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1.
J Biol Chem ; 298(3): 101657, 2022 03.
Artigo em Inglês | MEDLINE | ID: mdl-35131263

RESUMO

A wide range of bacteria possess virulence factors such as aminoacyl-tRNA transferases (ATTs) that are capable of rerouting aminoacyl-transfer RNAs away from protein synthesis to conjugate amino acids onto glycerolipids. We recently showed that, although these pathways were thought to be restricted to bacteria, higher fungi also possess ergosteryl-3ß-O-L-aspartate synthases (ErdSs), which transfer the L-Asp moiety of aspartyl-tRNAAsp onto the 3ß-OH group of ergosterol (Erg), yielding ergosteryl-3ß-O-L-aspartate (Erg-Asp). Here, we report the discovery, in fungi, of a second type of fungal sterol-specific ATTs, namely, ergosteryl-3ß-O-glycine (Erg-Gly) synthase (ErgS). ErgS consists of a freestanding DUF2156 domain encoded by a gene distinct from and paralogous to that of ErdS. We show that the enzyme only uses Gly-tRNAGly produced by an independent glycyl-tRNA synthetase (GlyRS) to transfer glycine onto the 3ß-OH of Erg, producing Erg-Gly. Phylogenomics analysis also show that the Erg-Gly synthesis pathway exists only in Ascomycota, including species of biotechnological interest, and more importantly, in human pathogens, such as Aspergillus fumigatus. The discovery of a second type of Erg-aa not only expands the repertoire of this particular class of fungal lipids but suggests that Erg-aa synthases might constitute a genuine subfamily of lipid-modifying ATTs.


Assuntos
Ascomicetos , Ergosterol , Glicina , Aminoácidos , Ascomicetos/genética , Ascomicetos/metabolismo , Ácido Aspártico , Glicina/biossíntese , Glicina/genética , Glicina/metabolismo , Humanos , RNA Fúngico/genética , RNA Fúngico/metabolismo , Aminoacil-RNA de Transferência/genética , Aminoacil-RNA de Transferência/metabolismo
2.
Proc Natl Acad Sci U S A ; 117(26): 14948-14957, 2020 06 30.
Artigo em Inglês | MEDLINE | ID: mdl-32541034

RESUMO

Diverting aminoacyl-transfer RNAs (tRNAs) from protein synthesis is a well-known process used by a wide range of bacteria to aminoacylate membrane constituents. By tRNA-dependently adding amino acids to glycerolipids, bacteria change their cell surface properties, which intensifies antimicrobial drug resistance, pathogenicity, and virulence. No equivalent aminoacylated lipids have been uncovered in any eukaryotic species thus far, suggesting that tRNA-dependent lipid remodeling is a process restricted to prokaryotes. We report here the discovery of ergosteryl-3ß-O-l-aspartate (Erg-Asp), a conjugated sterol that is produced by the tRNA-dependent addition of aspartate to the 3ß-OH group of ergosterol, the major sterol found in fungal membranes. In fact, Erg-Asp exists in the majority of "higher" fungi, including species of biotechnological interest, and, more importantly, in human pathogens like Aspergillus fumigatus We show that a bifunctional enzyme, ergosteryl-3ß-O-l-aspartate synthase (ErdS), is responsible for Erg-Asp synthesis. ErdS corresponds to a unique fusion of an aspartyl-tRNA synthetase-that produces aspartyl-tRNAAsp (Asp-tRNAAsp)-and of a Domain of Unknown Function 2156, which actually transfers aspartate from Asp-tRNAAsp onto ergosterol. We also uncovered that removal of the Asp modifier from Erg-Asp is catalyzed by a second enzyme, ErdH, that is a genuine Erg-Asp hydrolase participating in the turnover of the conjugated sterol in vivo. Phylogenomics highlights that the entire Erg-Asp synthesis/degradation pathway is conserved across "higher" fungi. Given the central roles of sterols and conjugated sterols in fungi, we propose that this tRNA-dependent ergosterol modification and homeostasis system might have broader implications in membrane remodeling, trafficking, antimicrobial resistance, or pathogenicity.


