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1.
J Biol Chem ; 299(8): 104966, 2023 08.
Artigo em Inglês | MEDLINE | ID: mdl-37380076

RESUMO

tRNAs are short noncoding RNAs responsible for decoding mRNA codon triplets, delivering correct amino acids to the ribosome, and mediating polypeptide chain formation. Due to their key roles during translation, tRNAs have a highly conserved shape and large sets of tRNAs are present in all living organisms. Regardless of sequence variability, all tRNAs fold into a relatively rigid three-dimensional L-shaped structure. The conserved tertiary organization of canonical tRNA arises through the formation of two orthogonal helices, consisting of the acceptor and anticodon domains. Both elements fold independently to stabilize the overall structure of tRNAs through intramolecular interactions between the D- and T-arm. During tRNA maturation, different modifying enzymes posttranscriptionally attach chemical groups to specific nucleotides, which not only affect translation elongation rates but also restrict local folding processes and confer local flexibility when required. The characteristic structural features of tRNAs are also employed by various maturation factors and modification enzymes to assure the selection, recognition, and positioning of specific sites within the substrate tRNAs. The cellular functional repertoire of tRNAs continues to extend well beyond their role in translation, partly, due to the expanding pool of tRNA-derived fragments. Here, we aim to summarize the most recent developments in the field to understand how three-dimensional structure affects the canonical and noncanonical functions of tRNA.


Assuntos
Anticódon , RNA de Transferência , Conformação de Ácido Nucleico , RNA de Transferência/genética , RNA de Transferência/metabolismo , Anticódon/metabolismo , Biossíntese de Proteínas , Ribossomos/metabolismo
2.
FEBS J ; 290(13): 3480-3489, 2023 07.
Artigo em Inglês | MEDLINE | ID: mdl-36806932

RESUMO

The CGA codon is a rare codon in Saccharomyces cerevisiae and is known to be inefficiently decoded by wobble pairing with Arg-tRNA(ICG). The tRNAArg (ICG) is post-transcriptionally edited from tRNAArg (ACG) by the anticodon first adenosine deamination enzyme Tad2/Tad3 complex. Experimental consecutive CGA codons cause ribosome stalling to result in the reduction of the encoding protein product. In this study, the additional supply of tRNAArg (ACG) genes that produce decoding Arg-tRNA(ICG) promoted the product level from the CGA12-luc reporter, revealing that the product reduction is essentially due to inefficient decoding and deficiency in the tRNA supply. The mature tRNAArg (ICG) and the precursor tRNAArg (ACG) ratios examined for cellular tRNA fraction revealed that the tRNAArg (ICG) ratio is maintained at less than 30% and is responsive to the Tad2/Tad3 expression level.


Assuntos
RNA de Transferência de Arginina , Saccharomyces cerevisiae , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , RNA de Transferência de Arginina/genética , RNA de Transferência de Arginina/metabolismo , Códon/genética , RNA de Transferência/genética , RNA de Transferência/metabolismo , Anticódon/genética , Anticódon/metabolismo
3.
J Mol Biol ; 434(8): 167440, 2022 04 30.
Artigo em Inglês | MEDLINE | ID: mdl-34995554

RESUMO

Inducing tRNA +1 frameshifting to read a quadruplet codon has the potential to incorporate a non-canonical amino acid (ncAA) into the polypeptide chain. While this strategy is attractive for genome expansion in biotechnology and bioengineering endeavors, improving the yield is hampered by a lack of understanding of where the shift can occur in an elongation cycle of protein synthesis. Lacking a clear answer to this question, current efforts have focused on designing +1-frameshifting tRNAs with an extra nucleotide inserted to the anticodon loop for pairing with a quadruplet codon in the aminoacyl-tRNA binding (A) site of the ribosome. However, the designed and evolved +1-frameshifting tRNAs vary broadly in achieving successful genome expansion. Here we summarize recent work on +1-frameshifting tRNAs. We suggest that, rather than engineering the quadruplet anticodon-codon pairing scheme at the ribosome A site, efforts should be made to engineer the pairing scheme at steps after the A site, including the step of the subsequent translocation and the step that stabilizes the pairing scheme in the +1-frame in the peptidyl-tRNA binding (P) site.


