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An RNA structural determinant for tRNA recognition.

Escherichia coli tRNACys contains an unusual G15.G48 tertiary base pair that is important for recognition and aminoacylation by cysteine tRNA synthetase. This G15.G48 tertiary base pair has a distinctive chemical modification signature that suggests an N2.N3 base pairing. The N2.N3 pairing of a G.G base pair has not been described in any existing RNA structures. Identification of the structural determinant of G15.G48 is of fundamental importance for understanding the formation of an RNA tertiary base pair, as well as the role of RNA tertiary structure in tRNA recognition. We show here that the structural determinant for G15.G48 is an A13.A22 mismatch in the dihydrouridine stem. Introduction of A13.A22 to an unrelated tRNA confers the distinctive chemical modification signature of G15. G48 while substitution of A13.A22 eliminates this signature. The relationship between G15.G48 and A13.A22 enables the unrelated tRNA to be efficiently recognized by cysteine tRNA synthetase. Modeling studies show that A13.A22 has the potential to form a base triple with A46, which is directly connected to G48 in the G15.G48 base pair. The proposed A13.A22.A46 base triple provides a framework for understanding how two RNA structural elements may be related to each other in playing an important role in tRNA aminoacylation.

Acylation↗

Expression of the Synechocystis sp. strain PCC 6803 tRNA(Glu) gene provides tRNA for protein and chlorophyll biosynthesis.

In the cyanobacterium Synechocystis sp. strain PCC 6803 (Synechocystis 6803) delta-aminolevulinic acid (ALA), the sole precursor for the synthesis of the porphyrin rings of heme and chlorophyll, is formed from glutamate activated by acylation to tRNA(Glu) (G. P. O'Neill, D. M. Peterson, A. Schön, M. W. Chen, and D. Söll, J. Bacteriol. 170:3810-3816, 1988; S. Rieble and S. I. Beale, J. Biol. Chem. 263:8864-8871, 1988). We report here that Synechocystis 6803 possesses a single tRNA(Glu) gene which was transcribed as monomeric precursor tRNA and matured into the two tRNA(Glu) species. They differed in the extent of modification of the first anticodon base, 5-methylaminomethyl-2-thiouridine (O'Neill et al., 1988). The two tRNA species had equivalent capacities to stimulate the tRNA-dependent formation of ALA in Synechocystis 6803 and to provide glutamate for protein biosynthesis in an Escherichia coli-derived translation system. These results are in support of a dual role of tRNA(Glu). The levels of tRNA(Glu) were examined by Northern (RNA) blot analysis of cellular RNA and by aminoacylation assays in cultures of Synechocystis 6803 in which the amount of chlorophyll synthesized was modulated over a 10-fold range by various illumination regimens or by the addition of inhibitors of chlorophyll and ALA biosynthesis. In these cultures, the level of tRNA(Glu) was always a constant fraction of the total tRNA population, suggesting that tRNA(Glu) and chlorophyll levels are regulated independently. In addition, the tRNA(Glu) was always fully aminoacylated in vivo.

Aminolevulinic Acid↗

Overproduction and purification of native and queuine-lacking Escherichia coli tRNA(Asp). Role of the wobble base in tRNA(Asp) acylation.

Escherichia coli tRNA(Asp) was overproduced in E. coli up to 15-fold from a synthetic tRNA(Asp) gene placed in a plasmid under the dependence of an isopropyl-beta,D-thiogalactopyranoside-inducible promoter. Purification to nearly homogeneity (95%) was achieved after two HPLC DEAE-cellulose columns. E. coli tRNA(Asp)[G34] (having guanine instead of queuine at position 34) was obtained by the same procedure except that it was overproduced in a strain lacking the enzyme responsible for queuine modification. Nucleoside analysis showed that, except for the replacement of Q34 by G34 in mutant-derived tRNA(Asp), the base modification levels of both tRNAs are the same as those in wild-type E. coli tRNA(Asp). Kinetic properties of tRNA(Asp)[Q34] and [G34] with yeast AspRS compared to those in the homologous reactions in yeast and E. coli clearly indicate that the major identity elements are the same in both organisms: the conserved discriminant base and the anticodon triplet. In connection with this, we explored by site-directed mutagenesis the functional role of the interactions which, as revealed by the crystallographic structure, occur between the wobble base of yeast tRNA(Asp) and two residues of yeast AspRS. Their absence strongly affected aspartylation and the kd of tRNA(Asp). Each contact individually restores almost completely the wild-type acylation properties of the enzyme; thus, wobble base recognition in yeast appears to be more protected against mutational events than in E. coli, where only one contact is thought to occur at position 34.