Assuntos
Ácido Aspártico/metabolismo , Aspergillus fumigatus/metabolismo , RNA Fúngico/metabolismo , Aminoacil-RNA de Transferência/metabolismo , Esteróis/metabolismo , Aminoacilação , Ácido Aspártico/química , Aspergillus fumigatus/química , Aspergillus fumigatus/genética , RNA Fúngico/química , RNA Fúngico/genética , Aminoacil-RNA de Transferência/química , Aminoacil-RNA de Transferência/genética , Esteróis/química
3.
Hum Mutat ; 40(10): 1826-1840, 2019 10.
Artigo em Inglês | MEDLINE | ID: mdl-31116475

RESUMO

Mutations in genes encoding aminoacyl-tRNA synthetases have been reported in several neurological disorders. KARS is a dual localized lysyl-tRNA synthetase and its cytosolic isoform belongs to the multiple aminoacyl-tRNA synthetase complex (MSC). Biallelic mutations in the KARS gene were described in a wide phenotypic spectrum ranging from nonsyndromic deafness to complex impairments. Here, we report on a patient with severe neurological and neurosensory disease investigated by whole-exome sequencing and found to carry biallelic mutations c.683C>T (p.Pro228Leu) and c.871T>G (p.Phe291Val), the second one being novel, in the KARS gene. The patient presented with an atypical clinical presentation with an optic neuropathy not previously reported. At the cellular level, we show that cytoplasmic KARS was expressed at a lower level in patient cells and displayed decreased interaction with MSC. In vitro, these two KARS variants have a decreased aminoacylation activity compared with wild-type KARS, the p.Pro228Leu being the most affected. Our data suggest that dysfunction of cytoplasmic KARS resulted in a decreased level of translation of the nuclear-encoded lysine-rich proteins belonging to the respiratory chain complex, thus impairing mitochondria functions.


Assuntos
Aminoacil-tRNA Sintetases/genética , Lisina-tRNA Ligase/genética , Mutação , Doenças do Sistema Nervoso/complicações , Doenças do Sistema Nervoso/genética , Doenças do Nervo Óptico/complicações , Transtornos de Sensação/complicações , Transtornos de Sensação/genética , Alelos , Sequência de Aminoácidos , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/metabolismo , Complexo I de Transporte de Elétrons/genética , Complexo I de Transporte de Elétrons/metabolismo , Complexo IV da Cadeia de Transporte de Elétrons/metabolismo , Fibroblastos/metabolismo , Estudos de Associação Genética , Predisposição Genética para Doença , Humanos , Lisina-tRNA Ligase/química , Lisina-tRNA Ligase/metabolismo , Imageamento por Ressonância Magnética , Modelos Moleculares , Doenças do Sistema Nervoso/diagnóstico , Doenças do Nervo Óptico/diagnóstico , Linhagem , Ligação Proteica , Conformação Proteica , Transtornos de Sensação/diagnóstico , Proteínas Quinases p38 Ativadas por Mitógeno/metabolismo
4.
Nucleic Acids Res ; 45(3): 1059-1068, 2017 02 17.
Artigo em Inglês | MEDLINE | ID: mdl-28180287

RESUMO

Aminoacyl-tRNA synthetases (AARSs) are a superfamily of enzymes responsible for the faithful translation of the genetic code and have lately become a prominent target for synthetic biologists. Our large-scale analysis of >2500 prokaryotic genomes reveals the complex evolutionary history of these enzymes and their paralogs, in which horizontal gene transfer played an important role. These results show that a widespread belief in the evolutionary stability of this superfamily is misconceived. Although AlaRS, GlyRS, LeuRS, IleRS, ValRS are the most stable members of the family, GluRS, LysRS and CysRS often have paralogs, whereas AsnRS, GlnRS, PylRS and SepRS are often absent from many genomes. In the course of this analysis, highly conserved protein motifs and domains within each of the AARS loci were identified and used to build a web-based computational tool for the genome-wide detection of AARS coding sequences. This is based on hidden Markov models (HMMs) and is available together with a cognate database that may be used for specific analyses. The bioinformatics tools that we have developed may also help to identify new antibiotic agents and targets using these essential enzymes. These tools also may help to identify organisms with alternative pathways that are involved in maintaining the fidelity of the genetic code.


