Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 688
Filter
1.
Nat Commun ; 15(1): 6592, 2024 Aug 03.
Article in English | MEDLINE | ID: mdl-39097611

ABSTRACT

T-box riboswitches are noncoding RNA elements involved in genetic regulation of most Gram-positive bacteria. They regulate amino acid metabolism by assessing the aminoacylation status of tRNA, subsequently affecting the transcription or translation of downstream amino acid metabolism-related genes. Here we present single-molecule FRET studies of the Mycobacterium tuberculosis IleS T-box riboswitch, a paradigmatic translational T-box. Results support a two-step binding model, where the tRNA anticodon is recognized first, followed by interactions with the NCCA sequence. Furthermore, after anticodon recognition, tRNA can transiently dock into the discriminator domain even in the absence of the tRNA NCCA-discriminator interactions. Establishment of the NCCA-discriminator interactions significantly stabilizes the fully bound state. Collectively, the data suggest high conformational flexibility in translational T-box riboswitches; and supports a conformational selection model for NCCA recognition. These findings provide a kinetic framework to understand how specific RNA elements underpin the binding affinity and specificity required for gene regulation.


Subject(s)
Anticodon , Mycobacterium tuberculosis , Nucleic Acid Conformation , RNA, Bacterial , RNA, Transfer , Riboswitch , Riboswitch/genetics , RNA, Transfer/metabolism , RNA, Transfer/genetics , RNA, Transfer/chemistry , Mycobacterium tuberculosis/metabolism , Mycobacterium tuberculosis/genetics , Anticodon/metabolism , Anticodon/genetics , RNA, Bacterial/metabolism , RNA, Bacterial/genetics , RNA, Bacterial/chemistry , Fluorescence Resonance Energy Transfer , Protein Biosynthesis , Gene Expression Regulation, Bacterial , Kinetics
2.
Nat Commun ; 15(1): 5775, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38982125

ABSTRACT

The epitranscriptome includes a diversity of RNA modifications that influence gene expression. N3-methylcytidine (m3C) mainly occurs in the anticodon loop (position C32) of certain tRNAs yet its role is poorly understood. Here, using HAC-Seq, we report comprehensive METTL2A/2B-, METTL6-, and METTL2A/2B/6-dependent m3C profiles in human cells. METTL2A/2B modifies tRNA-arginine and tRNA-threonine members, whereas METTL6 modifies the tRNA-serine family. However, decreased m3C32 on tRNA-Ser-GCT isodecoders is only observed with combined METTL2A/2B/6 deletion. Ribo-Seq reveals altered translation of genes related to cell cycle and DNA repair pathways in METTL2A/2B/6-deficient cells, and these mRNAs are enriched in AGU codons that require tRNA-Ser-GCT for translation. These results, supported by reporter assays, help explain the observed altered cell cycle, slowed proliferation, and increased cisplatin sensitivity phenotypes of METTL2A/2B/6-deficient cells. Thus, we define METTL2A/2B/6-dependent methylomes and uncover a particular requirement of m3C32 tRNA modification for serine codon-biased mRNA translation of cell cycle, and DNA repair genes.


Subject(s)
Cell Cycle , Codon , DNA Damage , Protein Biosynthesis , RNA, Messenger , RNA, Transfer , Serine , Humans , Cell Cycle/genetics , Codon/genetics , RNA, Messenger/metabolism , RNA, Messenger/genetics , RNA, Transfer/genetics , RNA, Transfer/metabolism , Serine/metabolism , Methyltransferases/metabolism , Methyltransferases/genetics , Cytidine/analogs & derivatives , Cytidine/metabolism , Cytidine/genetics , DNA Repair , HEK293 Cells , Anticodon/genetics
3.
Int J Mol Sci ; 25(11)2024 May 29.
Article in English | MEDLINE | ID: mdl-38892101

ABSTRACT

The central dogma treats the ribosome as a molecular machine that reads one mRNA codon at a time as it adds each amino acid to its growing peptide chain. However, this and previous studies suggest that ribosomes actually perceive pairs of adjacent codons as they take three-nucleotide steps along the mRNA. We examined GNN codons, which we find are surprisingly overrepresented in eukaryote protein-coding open reading frames (ORFs), especially immediately after NNU codons. Ribosome profiling experiments in yeast revealed that ribosomes with NNU at their aminoacyl (A) site have particularly elevated densities when NNU is immediately followed (3') by a GNN codon, indicating slower mRNA threading of the NNU codon from the ribosome's A to peptidyl (P) sites. Moreover, if the assessment was limited to ribosomes that have only recently arrived at the next codon, by examining 21-nucleotide ribosome footprints (21-nt RFPs), elevated densities were observed for multiple codon classes when followed by GNN. This striking translation slowdown at adjacent 5'-NNN GNN codon pairs is likely mediated, in part, by the ribosome's CAR surface, which acts as an extension of the A-site tRNA anticodon during ribosome translocation and interacts through hydrogen bonding and pi stacking with the GNN codon. The functional consequences of 5'-NNN GNN codon adjacency are expected to influence the evolution of protein coding sequences.