Anticodon↗

Arginyl-tRNA synthetase from Escherichia coli K12: specificity with regard to ATP analogs and their magnesium complexes.

Fifteen analogs of ATP have been tested in the ATP/PPi pyrophosphate exchange and the aminoacylation of arginyl-tRNA synthetase from E. coli K12. Six compounds are substrates in both reactions, whereas seven of the triphosphates were inhibitors for both reactions. The Km, V and Ki values have been determined. The enzyme is less specific against base modifications of the ATP molecule than arginyl tRNA synthetase from baker's yeast in the aminoacylation and is inhibited by more base-modified compounds in the ATP/PPi exchange. The enzyme accepts 3'-deoxy-ATP as substrate and is inhibited by 2'-methoxy-ATP, whereas the reversed observation is made for the yeast arginyl-tRNA synthetase. The stoichiometry and association constants of complexes formed by six ATP analogs (four substrates and two inhibitors) and magnesium ions were investigated; five analogs form 1:1 complexes, one analog (3'-deoxy-ATP) binds two magnesium ions. The enzyme must accept different complexes formed with one or two magnesium ions as substrate, which must be different in structure from complexes proposed in literature.

Adenosine Triphosphate↗

A protein extension to shorten RNA: elongated elongation factor-Tu recognizes the D-arm of T-armless tRNAs in nematode mitochondria.

Nematode mitochondria possess extremely truncated tRNAs. Of 22 tRNAs, 20 lack the entire T-arm. The T-arm is necessary for the binding of canonical tRNAs and EF (elongation factor)-Tu (thermo-unstable). The nematode mitochondrial translation system employs two different EF-Tu factors named EF-Tu1 and EF-Tu2. Our previous study showed that nematode Caenorhabditis elegans EF-Tu1 binds specifically to T-armless tRNA. C. elegans EF-Tu1 has a 57-amino acid C-terminal extension that is absent from canonical EF-Tu, and the T-arm-binding residues of canonical EF-Tu are not conserved. In this study, the recognition mechanism of T-armless tRNA by EF-Tu1 was investigated. Both modification interference assays and primer extension analysis of cross-linked ternary complexes revealed that EF-Tu1 interacts not only with the tRNA acceptor stem but also with the D-arm. This is the first example of an EF-Tu recognizing the D-arm of a tRNA. The binding activity of EF-Tu1 was impaired by deletion of only 14 residues from the C-terminus, indicating that the C-terminus of EF-Tu1 is required for its binding to T-armless tRNA. These results suggest that C. elegans EF-Tu1 recognizes the D-arm instead of the T-arm by a mechanism involving its C-terminal region. This study sheds light on the co-evolution of RNA and RNA-binding proteins in nematode mitochondria.

Amino Acid Sequence↗

Undecagold cluster modified tRNA(Phe) from Escherichia coli and its activity in the protein elongation cycle.

An undecagold cluster (Au11) of molecular mass 6200Da was attached to the 3-(3-amino-3-carboxypropyl)uridine at position 47 of tRNA(Phe) from Escherichia coli. This modified tRNA can be enzymically aminoacylated with phenylalanine in the reaction catalyzed by phenylalanyl-tRNA synthetase. Au11-labeled Phe-tRNA(Phe) forms a ternary complex with the elongation factor Tu.GTP and is active in poly(U)-dependent poly(phe) synthesis. The Au11 modification does not hinder the specific binding of tRNA to distinct ribosomal binding sites or the precise positioning of the aminoacyl and peptidyl residues in the peptidyltransferase center, and does not impair the translocation. The modified tRNA is suitable for the identification of ribosomal binding sites by scanning transmission electron microscopy and for crystallographic studies of the 70S ribosome at different states of the protein-elongation cycle.