Assuntos
Aminoacil-tRNA Sintetases/genética , Evolução Molecular , Motivos de Aminoácidos , Sequência de Aminoácidos , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/classificação , Bactérias/efeitos dos fármacos , Bactérias/enzimologia , Bactérias/genética , Biologia Computacional , Sequência Conservada , Bases de Dados de Proteínas , Cadeias de Markov , Filogenia , Domínios Proteicos
5.
RNA ; 21(10): 1790-806, 2015 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-26276802

RESUMO

In Staphylococcus aureus, a T-box riboswitch exists upstream of the glyS gene to regulate transcription of the sole glycyl-tRNA synthetase, which aminoacylates five tRNA(Gly) isoacceptors bearing GCC or UCC anticodons. Subsequently, the glycylated tRNAs serve as substrates for decoding glycine codons during translation, and also as glycine donors for exoribosomal synthesis of pentaglycine peptides during cell wall formation. Probing of the predicted T-box structure revealed a long stem I, lacking features previously described for similar T-boxes. Moreover, the antiterminator stem includes a 42-nt long intervening sequence, which is staphylococci-specific. Finally, the terminator conformation adopts a rigid two-stem structure, where the intervening sequence forms the first stem followed by the second stem, which includes the more conserved residues. Interestingly, all five tRNA(Gly) isoacceptors interact with S. aureus glyS T-box with different binding affinities and they all induce transcription readthrough at different levels. The ability of both GCC and UCC anticodons to interact with the specifier loop indicates ambiguity during the specifier triplet reading, similar to the unconventional reading of glycine codons during protein synthesis. The S. aureus glyS T-box structure is consistent with the recent crystallographic and NMR studies, despite apparent differences, and highlights the phylogenetic variability of T-boxes when studied in a genome-dependent context. Our data suggest that the S. aureus glyS T-box exhibits differential tRNA selectivity, which possibly contributes toward the regulation and synchronization of ribosomal and exoribosomal peptide synthesis, two essential but metabolically unrelated pathways.


Assuntos
Proteínas/metabolismo , RNA de Transferência de Glicina/metabolismo , Riboswitch , Sequência de Bases , Dados de Sequência Molecular , Conformação de Ácido Nucleico , RNA de Transferência de Glicina/química , Homologia de Sequência do Ácido Nucleico , Staphylococcus aureus/genética , Transcrição Gênica
6.
Nucleic Acids Res ; 42(9): 6052-63, 2014 May.
Artigo em Inglês | MEDLINE | ID: mdl-24692665

RESUMO

Yeast mitochondrial Gln-mtRNAGln is synthesized by the transamidation of mischarged Glu-mtRNAGln by a non-canonical heterotrimeric tRNA-dependent amidotransferase (AdT). The GatA and GatB subunits of the yeast AdT (GatFAB) are well conserved among bacteria and eukaryota, but the GatF subunit is a fungi-specific ortholog of the GatC subunit found in all other known heterotrimeric AdTs (GatCAB). Here we report the crystal structure of yeast mitochondrial GatFAB at 2.0 Å resolution. The C-terminal region of GatF encircles the GatA-GatB interface in the same manner as GatC, but the N-terminal extension domain (NTD) of GatF forms several additional hydrophobic and hydrophilic interactions with GatA. NTD-deletion mutants displayed growth defects, but retained the ability to respire. Truncation of the NTD in purified mutants reduced glutaminase and transamidase activities when glutamine was used as the ammonia donor, but increased transamidase activity relative to the full-length enzyme when the donor was ammonium chloride. Our structure-based functional analyses suggest the NTD is a trans-acting scaffolding peptide for the GatA glutaminase active site. The positive surface charge and novel fold of the GatF-GatA interface, shown in this first crystal structure of an organellar AdT, stand in contrast with the more conventional, negatively charged bacterial AdTs described previously.