Assuntos
Códon , Mudança da Fase de Leitura do Gene Ribossômico , Código Genético , Engenharia de Proteínas , RNA de Transferência , Anticódon/genética , Anticódon/metabolismo , Pareamento de Bases , Códon/genética , Escherichia coli/metabolismo , Mudança da Fase de Leitura do Gene Ribossômico/genética , Engenharia de Proteínas/métodos , RNA de Transferência/genética , RNA de Transferência/metabolismo , Ribossomos/metabolismo
4.
Nucleic Acids Res ; 49(22): 13045-13061, 2021 12 16.
Artigo em Inglês | MEDLINE | ID: mdl-34871455

RESUMO

Dnmt2, a member of the DNA methyltransferase superfamily, catalyzes the formation of 5-methylcytosine at position 38 in the anticodon loop of tRNAs. Dnmt2 regulates many cellular biological processes, especially the production of tRNA-derived fragments and intergenerational transmission of paternal metabolic disorders to offspring. Moreover, Dnmt2 is closely related to human cancers. The tRNA substrates of mammalian Dnmt2s are mainly detected using bisulfite sequencing; however, we lack supporting biochemical data concerning their substrate specificity or recognition mechanism. Here, we deciphered the tRNA substrates of human DNMT2 (hDNMT2) as tRNAAsp(GUC), tRNAGly(GCC) and tRNAVal(AAC). Intriguingly, for tRNAAsp(GUC) and tRNAGly(GCC), G34 is the discriminator element; whereas for tRNAVal(AAC), the inosine modification at position 34 (I34), which is formed by the ADAT2/3 complex, is the prerequisite for hDNMT2 recognition. We showed that the C32U33(G/I)34N35 (C/U)36A37C38 motif in the anticodon loop, U11:A24 in the D stem, and the correct size of the variable loop are required for Dnmt2 recognition of substrate tRNAs. Furthermore, mammalian Dnmt2s possess a conserved tRNA recognition mechanism.


Assuntos
5-Metilcitosina/metabolismo , Anticódon/metabolismo , DNA (Citosina-5-)-Metiltransferases/metabolismo , RNA de Transferência/metabolismo , Adenosina Desaminase/genética , Adenosina Desaminase/metabolismo , Animais , Anticódon/genética , Sequência de Bases , DNA (Citosina-5-)-Metiltransferases/química , DNA (Citosina-5-)-Metiltransferases/genética , Células HEK293 , Células HeLa , Humanos , Inosina/metabolismo , Camundongos , Modelos Moleculares , Células NIH 3T3 , Conformação de Ácido Nucleico , Ligação Proteica , RNA de Transferência/química , RNA de Transferência/genética , RNA de Transferência de Ácido Aspártico/química , RNA de Transferência de Ácido Aspártico/genética , RNA de Transferência de Ácido Aspártico/metabolismo , RNA de Transferência de Glicina/química , RNA de Transferência de Glicina/genética , RNA de Transferência de Glicina/metabolismo , RNA de Transferência de Valina/química , RNA de Transferência de Valina/genética , RNA de Transferência de Valina/metabolismo , Proteínas de Ligação a RNA/genética , Proteínas de Ligação a RNA/metabolismo , Especificidade por Substrato
5.
RNA ; 27(2): 202-220, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33214333

RESUMO

Transfer RNA (tRNA) is the most diversely modified RNA. Although the strictly conserved purine position 37 in the anticodon stem-loop undergoes modifications that are phylogenetically distributed, we do not yet fully understand the roles of these modifications. Therefore, molecular dynamics simulations are used to provide molecular-level details for how such modifications impact the structure and function of tRNA. A focus is placed on three hypermodified base families that include the parent i6A, t6A, and yW modifications, as well as derivatives. Our data reveal that the hypermodifications exhibit significant conformational flexibility in tRNA, which can be modulated by additional chemical functionalization. Although the overall structure of the tRNA anticodon stem remains intact regardless of the modification considered, the anticodon loop must rearrange to accommodate the bulky, dynamic hypermodifications, which includes changes in the nucleotide glycosidic and backbone conformations, and enhanced or completely new nucleobase-nucleobase interactions compared to unmodified tRNA or tRNA containing smaller (m1G) modifications at the 37th position. Importantly, the extent of the changes in the anticodon loop is influenced by the addition of small functional groups to parent modifications, implying each substituent can further fine-tune tRNA structure. Although the dominant conformation of the ASL is achieved in different ways for each modification, the molecular features of all modified tRNA drive the ASL domain to adopt the functional open-loop conformation. Importantly, the impact of the hypermodifications is preserved in different sequence contexts. These findings highlight the likely role of regulating mRNA structure and translation.