Binding Sites↗

The three-dimensional folding of the tRNA-like structure of tobacco mosaic virus RNA. A new building principle applied twice.

The structure of the tRNA-like 3' terminus of tobacco mosaic virus (TMV) RNA has been studied. A 3' -terminal fragment possessing the tRNA-like properties was probed with chemical modification and enzymatic digestions. A model of the secondary structure is proposed for the last 105 nucleotides. The corresponding region of other tobamoviral RNAs can be folded in an identical secondary structure. A three-dimensional model for the tRNA-like structure is given which is compared with those proposed earlier for the tRNA-like 3' termini of turnip yellow mosaic virus (TYMV) RNA and brome mosaic virus (BMV) RNA. A new building principle which we discovered previously by studying the latter RNAs appears to be applied twice in the tRNA-like structure of TMV RNA. The determination of the minimal length requirement for recognition of CTP, ATP:tRNA nucleotidyl-transferase reveals a size of 100 nucleotides in agreement with the models proposed.

Journal Article↗

Posttranscriptional modifications in the A-loop of 23S rRNAs from selected archaea and eubacteria.

Posttranscriptional modifications were mapped in helices 90-92 of 23S rRNA from the following phylogenetically diverse organisms: Haloarcula marismortui, Sulfolobus acidocaldarius, Bacillus subtilis, and Bacillus stearothermophilus. Helix 92 is a component of the ribosomal A-site, which contacts the aminoacyl-tRNA during protein synthesis, implying that posttranscriptional modifications in helices 90-92 may be important for ribosome function. RNA fragments were isolated from 23S rRNA by site-directed RNase H digestion. A novel method of mapping modifications by analysis of short, nucleotide-specific, RNase digestion fragments with Matrix Assisted Laser Desorption/Ionization Mass Spectrometry (MALDI-MS) was utilized. The MALDI-MS data were complemented by two primer extension techniques using reverse transcriptase. One technique utilizes decreasing concentrations of deoxynucleotide triphosphates to map 2'-O-ribose methylations. In the other, the rRNA is chemically modified, followed by mild alkaline hydrolysis to map pseudouridines (psis). A total of 10 posttranscriptionally methylated nucleotides and 6 psis were detected in the five organisms. Eight of the methylated nucleotides and one psi have not been reported previously. The distribution of modified nucleotides and their locations on the surface of the ribosomal peptidyl transferase cleft suggests functional importance.

Bacillus subtilis↗

Bacillus subtilis tRNA(Pro) with the anticodon mo5UGG can recognize the codon CCC.

In Bacillus subtilis, four codons, CCU, CCC, CCA, and CCG, are used for proline. There exists, however, only one proline-specific tRNA having the anticodon mo(5)UGG. Here, we found that this tRNA(Pro)(mo(5)UGG) can read not only the codons CCA, CCG and CCU but also CCC, using an in vitro assay system. This means that the first nucleoside of its anticodon, 5-methoxyuridine (mo(5)U), recognizes A, G, U and C. On the other hand, it was reported that mo(5)U at the first position of the anticodon of tRNA(Val)(mo(5)UAC) can recognize A, G, and U but not C. A comparison of the structure of the anticodon stem and loop of tRNA(Pro)(mo(5)UGG) with those of other tRNAs containing mo(5)U at the first positions of the anticodons suggests that a modification of nucleoside 32 to pseudouridine (Psi) enables tRNA(Pro)(mo(5)UGG) to read the CCC codon.

Anticodon↗

Pus1p-dependent tRNA pseudouridinylation becomes essential when tRNA biogenesis is compromised in yeast.