Assuntos
Aminoacil-tRNA Sintetases/química , Proteínas Mitocondriais/química , Transferases de Grupos Nitrogenados/química , Proteínas de Saccharomyces cerevisiae/química , Saccharomyces cerevisiae/enzimologia , Transaminases/química , Domínio Catalítico , Cristalografia por Raios X , Mitocôndrias/enzimologia , Modelos Moleculares , Ligação Proteica , Multimerização Proteica , Estrutura Quaternária de Proteína , Estrutura Secundária de Proteína , Subunidades Proteicas/química , RNA de Transferência/química
7.
Nucleic Acids Res ; 41(6): 3901-14, 2013 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-23396276

RESUMO

In all eukaryotes, transcribed precursor tRNAs are maturated by processing and modification processes in nucleus and are transported to the cytoplasm. The cytoplasmic export protein (Cex1p) captures mature tRNAs from the nuclear export receptor (Los1p) on the cytoplasmic side of the nuclear pore complex, and it delivers them to eukaryotic elongation factor 1α. This conserved Cex1p function is essential for the quality control of mature tRNAs to ensure accurate translation. However, the structural basis of how Cex1p recognizes tRNAs and shuttles them to the translational apparatus remains unclear. Here, we solved the 2.2 Å resolution crystal structure of Saccharomyces cerevisiae Cex1p with C-terminal 197 disordered residues truncated. Cex1p adopts an elongated architecture, consisting of N-terminal kinase-like and a C-terminal α-helical HEAT repeat domains. Structure-based biochemical analyses suggested that Cex1p binds tRNAs on its inner side, using the positively charged HEAT repeat surface and the C-terminal disordered region. The N-terminal kinase-like domain acts as a scaffold to interact with the Ran-exportin (Los1p·Gsp1p) machinery. These results provide the structural basis of Los1p·Gsp1p·Cex1p·tRNA complex formation, thus clarifying the dynamic mechanism of tRNA shuttling from exportin to the translational apparatus.


Assuntos
Modelos Moleculares , Proteínas de Transporte Nucleocitoplasmático/química , RNA de Transferência/metabolismo , Proteínas de Ligação a RNA/química , Proteínas de Saccharomyces cerevisiae/química , Transporte Ativo do Núcleo Celular , Núcleo Celular/metabolismo , Cristalografia por Raios X , Citoplasma/metabolismo , Proteínas Monoméricas de Ligação ao GTP/metabolismo , Complexo de Proteínas Formadoras de Poros Nucleares/metabolismo , Proteínas Nucleares/metabolismo , Proteínas de Transporte Nucleocitoplasmático/metabolismo , Ligação Proteica , Multimerização Proteica , Estrutura Terciária de Proteína , Proteínas de Ligação a RNA/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo
8.
Nucleic Acids Res ; 40(11): 4965-76, 2012 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-22362756

RESUMO

Helicobacter pylori catalyzes Asn-tRNA(Asn) formation by use of the indirect pathway that involves charging of Asp onto tRNA(Asn) by a non-discriminating aspartyl-tRNA synthetase (ND-AspRS), followed by conversion of the mischarged Asp into Asn by the GatCAB amidotransferase. We show that the partners of asparaginylation assemble into a dynamic Asn-transamidosome, which uses a different strategy than the Gln-transamidosome to prevent the release of the mischarged aminoacyl-tRNA intermediate. The complex is described by gel-filtration, dynamic light scattering and kinetic measurements. Two strategies for asparaginylation are shown: (i) tRNA(Asn) binds GatCAB first, allowing aminoacylation and immediate transamidation once ND-AspRS joins the complex; (ii) tRNA(Asn) is bound by ND-AspRS which releases the Asp-tRNA(Asn) product much slower than the cognate Asp-tRNA(Asp); this kinetic peculiarity allows GatCAB to bind and transamidate Asp-tRNA(Asn) before its release by the ND-AspRS. These results are discussed in the context of the interrelation between the Asn and Gln-transamidosomes which use the same GatCAB in H. pylori, and shed light on a kinetic mechanism that ensures faithful codon reassignment for Asn.