Subject(s)
Codon , Open Reading Frames , Protein Biosynthesis , RNA, Messenger , Ribosomes , Codon/genetics , Ribosomes/metabolism , Ribosomes/genetics , Open Reading Frames/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Transfer/genetics , RNA, Transfer/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Anticodon/genetics
4.
Genome Biol Evol ; 16(6)2024 06 04.
Article in English | MEDLINE | ID: mdl-38805023

ABSTRACT

The genetic code consists of 61 codons coding for 20 amino acids. These codons are recognized by transfer RNAs (tRNAs) that bind to specific codons during protein synthesis. All organisms utilize less than all 61 possible anticodons due to base pair wobble: the ability to have a mismatch with a codon at its third nucleotide. Previous studies observed a correlation between the tRNA pool of bacteria and the temperature of their respective environments. However, it is unclear if these patterns represent biological adaptations to maintain the efficiency and accuracy of protein synthesis in different environments. A mechanistic mathematical model of mRNA translation is used to quantify the expected elongation rates and error rate for each codon based on an organism's tRNA pool. A comparative analysis across a range of bacteria that accounts for covariance due to shared ancestry is performed to quantify the impact of environmental temperature on the evolution of the tRNA pool. We find that thermophiles generally have more anticodons represented in their tRNA pool than mesophiles or psychrophiles. Based on our model, this increased diversity is expected to lead to increased missense errors. The implications of this for protein evolution in thermophiles are discussed.


Subject(s)
Bacteria , Evolution, Molecular , RNA, Transfer , Temperature , RNA, Transfer/genetics , Bacteria/genetics , Codon , RNA, Bacterial/genetics , Anticodon/genetics , Protein Biosynthesis , Models, Genetic , Genetic Code
5.
Nat Commun ; 15(1): 4143, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38755134

ABSTRACT

The Ser/Leu-swapped genetic code can act as a genetic firewall, mitigating biohazard risks arising from horizontal gene transfer in genetically modified organisms. Our prior work demonstrated the orthogonality of this swapped code to the standard genetic code using a cell-free translation system comprised of 21 in vitro transcribed tRNAs. In this study, to advance this system for protein engineering, we introduce a natural/in vitro transcribed-hybrid tRNA set. This set combines natural tRNAs from Escherichia coli (excluding Ser, Leu, and Tyr) and in vitro transcribed tRNAs, encompassing anticodon-swapped tRNASerGAG and tRNALeuGGA. This approach reduces the number of in vitro transcribed tRNAs required from 21 to only 4. In this optimized system, the production of a model protein, superfolder green fluorescent protein, increases to 3.5-fold. With this hybrid tRNA set, the Ser/Leu-swapped cell-free translation system will stand as a potent tool for protein production with reduced biohazard concerns in future biological endeavors.


Subject(s)
Cell-Free System , Escherichia coli , Protein Biosynthesis , Escherichia coli/genetics , Escherichia coli/metabolism , RNA, Transfer, Leu/genetics , RNA, Transfer, Leu/metabolism , RNA, Transfer, Ser/metabolism , RNA, Transfer, Ser/genetics , Genetic Code , RNA, Transfer/genetics , RNA, Transfer/metabolism , Green Fluorescent Proteins/metabolism , Green Fluorescent Proteins/genetics , Protein Engineering/methods , Transcription, Genetic , Anticodon/genetics , Anticodon/metabolism
6.
Nature ; 630(8017): 769-776, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38718836

ABSTRACT

Angiogenin, an RNase-A-family protein, promotes angiogenesis and has been implicated in cancer, neurodegenerative diseases and epigenetic inheritance1-10. After activation during cellular stress, angiogenin cleaves tRNAs at the anticodon loop, resulting in translation repression11-15. However, the catalytic activity of isolated angiogenin is very low, and the mechanisms of the enzyme activation and tRNA specificity have remained a puzzle3,16-23. Here we identify these mechanisms using biochemical assays and cryogenic electron microscopy (cryo-EM). Our study reveals that the cytosolic ribosome is the activator of angiogenin. A cryo-EM structure features angiogenin bound in the A site of the 80S ribosome. The C-terminal tail of angiogenin is rearranged by interactions with the ribosome to activate the RNase catalytic centre, making the enzyme several orders of magnitude more efficient in tRNA cleavage. Additional 80S-angiogenin structures capture how tRNA substrate is directed by the ribosome into angiogenin's active site, demonstrating that the ribosome acts as the specificity factor. Our findings therefore suggest that angiogenin is activated by ribosomes with a vacant A site, the abundance of which increases during cellular stress24-27. These results may facilitate the development of therapeutics to treat cancer and neurodegenerative diseases.