Yeast Pus1p catalyzes the formation of pseudouridine (psi) at specific sites of several tRNAs, but its function is not essential for cell viability. We show here that Pus1p becomes essential when another tRNA:pseudouridine synthase, Pus4p, or the essential minor tRNA for glutamine are mutated. Strikingly, this mutant tRNA, which carries a mismatch in the T psi C arm, displays a nuclear export defect. Furthermore, nuclear export of at least one wild-type tRNA species becomes defective in the absence of Pus1p. Our data, thus, show that the modifications formed by Pus1p are essential when other aspects of tRNA biogenesis or function are compromised and suggest that impairment of nuclear tRNA export in the absence of Pus1p might contribute to this phenotype.

Base Sequence↗

Structural features required for the binding of tRNATrp to avian myeloblastosis virus reverse transcriptase.

The basis of the specific binding of tRNATrp by avian myeloblastosis virus reverse transcriptase was studied by chemical and enzymatic modification of the RNA. Binding does not depend on recognition of the tryptophan anticodon since molecules cleaved in the anticodon are stably bound by the enzyme. Modification of pseudouridine residues in the tRNA destroys binding to reverse transcriptase. These results are consistent with a model in which reverse transcriptase-tRNATrp interaction occurs not at the anticodon, but at regions in the tRNA which contain or are stabilized by pseudouridine residues.

Animals↗

A Unified Mechanism of +1 Ribosomal Frameshifting.

Ribosomes decode 3-nucleotide codons and move in 1-codon increments to maintain the messenger RNA (mRNA) frame thereby accurately producing the encoded protein. In special cases, including viral genomes and regulatory cellular proteins, frameshifting occurs to expand the coding repertoire of an mRNA to make more than one protein. How these frameshifting events are induced and regulated is an active area of research. Here, we discuss recent progress in the understanding of +1 frameshifting (+1FS), during which the ribosome shifts by 1 mRNA nucleotide in the 3' direction. Structural and biochemical studies yielded insights into +1FS induced by mRNA slippery sequences and transfer RNA (tRNA) stem-loop expansion or modifications. tRNAs with an additional anticodon nucleotide are explored as a biotechnology tool for expanding the genetic code in an approach termed quadruplet decoding. We revisit the challenges of the quadruplet decoding model, discuss +1FS scenarios in bacteria and eukaryotes, and propose a unifying structural mechanism for +1FS.

Frameshifting, Ribosomal↗

Does UGA suppressor tRNATrp from Escherichia coli have a unique CCA anticodon sequence?

The properties of the UGA-suppressor tRNATrp (anticodon CCA) from Escherichia coli has greatly influenced ideas about the specificity of codon-anticodon interactions showing that the anticodon sequence is not the sole determinant. However, a recent hypothesis for the mechanism of suppression by this tRNA proposes that the base change in position 24, in the dihydrouridine stem, leads to a change in translational specificity of the tRNA by increasing post-transcriptional modification of cytidine 34, in the anticodon wobble position [M. Yarus (1982) Science (Wash. DC) 218, 646-652]. The enzyme postulated to do this normally modifies C34 of a minor isoleucine isoacceptor specific for AUA codons. This modification should reduce reading of G in the third codon position: affinity chromatography on columns containing immobilised tRNAPro (anticodon VGG) has therefore been employed to isolate an enriched population of the putative suppressor species, if such a sub-population exists. The results obtained are difficult to reconcile with the presence of a subfraction, modified post-transcriptionally in C34, responsible for the suppression of UGA. This argues in favour of the previously advanced hypothesis for the mechanism of suppression, which depends on events outside the codon-anticodon interaction itself.

Anticodon↗

A unified model of codon reassignment in alternative genetic codes.

Many modified genetic codes are found in specific genomes in which one or more codons have been reassigned to a different amino acid from that in the canonical code. We present a new framework for codon reassignment that incorporates two previously proposed mechanisms (codon disappearance and ambiguous intermediate) and introduces two further mechanisms (unassigned codon and compensatory change). Our theory is based on the observation that reassignment involves a gain and a loss. The loss could be the deletion or loss of function of a tRNA or release factor. The gain could be the gain of a new type of tRNA or the gain of function of an existing tRNA due to mutation or base modification. The four mechanisms are distinguished by whether the codon disappears from the genome during the reassignment and by the order of the gain and loss events. We present simulations of the gain-loss model showing that all four mechanisms can occur within the same framework as the parameters are varied. We investigate the way the frequencies of the mechanisms are influenced by selection strengths, the number of codons undergoing reassignment, directional mutation pressure, and selection for reduced genome size.

