli tRNA with little or no loss in their capacities to be aminoacylated. Of the tRNA species tested, subsequent treatment of 4-thiouridineless-tRNA with sodium borohydride affects only the capacity of tRNAPhe to be aminoacylated. These observations are consistent with the proposal that the cognate ligase recognition site on tRNAPhe is situated in the nonhydrogenbonded dihydrouridine loop area of the molecule.  相似文献   

19.
Breaking the degeneracy of the genetic code via sense codon reassignment has emerged as a way to incorporate multiple copies of multiple non-canonical amino acids into a protein of interest. Here, we report the modification of a normally orthogonal tRNA by a host enzyme and show that this adventitious modification has a direct impact on the activity of the orthogonal tRNA in translation. We observed nearly equal decoding of both histidine codons, CAU and CAC, by an engineered orthogonal M. jannaschii tRNA with an AUG anticodon: tRNAOpt. We suspected a modification of the tRNAOptAUG anticodon was responsible for the anomalous lack of codon discrimination and demonstrate that adenosine 34 of tRNAOptAUG is converted to inosine. We identified tRNAOptAUG anticodon loop variants that increase reassignment of the histidine CAU codon, decrease incorporation in response to the histidine CAC codon, and improve cell health and growth profiles. Recognizing tRNA modification as both a potential pitfall and avenue of directed alteration will be important as the field of genetic code engineering continues to infiltrate the genetic codes of diverse organisms.  相似文献   

20.
We have noticed that during a long storage and handling, the plant methionine initiator tRNA is spontaneously hydrolyzed within the anticodon loop at the C34-A35 phosphodiester bond. A literature search indicated that there is also the case for human initiator tRNAMet but not for yeast tRNAMet i or E. coli tRNAMet f. All these tRNAs have an identical nucleotide sequence of the anticodon stems and loops with only one difference at position 33 within the loop. It means that cytosine 33 (C33) makes the anticodon loop of plant and human tRNAMet i susceptible to the specific cleavage reaction. Using crystallographic data of tRNAMet f of E. coli with U33, we modeled the anticodon loop of this tRNA with C33. We found that C33 within the anticodon loop creates a pocket that can accomodate a hydrogen bonded water molecule that acts as a general base and catalyzes a hydrolysis of C-A bond. We conclude that a single nucleotide change in the primary structure of tRNAMet i made changes in hydration pattern and readjustment in hydrogen bonding which lead to a cleavage of the phosphodiester bond.  相似文献   

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