Assuntos
Adenosina/análogos & derivados , Anticódon/química , Escherichia coli/genética , Processamento Pós-Transcricional do RNA , RNA de Transferência de Lisina/química , RNA de Transferência de Fenilalanina/química , Adenosina/metabolismo , Anticódon/genética , Anticódon/metabolismo , Pareamento de Bases , Sequência de Bases , Escherichia coli/metabolismo , Isopenteniladenosina/química , Isopenteniladenosina/metabolismo , Simulação de Dinâmica Molecular , Conformação de Ácido Nucleico , Nucleosídeos/química , Nucleosídeos/metabolismo , RNA de Transferência de Lisina/genética , RNA de Transferência de Lisina/metabolismo , RNA de Transferência de Fenilalanina/genética , RNA de Transferência de Fenilalanina/metabolismo
6.
Proc Natl Acad Sci U S A ; 117(34): 20785-20793, 2020 08 25.
Artigo em Inglês | MEDLINE | ID: mdl-32778592

RESUMO

Transfer RNA (tRNA) activity is tightly regulated to provide a physiological protein translation, and tRNA chemical modifications control its function in a complex with ribosomes and messenger RNAs (mRNAs). In this regard, the correct hypermodification of position G37 of phenylalanine-tRNA, adjacent to the anticodon, is critical to prevent ribosome frameshifting events. Here we report that the tRNA-yW Synthesizing Protein 2 (TYW2) undergoes promoter hypermethylation-associated transcriptional silencing in human cancer, particularly in colorectal tumors. The epigenetic loss of TYW2 induces guanosine hypomodification in phenylalanine-tRNA, an increase in -1 ribosome frameshift events, and down-regulation of transcripts by mRNA decay, such as of the key cancer gene ROBO1. Importantly, TYW2 epigenetic inactivation is linked to poor overall survival in patients with early-stage colorectal cancer, a finding that could be related to the observed acquisition of enhanced migration properties and epithelial-to-mesenchymal features in the colon cancer cells that harbor TYW2 DNA methylation-associated loss. These findings provide an illustrative example of how epigenetic changes can modify the epitranscriptome and further support a role for tRNA modifications in cancer biology.


Assuntos
Neoplasias do Colo/genética , Mudança da Fase de Leitura do Gene Ribossômico , RNA de Transferência/genética , Ribossomos/genética , tRNA Metiltransferases/deficiência , Adulto , Idoso , Anticódon/genética , Anticódon/metabolismo , Linhagem Celular Tumoral , Neoplasias do Colo/enzimologia , Neoplasias do Colo/metabolismo , Ilhas de CpG , Epigênese Genética , Feminino , Humanos , Masculino , Pessoa de Meia-Idade , Conformação de Ácido Nucleico , Fenilalanina/genética , Fenilalanina/metabolismo , Regiões Promotoras Genéticas , Biossíntese de Proteínas , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , RNA de Transferência/metabolismo , Ribossomos/metabolismo , tRNA Metiltransferases/genética , tRNA Metiltransferases/metabolismo
7.
PLoS Genet ; 16(6): e1008836, 2020 06.
Artigo em Inglês | MEDLINE | ID: mdl-32479508

RESUMO

Codon usage bias is a universal feature of all genomes and plays an important role in regulating protein expression levels. Modification of adenosine to inosine at the tRNA anticodon wobble position (I34) by adenosine deaminases (ADATs) is observed in all eukaryotes and has been proposed to explain the correlation between codon usage and tRNA pool. However, how the tRNA pool is affected by I34 modification to influence codon usage-dependent gene expression is unclear. Using Neurospora crassa as a model system, by combining molecular, biochemical and bioinformatics analyses, we show that silencing of adat2 expression severely impaired the I34 modification levels for the ADAT-related tRNAs, resulting in major ADAT-related tRNA profile changes and reprogramming of translation elongation kinetics on ADAT-related codons. adat2 silencing also caused genome-wide codon usage-biased ribosome pausing on mRNAs and proteome landscape changes, leading to selective translational repression or induction of different mRNAs. The induced expression of CPC-1, the Neurospora ortholog of yeast GCN4p, mediates the transcriptional response after adat2 silencing and amino acid starvation. Together, our results demonstrate that the tRNA I34 modification by ADAT plays a major role in driving codon usage-biased translation to shape proteome landscape.


Assuntos
Anticódon/genética , Uso do Códon , Elongação Traducional da Cadeia Peptídica/genética , Proteoma/genética , RNA de Transferência de Arginina/genética , Adenosina/metabolismo , Adenosina Desaminase/metabolismo , Anticódon/metabolismo , Biologia Computacional , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Inosina/metabolismo , Neurospora crassa/genética , RNA de Transferência de Arginina/metabolismo , Ribossomos/metabolismo
8.
Biomolecules ; 10(2)2020 02 18.
Artigo em Inglês | MEDLINE | ID: mdl-32085421

RESUMO

Modifications found in the Anticodon Stem Loop (ASL) of tRNAs play important roles in regulating translational speed and accuracy. Threonylcarbamoyl adenosine (t6A37) and 5-methoxycarbonyl methyl-2-thiouridine (mcm5s2U34) are critical ASL modifications that have been linked to several human diseases. The model yeast Saccharomyces cerevisiae is viable despite the absence of both modifications, growth is however greatly impaired. The major observed consequence is a subsequent increase in protein aggregates and aberrant morphology. Proteomic analysis of the t6A-deficient strain (sua5 mutant) revealed a global mistranslation leading to protein aggregation without regard to physicochemical properties or t6A-dependent or biased codon usage in parent genes. However, loss of sua5 led to increased expression of soluble proteins for mitochondrial function, protein quality processing/trafficking, oxidative stress response, and energy homeostasis. These results point to a global function for t6A in protein homeostasis very similar to mcm5/s2U modifications.