Anticodon↗

[Role of the lysine residues in the phenylalanyl-tRNA synthetase substrates interaction].

The effect of 2,4-pentandione on the activity of phenylalanyl-tRNA synthetase (Phe-RSase) from E. coli MRE-600 was investigated. It was shown that modification of Phe-RSase with 2,4-pentandione leads to decrease of the aminoacylation rate without an influence on the ATP--[32P]pyrophosphate exchange reaction rate. tRNAPhe protects the enzyme against inactivation. Neither L-Phe and ATP nor the analog fo aminoacyladenylate protects the enzyme against inactivation. There are no changes in Km for amino acid and ATP in the aminoacylation reaction after modification while Km for tRNAPhe decreases three times. The dissociation constant of Phe-RSase: [14C]Phe-tRNA complex increases 4--8 times after modification. It is assumed that there are some lysine residues in Phe-RSase essential for the Phe-RSase-tRNA interaction.

Amino Acyl-tRNA Synthetases↗

Disorders of mitochondrial protein synthesis.

Mitochondrial tRNA gene mutations, including heteroplasmic deletions that eliminate one or more tRNAs, as well as point mutations that may be either hetero- or homoplasmic, are associated with a wide spectrum of human diseases. These range from rare syndromic disorders to cases of commoner conditions such as sensorineural deafness or cardiomyopathy. The disease spectrum of mutations in a given gene, or even a single mutation, may vary, but some patterns are evident, for example the prominence of cardiomyopathy resulting from tRNAIle defects, or of MERFF-like disease from tRNALys defects. Molecular studies of many laboratories have reached a consensus on molecular mechanisms associated with these mutations. Although precise details vary, loss of translational function of the affected tRNA(s) seems to be the final outcome, whether by impaired pre-tRNA processing, half-life, base-modification or aminoacylation. However, a mechanistic understanding of the consequences of this for the assembly and function of the mitochondrial OXPHOS complexes and for the physiological functions of the affected tissues is still a distant prospect. This review presents some views of possible downstream consequences of specific tRNA deficiencies.

Base Sequence↗

Relation of cell type and cell density to the degree of post-transcriptional modification of tRNALys and tRNAPhe.

An examination of the reversed-phase chromatographic profiles of tRNALys and tRNAPhe from SV40-transformed BALB/3T3 cells grown to different cell densities, untransformed BALB/3T3 cells grown to confluency and BALB/c mouse liver indicates that with increasing cell density in culture the degree of the peroxy-Y modification in tRNAPhe and an undetermined modification in tRNALys become more like that of differentiated tissue (liver). Because precursor/product relationships appear to exist among the unmodified and modified forms of the isoaccepting species for each of these tRNAs, the present findings support the view that the often reported differences in tRNA isoaccepting spectra result primarily from differences in post-transcriptional modifications, rather than from different tRNA transcripts.

Cell Count↗

Modification of Escherichia coli ribosomes: in vitro termination is less dependent on histidine residues at the peptidyl transferase centre when ribosomes lack protein L11.

Chemical modification of ribosomes with the histidine specific reagents, 1-fluoro-2,4-dinitrobenzene (FDNB) and diethylpyrocarbonate (DEP), result in a loss of activities in vitro of codon-dependent termination and peptide bond formation. The binding of release factor (RF) to the ribosome is unaffected but the hydrolysis of peptidyl-tRNA is inhibited. On reversal of the modification activity can be restored. Partial protection is provided by chloramphenicol indicating that one or more of the affected residues is at the peptidyl transferase centre. Codon-dependent termination on ribosomes lacking L11, which have a greater affinity for RF-2, is significantly less affected by the modification than on control ribosomes. Peptide bond formation is affected similarly on L11 lacking and normal ribosomes.

Acyltransferases↗