Subject(s)
Cryoelectron Microscopy , Ribonuclease, Pancreatic , Ribosomes , Humans , Anticodon/chemistry , Anticodon/genetics , Anticodon/metabolism , Anticodon/ultrastructure , Catalytic Domain , Cytosol/metabolism , Enzyme Activation , Models, Molecular , Ribonuclease, Pancreatic/chemistry , Ribonuclease, Pancreatic/metabolism , Ribonuclease, Pancreatic/ultrastructure , Ribosomes/metabolism , Ribosomes/chemistry , Ribosomes/ultrastructure , RNA Cleavage , RNA, Transfer/chemistry , RNA, Transfer/metabolism , Substrate Specificity , Binding Sites , Stress, Physiological
7.
RNA ; 30(8): 1025-1040, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-38684317

ABSTRACT

RNA modifications have a substantial impact on tRNA function, with modifications in the anticodon loop contributing to translational fidelity and modifications in the tRNA core impacting structural stability. In bacteria, tRNA modifications are crucial for responding to stress and regulating the expression of virulence factors. Although tRNA modifications are well-characterized in a few model organisms, our knowledge of tRNA modifications in human pathogens, such as Pseudomonas aeruginosa, remains limited. Here, we leveraged two orthogonal approaches to build a reference landscape of tRNA modifications in Escherichia coli, which enabled us to identify similar modifications in P. aeruginosa Our analysis supports a substantial degree of conservation between the two organisms, while also uncovering potential sites of tRNA modification in P. aeruginosa tRNAs that are not present in E. coli The mutational signature at one of these sites, position 46 of tRNAGln1(UUG) is dependent on the P. aeruginosa homolog of TapT, the enzyme responsible for the 3-(3-amino-3-carboxypropyl) uridine (acp3U) modification. Identifying which modifications are present on different tRNAs will uncover the pathways impacted by the different tRNA-modifying enzymes, some of which play roles in determining virulence and pathogenicity.


Subject(s)
Escherichia coli , Pseudomonas aeruginosa , RNA, Transfer , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/metabolism , RNA, Transfer/genetics , RNA, Transfer/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , RNA Processing, Post-Transcriptional , Anticodon/genetics , Anticodon/metabolism , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , RNA, Bacterial/chemistry , Nucleic Acid Conformation
8.
Nucleic Acids Res ; 52(11): 6586-6595, 2024 Jun 24.
Article in English | MEDLINE | ID: mdl-38572748

ABSTRACT

Ribosomal incorporation of ß-amino acids into nascent peptides is much less efficient than that of the canonical α-amino acids. To overcome this, we have engineered a tRNA chimera bearing T-stem of tRNAGlu and D-arm of tRNAPro1, referred to as tRNAPro1E2, which efficiently recruits EF-Tu and EF-P. Using tRNAPro1E2 indeed improved ß-amino acid incorporation. However, multiple/consecutive incorporations of ß-amino acids are still detrimentally poor. Here, we attempted fine-tuning of the anticodon arm of tRNAPro1E2 aiming at further enhancement of ß-amino acid incorporation. By screening various mutations introduced into tRNAPro1E2, C31G39/C28G42 mutation showed an approximately 3-fold enhancement of two consecutive incorporation of ß-homophenylglycine (ßPhg) at CCG codons. The use of this tRNA made it possible for the first time to elongate up to ten consecutive ßPhg's. Since the enhancement effect of anticodon arm mutations differs depending on the codon used for ß-amino acid incorporation, we optimized anticodon arm sequences for five codons (CCG, CAU, CAG, ACU and UGG). Combination of the five optimal tRNAs for these codons made it possible to introduce five different kinds of ß-amino acids and analogs simultaneously into model peptides, including a macrocyclic scaffold. This strategy would enable ribosomal synthesis of libraries of macrocyclic peptides containing multiple ß-amino acids.