Assuntos
Proteínas de Ligação a DNA/genética , Histona Acetiltransferases/genética , RNA de Transferência/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Anticódon/genética , Anticódon/metabolismo , Proteínas de Ligação a DNA/metabolismo , Histona Acetiltransferases/metabolismo , Conformação de Ácido Nucleico , Fenótipo , Agregados Proteicos/fisiologia , Biossíntese de Proteínas/genética , Biossíntese de Proteínas/fisiologia , Proteínas/genética , Proteômica/métodos , RNA de Transferência/genética , Saccharomyces cerevisiae/crescimento & desenvolvimento , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Termodinâmica , Tiouridina/análogos & derivados , Tiouridina/química
9.
Biomolecules ; 9(10)2019 10 08.
Artigo em Inglês | MEDLINE | ID: mdl-31597374

RESUMO

This paper elucidates a close connection between two well-known facts that until now have seemed independent: (i) the quality control ("proofreading") of the emerging amino acid sequence, occurring during the normal, elongation-factor-dependent ribosomal biosynthesis, which is performed by removing those Aa-tRNAs (aminoacyl tRNAs) whose anticodons are not complementary to the exhibited mRNA codons, and (ii) the in vitro discovered existence of the factor-free ribosomal synthesis of polypeptides. It is shown that a biological role of proofreading is played by a process that is exactly opposite to the step of factor-free binding of Aa-tRNA to the ribosome-exposed mRNA: a factor-free removal of that Aa-tRNA whose anticodon is not complementary to the ribosome-exhibited mRNA codon.


Assuntos
Peptídeos/metabolismo , Aminoacil-RNA de Transferência/metabolismo , Ribossomos/metabolismo , Anticódon/metabolismo , Conformação de Ácido Nucleico , Peptídeos/genética , Biossíntese de Proteínas , RNA Mensageiro/metabolismo
10.
RNA ; 25(5): 607-619, 2019 05.
Artigo em Inglês | MEDLINE | ID: mdl-30737359

RESUMO

Adenosine deaminase acting on transfer RNA (ADAT) is an essential eukaryotic enzyme that catalyzes the deamination of adenosine to inosine at the first position of tRNA anticodons. Mammalian ADATs modify eight different tRNAs, having increased their substrate range from a bacterial ancestor that likely deaminated exclusively tRNAArg Here we investigate the recognition mechanisms of tRNAArg and tRNAAla by human ADAT to shed light on the process of substrate expansion that took place during the evolution of the enzyme. We show that tRNA recognition by human ADAT does not depend on conserved identity elements, but on the overall structural features of tRNA. We find that ancestral-like interactions are conserved for tRNAArg, while eukaryote-specific substrates use alternative mechanisms. These recognition studies show that human ADAT can be inhibited by tRNA fragments in vitro, including naturally occurring fragments involved in important regulatory pathways.


Assuntos
Adenosina Desaminase/metabolismo , Anticódon/química , RNA de Transferência de Alanina/química , RNA de Transferência de Arginina/química , Adenosina/metabolismo , Adenosina Desaminase/genética , Anticódon/genética , Anticódon/metabolismo , Sequência de Bases , Desaminação , Evolução Molecular , Expressão Gênica , Humanos , Inosina/metabolismo , Conformação de Ácido Nucleico , RNA de Transferência de Alanina/genética , RNA de Transferência de Alanina/metabolismo , RNA de Transferência de Arginina/genética , RNA de Transferência de Arginina/metabolismo , Alinhamento de Sequência , Especificidade por Substrato
11.
Arch Iran Med ; 21(10): 478-485, 2018 10 01.
Artigo em Inglês | MEDLINE | ID: mdl-30415557

RESUMO

In all organisms, transfer RNA (tRNA) molecules are required to undergo post-transcriptional modifications at different levels in order to convert into mature tRNAs. These modifications are critical for many aspects of tRNA function and structure, such as translational efficiency, flexibility, codon-anticodon interaction, stability, and fidelity. Up to now, over 100 modified nucleosides have been identified in tRNAs from all domains of life. Post-transcriptional modifications include different chemical processes such as methylation, deamination, or acetylation, with methylation reactions as the most common. tRNA methyltransferases are a family of enzymes involved in the post-transcriptional methylation of tRNA bases. Recent studies have reported different human diseases resulting from defects in tRNA methyltransferase activity, including cancer, diabetes and neurological disorders such as intellectual disability (ID). In this article, we focused on biological function and characterization of tRNA methyltransferases associated with ID in order to explain how functional disruption of tRNA methyltransferases could lead to ID phenotype.