Assuntos
Aspartato-tRNA Ligase/metabolismo , Helicobacter pylori/enzimologia , Transferases de Grupos Nitrogenados/metabolismo , RNA de Transferência de Asparagina/metabolismo , Aminoacilação de RNA de Transferência , Asparagina/metabolismo , Ácido Aspártico/metabolismo , Código Genético , Cinética , RNA de Transferência de Ácido Aspártico/metabolismo
9.
Methods Mol Biol ; 2497: 255-267, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-35771447

RESUMO

Proving with certainty that a GFP-tagged protein is imported inside mitochondria by visualizing its fluorescence emission with an epifluorescence microscope is currently impossible using regular GFP-tagging. This is particularly true for proteins dual localized in the cytosol and mitochondria, which have been estimated to represent up to one third of the established mitoproteomes. These proteins are usually composed of a surpassingly abundant pool of the cytosolic isoform compared to the mitochondrial isoform. As a consequence, when tagged with a regular GFP, the fluorescence emission of the cytosolic isoform will inevitably eclipse that of the mitochondrial one and prevent the detection of the mitochondrial echoform. To overcome this technical limit, we engineered a yeast strain expressing a new type of GFP called Bi-Genomic Mitochondrial-Split-GFP (BiG Mito-Split-GFP). In this strain, one moiety of the GFP is encoded by the mitochondrial DNA while the second moiety of the GFP can be tagged to any nuclear-encoded protein (suspected to be dual localized or bona fide mitochondrial). By doing so, only mitochondrial proteins or echoforms of dual localized proteins, regardless of their organismal origin, trigger GFP reconstitution that can be visualized by regular fluorescence microscopy. The strength of the BiG Mito-Split-GFP system is that proof of the mitochondrial localization of a given protein rests on a simple and effortless microscopy observation.


Assuntos
Mitocôndrias , Saccharomyces cerevisiae , Genômica , Proteínas de Fluorescência Verde/genética , Proteínas de Fluorescência Verde/metabolismo , Microscopia de Fluorescência , Mitocôndrias/genética , Mitocôndrias/metabolismo , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo
10.
Genetics ; 220(3)2022 03 03.
Artigo em Inglês | MEDLINE | ID: mdl-35100419

RESUMO

The yeast mitochondrial ATP synthase is an assembly of 28 subunits of 17 types of which 3 (subunits 6, 8, and 9) are encoded by mitochondrial genes, while the 14 others have a nuclear genetic origin. Within the membrane domain (FO) of this enzyme, the subunit 6 and a ring of 10 identical subunits 9 transport protons across the mitochondrial inner membrane coupled to ATP synthesis in the extra-membrane structure (F1) of ATP synthase. As a result of their dual genetic origin, the ATP synthase subunits are synthesized in the cytosol and inside the mitochondrion. How they are produced in the proper stoichiometry from two different cellular compartments is still poorly understood. The experiments herein reported show that the rate of translation of the subunits 9 and 6 is enhanced in strains with mutations leading to specific defects in the assembly of these proteins. These translation modifications involve assembly intermediates interacting with subunits 6 and 9 within the final enzyme and cis-regulatory sequences that control gene expression in the organelle. In addition to enabling a balanced output of the ATP synthase subunits, these assembly-dependent feedback loops are presumably important to limit the accumulation of harmful assembly intermediates that have the potential to dissipate the mitochondrial membrane electrical potential and the main source of chemical energy of the cell.


Assuntos
Proteínas de Saccharomyces cerevisiae , Saccharomyces cerevisiae , Trifosfato de Adenosina/metabolismo , Mitocôndrias/genética , Mitocôndrias/metabolismo , ATPases Mitocondriais Próton-Translocadoras/genética , Subunidades Proteicas/genética , Subunidades Proteicas/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo
11.
Biol Open ; 10(3)2021 03 22.
Artigo em Inglês | MEDLINE | ID: mdl-33753324