Subject(s)
Amino Acids , Anticodon , Anticodon/genetics , Anticodon/chemistry , Amino Acids/chemistry , Amino Acids/genetics , RNA, Transfer/genetics , RNA, Transfer/chemistry , RNA, Transfer/metabolism , Mutation , Codon/genetics , Ribosomes/metabolism , Ribosomes/genetics , Protein Biosynthesis , RNA, Transfer, Pro/genetics , RNA, Transfer, Pro/metabolism , RNA, Transfer, Pro/chemistry , Nucleic Acid Conformation , Peptide Elongation Factor Tu/genetics , Peptide Elongation Factor Tu/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism
9.
RNA Biol ; 21(1): 1-23, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38629491

ABSTRACT

Translation fidelity relies on accurate aminoacylation of transfer RNAs (tRNAs) by aminoacyl-tRNA synthetases (AARSs). AARSs specific for alanine (Ala), leucine (Leu), serine, and pyrrolysine do not recognize the anticodon bases. Single nucleotide anticodon variants in their cognate tRNAs can lead to mistranslation. Human genomes include both rare and more common mistranslating tRNA variants. We investigated three rare human tRNALeu variants that mis-incorporate Leu at phenylalanine or tryptophan codons. Expression of each tRNALeu anticodon variant in neuroblastoma cells caused defects in fluorescent protein production without significantly increased cytotoxicity under normal conditions or in the context of proteasome inhibition. Using tRNA sequencing and mass spectrometry we confirmed that each tRNALeu variant was expressed and generated mistranslation with Leu. To probe the flexibility of the entire genetic code towards Leu mis-incorporation, we created 64 yeast strains to express all possible tRNALeu anticodon variants in a doxycycline-inducible system. While some variants showed mild or no growth defects, many anticodon variants, enriched with G/C at positions 35 and 36, including those replacing Leu for proline, arginine, alanine, or glycine, caused dramatic reductions in growth. Differential phenotypic defects were observed for tRNALeu mutants with synonymous anticodons and for different tRNALeu isoacceptors with the same anticodon. A comparison to tRNAAla anticodon variants demonstrates that Ala mis-incorporation is more tolerable than Leu at nearly every codon. The data show that the nature of the amino acid substitution, the tRNA gene, and the anticodon are each important factors that influence the ability of cells to tolerate mistranslating tRNAs.


Subject(s)
Amino Acyl-tRNA Synthetases , Saccharomyces cerevisiae , Animals , Humans , Saccharomyces cerevisiae/genetics , Anticodon/genetics , Leucine/genetics , RNA, Transfer, Leu/genetics , Genetic Code , Codon , RNA, Transfer/genetics , Amino Acyl-tRNA Synthetases/genetics , Amino Acyl-tRNA Synthetases/metabolism , Alanine/genetics , Mammals/genetics
10.
Biosystems ; 239: 105217, 2024 May.
Article in English | MEDLINE | ID: mdl-38663520

ABSTRACT

I analyzed all the theories and models of the origin of the genetic code, and over the years, I have considered the main suggestions that could explain this origin. The conclusion of this analysis is that the coevolution theory of the origin of the genetic code is the theory that best captures the majority of observations concerning the organization of the genetic code. In other words, the biosynthetic relationships between amino acids would have heavily influenced the origin of the organization of the genetic code, as supported by the coevolution theory. Instead, the presence in the genetic code of physicochemical properties of amino acids, which have also been linked to the physicochemical properties of anticodons or codons or bases by stereochemical and physicochemical theories, would simply be the result of natural selection. More explicitly, I maintain that these correlations between codons, anticodons or bases and amino acids are in fact the result not of a real correlation between amino acids and codons, for example, but are only the effect of the intervention of natural selection. Specifically, in the genetic code table we expect, for example, that the most similar codons - that is, those that differ by only one base - will have more similar physicochemical properties. Therefore, the 64 codons of the genetic code table ordered in a certain way would also represent an ordering of some of their physicochemical properties. Now, a study aimed at clarifying which physicochemical property of amino acids has influenced the allocation of amino acids in the genetic code has established that the partition energy of amino acids has played a role decisive in this. Indeed, under some conditions, the genetic code was found to be approximately 98% optimized on its columns. In this same work, it was shown that this was most likely the result of the action of natural selection. If natural selection had truly allocated the amino acids in the genetic code in such a way that similar amino acids also have similar codons - this, not through a mechanism of physicochemical interaction between, for example, codons and amino acids - then it might turn out that even different physicochemical properties of codons (or anticodons or bases) show some correlation with the physicochemical properties of amino acids, simply because the partition energy of amino acids is correlated with other physicochemical properties of amino acids. It is very likely that this would inevitably lead to a correlation between codons (or anticodons or bases) and amino acids. In other words, since the codons (anticodons or bases) are ordered in the genetic code, that is to say, some of their physicochemical properties should also be ordered by a similar order, and given that the amino acids would also appear to have been ordered in the genetic code by selection natural, then it should inevitably turn out that there is a correlation between, for example, the hydrophobicity of anticodons and that of amino acids. Instead, the intervention of natural selection in organizing the genetic code would appear to be highly compatible with the main mechanism of structuring the genetic code as supported by the coevolution theory. This would make the coevolution theory the only plausible explanation for the origin of the genetic code.