Assuntos
Deficiência Intelectual/genética , tRNA Metiltransferases/metabolismo , Anticódon/metabolismo , Expressão Gênica , Humanos
12.
RNA Biol ; 15(4-5): 471-479, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29879865

RESUMO

In many organisms, the UGA stop codon is recoded to insert selenocysteine (Sec) into proteins. Sec incorporation in bacteria is directed by an mRNA element, known as the Sec-insertion sequence (SECIS), located downstream of the Sec codon. Unlike other aminoacyl-tRNAs, Sec-tRNASec is delivered to the ribosome by a dedicated elongation factor, SelB. We recently identified a series of tRNASec-like tRNA genes distributed across Bacteria that also encode a canonical tRNASec. These tRNAs contain sequence elements generally recognized by cysteinyl-tRNA synthetase (CysRS). While some of these tRNAs contain a UCA Sec anticodon, most have a GCA Cys anticodon. tRNASec with GCA anticodons are known to recode UGA codons. Here we investigate the clostridial Desulfotomaculum nigrificans tRNASec-like tRNACys, and show that this tRNA is acylated by CysRS, recognized by SelB, and capable of UGA recoding with Cys in Escherichia coli. We named this non-canonical group of tRNACys as 'tRNAReC' (Recoding with Cys). We performed a comprehensive survey of tRNAReC genes to establish their phylogenetic distribution, and found that, in a particular lineage of clostridial Pelotomaculum, the Cys identity elements of tRNAReC had mutated. This novel tRNA, which contains a UCA anticodon, is capable of Sec incorporation in E. coli, albeit with lower efficiency relative to Pelotomaculum tRNASec. We renamed this unusual tRNASec derived from tRNAReC as 'tRNAReU' (Recoding with Sec). Together, our results suggest that tRNAReC and tRNAReU may serve as safeguards in the production of selenoproteins and - to our knowledge - they provide the first example of programmed codon-anticodon mispairing in bacteria.


Assuntos
Aminoacil-tRNA Sintetases/genética , Proteínas de Bactérias/genética , Cisteína/metabolismo , Escherichia coli/genética , RNA de Transferência de Cisteína/genética , Selenocisteína/metabolismo , Selenoproteínas/genética , Aminoacil-tRNA Sintetases/metabolismo , Anticódon/genética , Anticódon/metabolismo , Proteínas de Bactérias/metabolismo , Códon de Terminação/química , Códon de Terminação/metabolismo , Desulfotomaculum/genética , Desulfotomaculum/metabolismo , Escherichia coli/metabolismo , Código Genético , Modelos Moleculares , Mutação , Conformação de Ácido Nucleico , Fator Tu de Elongação de Peptídeos/genética , Fator Tu de Elongação de Peptídeos/metabolismo , Peptococcaceae/genética , Peptococcaceae/metabolismo , Biossíntese de Proteínas , RNA de Transferência de Cisteína/metabolismo , Ribossomos/genética , Ribossomos/metabolismo , Selenoproteínas/biossíntese
13.
RNA Biol ; 15(4-5): 508-517, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-28726545

RESUMO

Endoribonuclease toxins (ribotoxins) are produced by bacteria and fungi to respond to stress, eliminate non-self competitor species, or interdict virus infection. PrrC is a bacterial ribotoxin that targets and cleaves tRNALysUUU in the anticodon loop. In vitro studies suggested that the post-transcriptional modification threonylcarbamoyl adenosine (t6A) is required for PrrC activity but this prediction had never been validated in vivo. Here, by using t6A-deficient yeast derivatives, it is shown that t6A is a positive determinant for PrrC proteins from various bacterial species. Streptococcus mutans is one of the few bacteria where the t6A synthesis gene tsaE (brpB) is dispensable and its genome encodes a PrrC toxin. We had previously shown using an HPLC-based assay that the S. mutans tsaE mutant was devoid of t6A. However, we describe here a novel and a more sensitive hybridization-based t6A detection method (compared to HPLC) that showed t6A was still present in the S. mutans ΔtsaE, albeit at greatly reduced levels (93% reduced compared with WT). Moreover, mutants in 2 other S. mutans t6A synthesis genes (tsaB and tsaC) were shown to be totally devoid of the modification thus confirming its dispensability in this organism. Furthermore, analysis of t6A modification ratios and of t6A synthesis genes mRNA levels in S. mutans suggest they may be regulated by growth phase.