RESUMO

COPI (coatomer complex I) coated vesicles are involved in Golgi-to-ER and intra-Golgi trafficking pathways, and mediate retrieval of ER resident proteins. Functions and components of the COPI-mediated trafficking pathways, beyond the canonical set of Sec/Arf proteins, are constantly increasing in number and complexity. In mammalian cells, GORAB, SCYL1 and SCYL3 proteins regulate Golgi morphology and protein glycosylation in concert with the COPI machinery. Here, we show that Cex1, homologous to the mammalian SCYL proteins, is a component of the yeast COPI machinery, by interacting with Sec27, Sec28 and Sec33 (Ret1/Cop1) proteins of the COPI coat. Cex1 was initially reported to mediate channeling of aminoacylated tRNA outside of the nucleus. Our data show that Cex1 localizes at membrane compartments, on structures positive for the Sec33 α-COP subunit. Moreover, the Wbp1 protein required for N-glycosylation and interacting via its di-lysine motif with the Sec27 ß'-COP subunit is mis-targeted in cex1Δ deletion mutant cells. Our data point to the possibility of developing Cex1 yeast-based models to study neurodegenerative disorders linked to pathogenic mutations of its human homologue SCYL1.


Assuntos
Complexo I de Proteína do Envoltório/metabolismo , Proteínas Fúngicas/metabolismo , Proteínas de Transporte Nucleocitoplasmático/metabolismo , Proteínas de Ligação a RNA/metabolismo , Cromatografia Líquida , Complexo I de Proteína do Envoltório/genética , Retículo Endoplasmático/metabolismo , Proteínas Fúngicas/genética , Deleção de Genes , Complexo de Golgi/metabolismo , Espaço Intracelular , Espectrometria de Massas , Mutação , Proteínas de Transporte Nucleocitoplasmático/genética , Ligação Proteica , Transporte Proteico , Proteômica/métodos , Proteínas de Ligação a RNA/genética
12.
Steroids ; 169: 108823, 2021 05.
Artigo em Inglês | MEDLINE | ID: mdl-33713678

RESUMO

Aminoacylated ergosterol such as 1-ergosteryl aspartate (Erg-Asp) is a new lipid component recently discovered in fungi. In order to study physiological functions of this novel sterol derivative and to develop potential antifungal agents, we established the method to synthesize aminoacylated ergosterol derivatives. Herein, we report the synthesis of Erg-Asp as well as some other aminoacylated ergosterols (Erg-Gly, Erg-Ala, Erg-Leu, Erg-Ile, and Erg-Val) using Boc protected amino acids.


Assuntos
Ergosterol , Antifúngicos , Fragmentos de Peptídeos
13.
Biochimie ; 87(9-10): 847-61, 2005.
Artigo em Inglês | MEDLINE | ID: mdl-16164993

RESUMO

Analysis of the completed genome sequences revealed presence in various bacteria of an open reading frame (ORF) encoding a polypeptide chain presenting important similarities with the catalytic domain of glutamyl-tRNA synthetases but deprived of the C-terminal anticodon-binding domain. This paralog of glutamyl-tRNA synthetases, the YadB protein, activates glutamate in the absence of tRNA and transfers the activated glutamate not on tRNA(Glu) but instead on tRNA(Asp). It has been shown that tRNA(Asp) is able to accept two amino acids: aspartate charged by aspartyl-tRNA synthetase and glutamate charged by YadB. The functional properties of YadB contrast with those of the canonical glutamyl-tRNA synthetases, which activate Glu only in presence of the cognate tRNA before aminoacylation of the 3'-end of tRNA. Biochemical approaches and mass spectrometry investigations revealed that YadB transfers the activated glutamate on the cyclopenthene-diol ring of the modified nucleoside queuosine posttranscriptionally inserted at the wobble position of the anticodon-loop to form glutamyl-queuosine. Unstability of the ester bond between the glutamate residue and the cyclopenthene-diol (half-life 7.5 min) explains why until now this modification escaped detection. Among Escherichia coli tRNAs containing queuosine in the wobble position, only tRNA(Asp) is substrate of YadB. Sequence comparison reveals a structural mimicry between the anticodon-stem and loop of tRNA(Asp) and the amino acid acceptor-stem of tRNA(Glu). YadB, renamed glutamyl-Q-tRNA(Asp) synthetase, constitutes the first enzyme structurally related to aminoacyl-tRNA synthetases which catalyzes a hypermodification in tRNA, and whose function seems to be conserved among prokaryotes. The discovery of glutamyl-Q-tRNA(Asp) synthetase breaks down the current paradigm according to which the catalytic domain of aminoacyl-tRNA synthetases recognizes the amino acid acceptor-stem of tRNA and aminoacylates the 3'-terminal ribose. The evolutionary significance of the existence of an aminoacyl-tRNA synthetase paralog dedicated to the hypermodification of a tRNA anticodon will be discussed.