Subject(s)
Amino Acids , Codon , Evolution, Molecular , Genetic Code , Selection, Genetic , Genetic Code/genetics , Amino Acids/genetics , Amino Acids/chemistry , Codon/genetics , Models, Genetic , Anticodon/genetics , Humans , Animals
11.
Sci Adv ; 10(17): eadl0164, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38657076

ABSTRACT

Type VI CRISPR-Cas systems are among the few CRISPR varieties that target exclusively RNA. The CRISPR RNA-guided, sequence-specific binding of target RNAs, such as phage transcripts, activates the type VI effector, Cas13. Once activated, Cas13 causes collateral RNA cleavage, which induces bacterial cell dormancy, thus protecting the host population from the phage spread. We show here that the principal form of collateral RNA degradation elicited by Leptotrichia shahii Cas13a expressed in Escherichia coli cells is the cleavage of anticodons in a subset of transfer RNAs (tRNAs) with uridine-rich anticodons. This tRNA cleavage is accompanied by inhibition of protein synthesis, thus providing defense from the phages. In addition, Cas13a-mediated tRNA cleavage indirectly activates the RNases of bacterial toxin-antitoxin modules cleaving messenger RNA, which could provide a backup defense. The mechanism of Cas13a-induced antiphage defense resembles that of bacterial anticodon nucleases, which is compatible with the hypothesis that type VI effectors evolved from an abortive infection module encompassing an anticodon nuclease.


Subject(s)
Anticodon , CRISPR-Cas Systems , Escherichia coli , RNA, Transfer , RNA, Transfer/genetics , RNA, Transfer/metabolism , Anticodon/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Leptotrichia/genetics , Leptotrichia/metabolism , CRISPR-Associated Proteins/metabolism , CRISPR-Associated Proteins/genetics , Bacteriophages/genetics , RNA Cleavage
12.
J Am Chem Soc ; 146(18): 12857-12863, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38676654

ABSTRACT

The ribosome brings 3'-aminoacyl-tRNA and 3'-peptidyl-tRNAs together to enable peptidyl transfer by binding them in two major ways. First, their anticodon loops are bound to mRNA, itself anchored at the ribosomal subunit interface, by contiguous anticodon:codon pairing augmented by interactions with the decoding center of the small ribosomal subunit. Second, their acceptor stems are bound by the peptidyl transferase center, which aligns the 3'-aminoacyl- and 3'-peptidyl-termini for optimal interaction of the nucleophilic amino group and electrophilic ester carbonyl group. Reasoning that intrinsic codon:anticodon binding might have been a major contributor to bringing tRNA 3'-termini into proximity at an early stage of ribosomal peptide synthesis, we wondered if primordial amino acids might have been assigned to those codons that bind the corresponding anticodon loops most tightly. By measuring the binding of anticodon stem loops to short oligonucleotides, we determined that family-box codon:anticodon pairings are typically tighter than split-box codon:anticodon pairings. Furthermore, we find that two family-box anticodon stem loops can tightly bind a pair of contiguous codons simultaneously, whereas two split-box anticodon stem loops cannot. The amino acids assigned to family boxes correspond to those accessible by what has been termed cyanosulfidic chemistry, supporting the contention that these limited amino acids might have been the first used in primordial coded peptide synthesis.


Subject(s)
Amino Acids , Anticodon , Codon , Anticodon/chemistry , Anticodon/genetics , Amino Acids/chemistry , Codon/chemistry , Codon/genetics , Ribosomes/metabolism , Ribosomes/chemistry , Binding Sites , Models, Molecular
13.
Genes (Basel) ; 15(3)2024 03 19.
Article in English | MEDLINE | ID: mdl-38540433

ABSTRACT

Transfer RNAs (tRNAs) are heavily decorated with post-transcriptional chemical modifications. Approximately 100 different modifications have been identified in tRNAs, and each tRNA typically contains 5-15 modifications that are incorporated at specific sites along the tRNA sequence. These modifications may be classified into two groups according to their position in the three-dimensional tRNA structure, i.e., modifications in the tRNA core and modifications in the anticodon-loop (ACL) region. Since many modified nucleotides in the tRNA core are involved in the formation of tertiary interactions implicated in tRNA folding, these modifications are key to tRNA stability and resistance to RNA decay pathways. In comparison to the extensively studied ACL modifications, tRNA core modifications have generally received less attention, although they have been shown to play important roles beyond tRNA stability. Here, we review and place in perspective selected data on tRNA core modifications. We present their impact on tRNA structure and stability and report how these changes manifest themselves at the functional level in translation, fitness and stress adaptation.