Assuntos
Adenosina/análogos & derivados , Proteínas de Bactérias/genética , Endorribonucleases/genética , Processamento Pós-Transcricional do RNA , RNA de Transferência de Lisina/genética , Streptococcus mutans/genética , Adenosina/deficiência , Adenosina/genética , Anticódon/química , Anticódon/metabolismo , Proteínas de Bactérias/metabolismo , Toxinas Bacterianas/biossíntese , Toxinas Bacterianas/genética , Endorribonucleases/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Conformação de Ácido Nucleico , Biossíntese de Proteínas , RNA de Transferência de Lisina/metabolismo , Streptococcus mutans/metabolismo
14.
RNA Biol ; 15(4-5): 500-507, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-28880718

RESUMO

The modification of adenosine to inosine at position 34 of tRNA anticodons has a profound impact upon codon-anticodon recognition. In bacteria, I34 is thought to exist only in tRNAArg, while in eukaryotes the modification is present in eight different tRNAs. In eukaryotes, the widespread use of I34 strongly influenced the evolution of genomes in terms of tRNA gene abundance and codon usage. In humans, codon usage indicates that I34 modified tRNAs are preferred for the translation of highly repetitive coding sequences, suggesting that I34 is an important modification for the synthesis of proteins of highly skewed amino acid composition. Here we extend the analysis of distribution of codons that are recognized by I34 containing tRNAs to all phyla known to use this modification. We find that the preference for codons recognized by such tRNAs in genes with highly biased codon compositions is universal among eukaryotes, and we report that, unexpectedly, some bacterial phyla show a similar preference. We demonstrate that the genomes of these bacterial species contain previously undescribed tRNA genes that are potential substrates for deamination at position 34.


Assuntos
Códon/química , Cianobactérias/genética , Eucariotos/genética , Firmicutes/genética , Código Genético , Inosina/metabolismo , RNA de Transferência de Arginina/genética , Adenosina/genética , Adenosina/metabolismo , Aminoácidos/genética , Aminoácidos/metabolismo , Anticódon/química , Anticódon/metabolismo , Evolução Biológica , Códon/metabolismo , Cianobactérias/metabolismo , Eucariotos/metabolismo , Firmicutes/metabolismo , Humanos , Inosina/genética , Biossíntese de Proteínas , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , RNA de Transferência de Arginina/metabolismo , Transcriptoma
15.
Methods ; 113: 56-63, 2017 01 15.
Artigo em Inglês | MEDLINE | ID: mdl-27789335

RESUMO

Lysyl-tRNA synthetase (KRS) is an enzyme that conjugates lysine to its cognate tRNAs in the process of protein synthesis. In addition to its catalytic function, KRS binds to the 67-kDa laminin receptor (LR) on the cell membrane and facilitates cell migration and metastasis. Modulation of this interaction by small-molecule inhibitors can be exploited to suppress cancer metastasis. In this study, we present fragment-based methods for the identification of inhibitors and monitoring protein-protein interactions between KRS and LR. First, we identified the amino acid residues, located on the KRS anticodon-binding domain, which interact with the C-terminal extension of the LR. One-dimensional (1D) relaxation-edited nuclear magnetic resonance spectroscopy (NMR) and competition experiments were designed and optimized to screen the fragment library. For screening using two-dimensional (2D) NMR, we identified the indicative signals in the KRS anticodon-binding domain and selected inhibitors that bind to KRS and compete with LR at the KRS-LR binding interface. These methods may offer an efficient approach for the discovery of anti-metastatic drugs.


Assuntos
Inibidores Enzimáticos/farmacologia , Ensaios de Triagem em Larga Escala , Lisina-tRNA Ligase/antagonistas & inibidores , Lisina/metabolismo , Receptores de Laminina/antagonistas & inibidores , Bibliotecas de Moléculas Pequenas/farmacologia , Motivos de Aminoácidos , Anticódon/química , Anticódon/metabolismo , Antineoplásicos/farmacologia , Sítios de Ligação , Descoberta de Drogas/métodos , Escherichia coli/enzimologia , Escherichia coli/genética , Expressão Gênica , Humanos , Lisina-tRNA Ligase/química , Lisina-tRNA Ligase/genética , Lisina-tRNA Ligase/metabolismo , Ressonância Magnética Nuclear Biomolecular , Ligação Proteica , Domínios e Motivos de Interação entre Proteínas , RNA de Transferência de Lisina/genética , RNA de Transferência de Lisina/metabolismo , Receptores de Laminina/química , Receptores de Laminina/genética , Receptores de Laminina/metabolismo , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Aminoacilação de RNA de Transferência
16.
RNA ; 23(2): 161-168, 2017 02.
Artigo em Inglês | MEDLINE | ID: mdl-27879434