Assuntos
Aminoacil-tRNA Sintetases/metabolismo , Proteínas de Escherichia coli/metabolismo , Glutamato-tRNA Ligase/metabolismo , RNA de Transferência de Ácido Aspártico/metabolismo , Sequência de Aminoácidos , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/genética , Aminoacilação , Anticódon , Cristalografia , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Evolução Molecular , Glutamato-tRNA Ligase/química , Glutamato-tRNA Ligase/genética , Dados de Sequência Molecular , Conformação Proteica , RNA de Transferência de Ácido Aspártico/química , Aminoacilação de RNA de Transferência
14.
J Mol Biol ; 337(2): 273-83, 2004 Mar 19.
Artigo em Inglês | MEDLINE | ID: mdl-15003446

RESUMO

In the course of a structural genomics program aiming at solving the structures of Escherichia coli open reading frame products of unknown function, we have determined the structure of YadB at 1.5A using molecular replacement. The YadB protein is 298 amino acid residues long and displays 34% sequence identity with E.coli glutamyl-tRNA synthetase (GluRS). It is much shorter than GluRS, which contains 468 residues, and lacks the complete domain interacting with the tRNA anticodon loop. As E.coli GluRS, YadB possesses a Zn2+ located in the putative tRNA acceptor stem-binding domain. The YadB cluster uses cysteine residues as the first three zinc ligands, but has a weaker tyrosine ligand at the fourth position. It shares with canonical amino acid RNA synthetases a major functional feature, namely activation of the amino acid (here glutamate). It differs, however, from GluRSs by the fact that the activation step is tRNA-independent and that it does not catalyze attachment of the activated glutamate to E.coli tRNAGlu, but to another, as yet unknown tRNA. These results suggest thus a novel function, distinct from that of GluRSs, for the yadB gene family.


Assuntos
Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/metabolismo , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Escherichia coli/enzimologia , Escherichia coli/genética , Monofosfato de Adenosina/metabolismo , Trifosfato de Adenosina/metabolismo , Sequência de Aminoácidos , Aminoacil-tRNA Sintetases/química , Proteínas de Transporte/metabolismo , Cristalografia por Raios X , Proteínas de Escherichia coli/química , Genes Bacterianos , Glutamato-tRNA Ligase/química , Glutamato-tRNA Ligase/genética , Glutamato-tRNA Ligase/metabolismo , Ácido Glutâmico/metabolismo , Cinética , Ligantes , Modelos Moleculares , Dados de Sequência Molecular , Proteínas de Neoplasias/metabolismo , Proteínas Nucleares/metabolismo , Conformação Proteica , RNA de Transferência de Ácido Glutâmico/metabolismo , Homologia de Sequência de Aminoácidos , Thermus thermophilus/enzimologia , Thermus thermophilus/genética , Zinco/metabolismo
15.
Biochimie ; 100: 95-106, 2014 May.
Artigo em Inglês | MEDLINE | ID: mdl-24440477

RESUMO

Mitochondria originate from the α-proteobacterial domain of life. Since this unique event occurred, mitochondrial genomes of protozoans, fungi, plants and metazoans have highly derived and diverged away from the common ancestral DNA. These resulting genomes highly differ from one another, but all present-day mitochondrial DNAs have a very reduced coding capacity. Strikingly however, ATP production coupled to electron transport and translation of mitochondrial proteins are the two common functions retained in all mitochondrial DNAs. Paradoxically, most components essential for these two functions are now expressed from nuclear genes. Understanding how mitochondrial translation evolved in various eukaryotic models is essential to acquire new knowledge of mitochondrial genome expression. In this review, we provide a thorough analysis of the idiosyncrasies of mitochondrial translation as they occur between organisms. We address this by looking at mitochondrial codon usage and tRNA content. Then, we look at the aminoacyl-tRNA-forming enzymes in terms of peculiarities, dual origin, and alternate function(s). Finally we give examples of the atypical structural properties of mitochondrial tRNAs found in some organisms and the resulting adaptive tRNA-protein partnership.