Subject(s)
Anticodon , RNA, Transfer , Anticodon/genetics , RNA, Transfer/metabolism , Nucleotides , RNA Processing, Post-Transcriptional
14.
Nucleic Acids Res ; 52(7): 3938-3949, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38477328

ABSTRACT

In the hypothetical RNA world, ribozymes could have acted as modern aminoacyl-tRNA synthetases (ARSs) to charge tRNAs, thus giving rise to the peptide synthesis along with the evolution of a primitive translation apparatus. We previously reported a T-boxzyme, Tx2.1, which selectively charges initiator tRNA with N-biotinyl-phenylalanine (BioPhe) in situ in a Flexible In-vitro Translation (FIT) system to produce BioPhe-initiating peptides. Here, we performed in vitro selection of elongation-capable T-boxzymes (elT-boxzymes), using para-azido-l-phenylalanine (PheAZ) as an acyl-donor. We implemented a new strategy to enrich elT-boxzyme-tRNA conjugates that self-aminoacylated on the 3'-terminus selectively. One of them, elT32, can charge PheAZ onto tRNA in trans in response to its cognate anticodon. Further evolution of elT32 resulted in elT49, with enhanced aminoacylation activity. We have demonstrated the translation of a PheAZ-containing peptide in an elT-boxzyme-integrated FIT system, revealing that elT-boxzymes are able to generate the PheAZ-tRNA in response to the cognate anticodon in situ of a custom-made translation system. This study, together with Tx2.1, illustrates a scenario where a series of ribozymes could have overseen aminoacylation and co-evolved with a primitive RNA-based translation system.


Subject(s)
Anticodon , Protein Biosynthesis , RNA, Catalytic , RNA, Transfer, Amino Acyl , RNA, Catalytic/metabolism , RNA, Catalytic/genetics , Anticodon/genetics , RNA, Transfer, Amino Acyl/metabolism , RNA, Transfer, Amino Acyl/genetics , Phenylalanine/metabolism , Phenylalanine/analogs & derivatives , Amino Acyl-tRNA Synthetases/metabolism , Amino Acyl-tRNA Synthetases/genetics , Transfer RNA Aminoacylation , Aminoacylation , Peptide Chain Elongation, Translational
15.
RNA ; 30(3): 213-222, 2024 Feb 16.
Article in English | MEDLINE | ID: mdl-38164607

ABSTRACT

Certain positive-sense single-stranded RNA viruses contain elements at their 3' termini that structurally mimic tRNAs. These tRNA-like structures (TLSs) are classified based on which amino acid is covalently added to the 3' end by host aminoacyl-tRNA synthetase. Recently, a cryoEM reconstruction of a representative tyrosine-accepting tRNA-like structure (TLSTyr) from brome mosaic virus (BMV) revealed a unique mode of recognition of the viral anticodon-mimicking domain by tyrosyl-tRNA synthetase. Some viruses in the hordeivirus genus of Virgaviridae are also selectively aminoacylated with tyrosine, yet these TLS RNAs have a different architecture in the 5' domain that comprises the atypical anticodon loop mimic. Herein, we present bioinformatic and biochemical data supporting a distinct secondary structure for the 5' domain of the hordeivirus TLSTyr compared to those in Bromoviridae Despite forming a different secondary structure, the 5' domain is necessary to achieve robust in vitro aminoacylation. Furthermore, a chimeric RNA containing the 5' domain from the BMV TLSTyr and the 3' domain from a hordeivirus TLSTyr are aminoacylated, illustrating modularity in these structured RNA elements. We propose that the structurally distinct 5' domain of the hordeivirus TLSTyrs performs the same role in mimicking the anticodon loop as its counterpart in the BMV TLSTyr Finally, these structurally and phylogenetically divergent types of TLSTyr provide insight into the evolutionary connections between all classes of viral tRNA-like structures.


Subject(s)
Bromovirus , RNA Viruses , Tyrosine-tRNA Ligase , Base Sequence , Anticodon/genetics , RNA, Viral/chemistry , RNA, Transfer/chemistry , Bromovirus/genetics , Bromovirus/metabolism , RNA Viruses/genetics , Tyrosine-tRNA Ligase/genetics , Tyrosine-tRNA Ligase/chemistry , Tyrosine-tRNA Ligase/metabolism , Tyrosine/genetics , Tyrosine/metabolism , Nucleic Acid Conformation
16.
Nucleic Acids Res ; 52(3): 1374-1386, 2024 Feb 09.
Article in English | MEDLINE | ID: mdl-38050960