RESUMO

Transfer RNAs (tRNAs) are fundamental adapter components of translational machinery. tRNAs can further serve as a source of tRNA-derived noncoding RNAs that play important roles in various biological processes beyond translation. Among all species of tRNAs, tRNAHisGUG has been known to uniquely contain an additional guanosine residue at the -1 position (G-1) of its 5'-end. To analyze this -1 nucleotide in detail, we developed a TaqMan qRT-PCR method that can distinctively quantify human mature cytoplasmic tRNAHisGUG containing G-1, U-1, A-1, or C-1 or lacking the -1 nucleotide (starting from G1). Application of this method to the mature tRNA fraction of BT-474 breast cancer cells revealed the presence of tRNAHisGUG containing U-1 as well as the one containing G-1 Moreover, tRNA lacking the -1 nucleotide was also detected, thus indicating the heterogeneous expression of 5'-tRNAHisGUG variants. A sequence library of sex hormone-induced 5'-tRNA halves (5'-SHOT-RNAs), identified via cP-RNA-seq of a BT-474 small RNA fraction, also demonstrated the expression of 5'-tRNAHisGUG halves containing G-1, U-1, or G1 as 5'-terminal nucleotides. Although the detected 5'-nucleotide species were identical, the relative abundances differed widely between mature tRNA and 5'-half from the same BT-474 cells. The majority of mature tRNAs contained the -1 nucleotide, whereas the majority of 5'-halves lacked this nucleotide, which was biochemically confirmed using a primer extension assay. These results reveal the novel identities of tRNAHisGUG molecules and provide insights into tRNAHisGUG maturation and the regulation of tRNA half production.


Assuntos
Anticódon/química , Células Epiteliais/metabolismo , Variação Genética , Nucleotídeos/química , RNA de Transferência de Histidina/química , Anticódon/metabolismo , Pareamento de Bases , Linhagem Celular Tumoral , Células Epiteliais/citologia , Humanos , Sequências Repetidas Invertidas , Conformação de Ácido Nucleico , Nucleotídeos/metabolismo , Reação em Cadeia da Polimerase/métodos , RNA de Transferência de Histidina/genética , RNA de Transferência de Histidina/metabolismo , Taq Polimerase/genética , Taq Polimerase/metabolismo
17.
RNA Biol ; 12(8): 900-11, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-26106808

RESUMO

Post-transcriptional modifications bring chemical diversity to tRNAs, especially at positions 34 and 37 of the anticodon stem-loop (ASL). TrmL is the prokaryotic methyltransferase that catalyzes the transfer of the methyl group from S-adenosyl-L-methionine to the wobble base of tRNA(Leu)CAA and tRNA(Leu)UAA isoacceptors. This Cm34/Um34 modification affects codon-anticodon interactions and is essential for translational fidelity. TrmL-catalyzed 2'-O-methylation requires its homodimerization; however, understanding of the tRNA recognition mechanism by TrmL remains elusive. In the current study, by measuring tRNA methylation by TrmL and performing kinetic analysis of tRNA mutants, we found that TrmL exhibits a fine-tuned tRNA substrate recognition mechanism. Anticodon stem-loop minihelices with an extension of 2 base pairs are the minimal substrate for EcTrmL methylation. A35 is a key residue for TrmL recognition, while A36-A37-A38 are important either via direct interaction with TrmL or due to the necessity for prior isopentenylation (i(6)) at A37. In addition, TrmL only methylates pyrimidines but not purine residues at the wobble position, and the 2'-O-methylation relies on prior N(6)-isopentenyladenosine modification at position 37.


Assuntos
Anticódon/genética , Códon/genética , Proteínas de Escherichia coli/genética , Metiltransferases/genética , RNA de Transferência de Leucina/genética , Alcenos/metabolismo , Anticódon/química , Anticódon/metabolismo , Sequência de Bases , Sítios de Ligação/genética , Biocatálise , Códon/química , Códon/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Cinética , Metilação , Metiltransferases/química , Metiltransferases/metabolismo , Modelos Moleculares , Dados de Sequência Molecular , Mutação , Conformação de Ácido Nucleico , Multimerização Proteica , Pirimidinas/metabolismo , RNA de Transferência de Leucina/química , RNA de Transferência de Leucina/metabolismo , S-Adenosilmetionina/metabolismo , Especificidade por Substrato
18.
Cell Biochem Biophys ; 71(3): 1589-603, 2015 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-25388845