ABSTRACT

tRNA superwobbling, used by certain bacteria and organelles, is an intriguing decoding concept in which a single tRNA isoacceptor is used to decode all synonymous codons of a four-fold degenerate codon box. While Escherichia coli relies on three tRNAGly isoacceptors to decode the four glycine codons (GGN), Mycoplasma mycoides requires only a single tRNAGly. Both organisms express tRNAGly with the anticodon UCC, which are remarkably similar in sequence but different in their decoding ability. By systematically introducing mutations and altering the number and type of tRNA modifications using chemically synthesized tRNAs, we elucidated the contribution of individual nucleotides and chemical groups to decoding by the E. coli and M. mycoides tRNAGly. The tRNA sequence was identified as the key factor for superwobbling, revealing the T-arm sequence as a novel pivotal element. In addition, the presence of tRNA modifications, although not essential for providing superwobbling, was shown to delicately fine-tune and balance the decoding of synonymous codons. This emphasizes that the tRNA sequence and its modifications together form an intricate system of high complexity that is indispensable for accurate and efficient decoding.


Subject(s)
Escherichia coli , Mycoplasma mycoides , RNA, Bacterial , RNA, Transfer, Gly , Anticodon/genetics , Base Sequence , Codon/genetics , Escherichia coli/genetics , Glycine/genetics , RNA, Transfer/genetics , RNA, Transfer, Gly/genetics , Mycoplasma mycoides/genetics , Mycoplasma mycoides/metabolism , RNA, Bacterial/genetics
17.
Biosystems ; 235: 105102, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38092331

ABSTRACT

Analyzing the codon usage frequencies of a specimen of 20 plants, for which the codon-anticodon pattern is known, we have remarked that the hierarchy of the usage frequencies present an almost "universal" behavior. Searching to explain this behavior, we assume that the codon usage probability results from the sum of two contributions: the first dominant term is an almost "universal" one and it depends on the codon-anticodon interaction; the second term is a local one, i.e. depends on the biological species. The codon-anticodon interaction is written as a spin-spin plus a z-spin term in the formalism of the crystal basis model. From general considerations, in particular from the choice of the signs and some constraints on the parameters defining the interaction, we are able to explain most of the observed data.


Subject(s)
Anticodon , RNA, Transfer , Anticodon/genetics , Codon Usage , Codon/genetics
18.
Nature ; 625(7994): 393-400, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38030725

ABSTRACT

One of the most critical steps of protein synthesis is coupled translocation of messenger RNA (mRNA) and transfer RNAs (tRNAs) required to advance the mRNA reading frame by one codon. In eukaryotes, translocation is accelerated and its fidelity is maintained by elongation factor 2 (eEF2)1,2. At present, only a few snapshots of eukaryotic ribosome translocation have been reported3-5. Here we report ten high-resolution cryogenic-electron microscopy (cryo-EM) structures of the elongating eukaryotic ribosome bound to the full translocation module consisting of mRNA, peptidyl-tRNA and deacylated tRNA, seven of which also contained ribosome-bound, naturally modified eEF2. This study recapitulates mRNA-tRNA2-growing peptide module progression through the ribosome, from the earliest states of eEF2 translocase accommodation until the very late stages of the process, and shows an intricate network of interactions preventing the slippage of the translational reading frame. We demonstrate how the accuracy of eukaryotic translocation relies on eukaryote-specific elements of the 80S ribosome, eEF2 and tRNAs. Our findings shed light on the mechanism of translation arrest by the anti-fungal eEF2-binding inhibitor, sordarin. We also propose that the sterically constrained environment imposed by diphthamide, a conserved eukaryotic posttranslational modification in eEF2, not only stabilizes correct Watson-Crick codon-anticodon interactions but may also uncover erroneous peptidyl-tRNA, and therefore contribute to higher accuracy of protein synthesis in eukaryotes.


Subject(s)
Eukaryotic Cells , Protein Biosynthesis , RNA, Messenger , Reading Frames , Ribosomes , Anticodon/genetics , Anticodon/metabolism , Codon/genetics , Codon/metabolism , Cryoelectron Microscopy , Eukaryotic Cells/chemistry , Eukaryotic Cells/metabolism , Eukaryotic Cells/ultrastructure , Peptide Elongation Factor 2/antagonists & inhibitors , Peptide Elongation Factor 2/metabolism , Reading Frames/genetics , Ribosomes/chemistry , Ribosomes/metabolism , Ribosomes/ultrastructure , RNA, Messenger/chemistry , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Transfer/chemistry , RNA, Transfer/genetics , RNA, Transfer/metabolism
19.
Acc Chem Res ; 56(23): 3504-3514, 2023 12 05.
Article in English | MEDLINE | ID: mdl-37992267

ABSTRACT

As part of the classic central dogma of molecular biology, transfer RNAs (tRNAs) are integral to protein translation as the adaptor molecules that link the genetic code in messenger RNA (mRNA) to the amino acids in the growing peptide chain. tRNA function is complicated by the existence of 61 codons to specify 20 amino acids, with most amino acids coded by two or more synonymous codons. Further, there are often fewer tRNAs with unique anticodons than there are synonymous codons for an amino acid, with a single anticodon able to decode several codons by "wobbling" of the base pairs arising between the third base of the codon and the first position on the anticodon. The complications introduced by synonymous codons and wobble base pairing began to resolve in the 1960s with the discovery of dozens of chemical modifications of the ribonucleotides in tRNA, which, by analogy to the epigenome, are now collectively referred to as the epitranscriptome for not changing the genetic code inherent to all RNA sequences. tRNA modifications were found to stabilize codon-anticodon interactions, prevent misinitiation of translation, and promote translational fidelity, among other functions, with modification deficiencies causing pathological phenotypes. This led to hypotheses that modification-dependent tRNA decoding efficiencies might play regulatory roles in cells. However, it was only with the advent of systems biology and convergent "omic" technologies that the higher level function of synonymous codons and tRNA modifications began to emerge.Here, we describe our laboratories' discovery of tRNA reprogramming and codon-biased translation as a mechanism linking tRNA modifications and synonymous codon usage to regulation of gene expression at the level of translation. Taking a historical approach, we recount how we discovered that the 8-10 modifications in each tRNA molecule undergo unique reprogramming in response to cellular stresses to promote translation of mRNA transcripts with unique codon usage patterns. These modification tunable transcripts (MoTTs) are enriched with specific codons that are differentially decoded by modified tRNAs and that fall into functional families of genes encoding proteins necessary to survive the specific stress. By developing and applying systems-level technologies, we showed that cells lacking specific tRNA modifications are sensitized to certain cellular stresses by mistranslation of proteins, disruption of mitochondrial function, and failure to translate critical stress response proteins. In essence, tRNA reprogramming serves as a cellular coping strategy, enabling rapid translation of proteins required for stress-specific cell response programs. Notably, this phenomenon has now been characterized in all organisms from viruses to humans and in response to all types of environmental changes. We also elaborate on recent findings that cancer cells hijack this mechanism to promote their own growth, metastasis, and chemotherapeutic resistance. We close by discussing how understanding of codon-biased translation in various systems can be exploited to develop new therapeutics and biomanufacturing processes.


Subject(s)
Anticodon , Codon Usage , Humans , Anticodon/genetics , Protein Biosynthesis , Heat-Shock Proteins/genetics , Heat-Shock Proteins/metabolism , RNA, Transfer/genetics , RNA, Transfer/metabolism , Codon/genetics , Amino Acids/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism
20.
RNA ; 30(1): 37-51, 2023 Dec 18.
Article in English | MEDLINE | ID: mdl-37907335

ABSTRACT

Protein synthesis on the ribosome involves successive rapid recruitment of cognate aminoacyl-tRNAs and rejection of the much more numerous incorrect near- or non-cognates. The principal feature of translation elongation is that at every step, many incorrect aa-tRNAs unsuccessfully enter the A site for each cognate accepted. Normal levels of translational accuracy require that cognate tRNAs have relatively similar acceptance rates by the ribosome. To achieve that, tRNAs evolved to compensate for differences in amino acid properties and codon-anticodon strength that affect acceptance. Part of that response involved tRNA posttranscriptional modifications, which can affect tRNA decoding efficiency, accuracy, and structural stability. The most intensively modified regions of the tRNA are the anticodon loop and structural core of the tRNA. Anticodon loop modifications directly affect codon-anticodon pairing and therefore modulate accuracy. Core modifications have been thought to ensure consistent decoding rates principally by stabilizing tRNA structure to avoid degradation; however, degradation due to instability appears to only be a significant issue above normal growth temperatures. We suspected that the greater role of modification at normal temperatures might be to tune tRNAs to maintain consistent intrinsic rates of acceptance and peptide transfer and that hypomodification by altering these rates might degrade the process of discrimination, leading to increased translational errors. Here, we present evidence that most tRNA core modifications do modulate the frequency of misreading errors, suggesting that the need to maintain accuracy explains their deep evolutionary conservation.


Subject(s)
Anticodon , RNA, Transfer , Anticodon/genetics , Anticodon/metabolism , RNA, Transfer/chemistry , Protein Biosynthesis , Codon/genetics , Codon/metabolism , Ribosomes/metabolism
SELECTION OF CITATIONS
SEARCH DETAIL