RESUMO

Conformational preferences of hypermodified nucleoside 5-taurinomethyluridine 5'-monophoshate 'p-τm(5)U' (-CH2-NH2(+)-CH2-CH2-SO3(-)) have been investigated using semi-empirical RM1 method. Automated geometry optimization using ab initio molecular orbital HF-SCF (6-31G**) and DFT (B3LYP/6-31G**) calculations have also been made to compare the salient features. The RM1 preferred most stable conformation of 'p-τm(5)U' has been stabilized by hydrogen bonding interactions between O(11a)…HN(8), O1P(34)…HN(8), and O1P(34)…HC(10). Another conformational study of 5-taurinomethyluridine side chain has also been performed in context of anticodon loop bases of E. coli tRNA(Leu). The atom O(11a) of τm(5)U(34) side chain interacts with adenosine (A35) as well as ribose-phosphate backbone which might provide structural stability to the anticodon loop. The glycosyl torsion angle of τm(5)U retains 'anti'-conformation. The solvent accessible surface area calculations revealed the role of τm(5)U in tRNA(Leu) anticodon loop. MD simulation results are found in agreement with RM1 preferred stable structure. The MEPs calculations of τm(5)U(34):G3 model show unique potential tunnels between the hydrogen bond donor and acceptor atoms as compared to τm(5)U(34):A3 model. Thus, these results could pave the way to understand the role of τm(5)U(34) to recognize UUG/UUA codons at atomic level in the mitochondrial disease, MELAS.


Assuntos
Anticódon/metabolismo , Conformação Molecular , Uridina/análogos & derivados , Escherichia coli/genética , Ligação de Hidrogênio , Simulação de Dinâmica Molecular , Eletricidade Estática , Uridina/química , Uridina/metabolismo
19.
J Biomol Struct Dyn ; 33(1): 14-27, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-24417415

RESUMO

The mechanism by which proteins recognize and bind the post-transcriptional modifications of RNAs is unknown, yet these interactions play important functions in biology. Atomistic molecular dynamics simulations were performed to examine the folding of the model peptide chain -RVTHHAFLGAHRTVG- and the complex formed by the folded peptide with the native anticodon stem and loop of the human tRNA(Lys3) (hASL(Lys3)) in order to explore the binding mechanism. By analyzing and comparing two folded conformations of this peptide obtained from the folding simulation, we found that the van der Waals (VDW) energy is necessary for the thermal stability of the peptide, and the charge-charge (ELE + EGB) energy is crucial for determining the three-dimensional folded structure of the peptide backbone. Subsequently, two conformations of the peptide were employed to investigate their binding behaviors to hASL(Lys3). The metastable folded peptide was found to bind to hASL(Lys3) much easier than the stable folded peptide in the binding simulations. An energetic analysis reveals that the VDW energy favors the binding, whereas the ELE + EGB energies disfavor the binding. Arginines on the peptide preferentially attract the phosphate backbone via the inter-chain ELE + EGB interaction, significantly contributing to the binding affinity. The hydrophobic phenylalanine interacts with the anticodon loop of hASL(Lys3) via the inter-chain VDW interaction, significantly contributing to the binding specificity.


Assuntos
Anticódon/metabolismo , Simulação por Computador , Peptídeos/metabolismo , RNA de Transferência de Lisina/metabolismo , Algoritmos , Sequência de Aminoácidos , Aminoácidos/química , Aminoácidos/metabolismo , Anticódon/química , Anticódon/genética , Humanos , Modelos Moleculares , Dados de Sequência Molecular , Conformação de Ácido Nucleico , Peptídeos/química , Fenilalanina/química , Fenilalanina/metabolismo , Ligação Proteica , Dobramento de Proteína , Estrutura Secundária de Proteína , Estrutura Terciária de Proteína , RNA de Transferência de Lisina/química , Eletricidade Estática , Termodinâmica
20.
FEBS Lett ; 588(17): 2851-8, 2014 Aug 25.
Artigo em Inglês | MEDLINE | ID: mdl-24983501

RESUMO

Lysyl-tRNA synthetase (KRS) interacts with the laminin receptor (LR/RPSA) and enhances laminin-induced cell migration in cancer metastasis. In this nuclear magnetic resonance (NMR)-based study, we show that the anticodon-binding domain of KRS binds directly to the C-terminal region of 37LRP, and the previously found inhibitors BC-K-01 and BC-K-YH16899 interfere with KRS-37LRP binding. In addition, the anticodon-binding domain of KRS binds to laminin, observed by NMR and SPR. These results provide crucial insights into the structural characteristics of the KRS-LR interaction on the cell surface.


Assuntos
Lisina-tRNA Ligase/metabolismo , Ressonância Magnética Nuclear Biomolecular , Receptores de Laminina/metabolismo , Anticódon/metabolismo , Membrana Celular/metabolismo , Humanos , Lisina-tRNA Ligase/química , Modelos Moleculares , Fragmentos de Peptídeos/metabolismo , Ligação Proteica , Estrutura Terciária de Proteína , Receptores de Laminina/química
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