Assuntos
Aminoacil-tRNA Sintetases/genética , Genoma Mitocondrial , Mitocôndrias/metabolismo , Proteínas Mitocondriais/genética , Biossíntese de Proteínas , Trifosfato de Adenosina/biossíntese , Alveolados/genética , Alveolados/metabolismo , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/metabolismo , Animais , Bactérias/genética , Bactérias/metabolismo , Núcleo Celular/genética , Núcleo Celular/metabolismo , Códon , Regulação da Expressão Gênica , Humanos , Mitocôndrias/genética , Proteínas Mitocondriais/biossíntese , Proteínas Mitocondriais/química , RNA de Transferência/química , RNA de Transferência/metabolismo
16.
Methods ; 44(2): 146-63, 2008 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-18241796

RESUMO

In some living organisms the 20 aa-tRNA species participating in protein synthesis are not charged by a complete set of 20 aminoacyl-tRNA synthetases. In prokaryotes, the deficiency of asparaginyl- and/or glutaminyl-tRNA synthetases is compensated by another aminoacyl-tRNA synthetase of relaxed specificity that mischarges the orphan tRNA and by an enzyme that converts the amino acid into that homologous to the tRNA. In Thermus thermophilus Asn-tRNA(Asn) is formed indirectly via a two-step pathway whereby tRNA(Asn) is mischarged with Asp that will subsequently be amidated into Asn by an amidotransferase. The non-discriminating aspartyl-tRNA synthetase, the trimeric GatCAB tRNA-dependent amidotransferase and the tRNA(Asn) promoting this pathway assemble into a ribonucleoprotein particle termed transamidosome. This article deals with the methods and techniques employed to clone the genes encoding the enzymes and the tRNA involved in this pathway, to express them in Escherichia coli, to isolate them on a large scale, and to transcribe and produce mg quantities of pure tRNA(Asn)in vitro. The approaches designed especially for this system include (i) clustering of the ORFs encoding the subunits of the heterotrimeric GatCAB that are sprinkled in the genome into an artificial operon, and (ii) the self-cleavage of the tRNA(Asn) transcript starting with U in 5' position through fusion with a hammerhead ribozyme. Further, the crystallization of the free enzymes is described and the characterization of their assembly with tRNA(Asn) into a ribonucleoprotein particle, as well as the investigation of the catalytic mechanism of Asn-tRNA(Asn) formation by the complex are reported.


Assuntos
Asparagina/biossíntese , Transferases de Grupos Nitrogenados/metabolismo , RNA de Transferência de Asparagina/biossíntese , Ribonucleoproteínas/isolamento & purificação , Ribonucleoproteínas/metabolismo , Cristalização , Luz , Transferases de Grupos Nitrogenados/isolamento & purificação , Transferases de Grupos Nitrogenados/farmacologia , Células Procarióticas/metabolismo , Espalhamento de Radiação , Aminoacilação de RNA de Transferência , Ultracentrifugação
17.
Proc Natl Acad Sci U S A ; 101(20): 7530-5, 2004 May 18.
Artigo em Inglês | MEDLINE | ID: mdl-15096594

RESUMO

The product of the Escherichia coli yadB gene is homologous to the N-terminal part of bacterial glutamyl-tRNA synthetases (GluRSs), including the Rossmann fold with the acceptor-binding domain and the stem-contact fold. This GluRS-like protein, which lacks the anticodon-binding domain, does not use tRNA(Glu) as substrate in vitro nor in vivo, but aminoacylates tRNA(Asp) with glutamate. The yadB gene is expressed in wild-type E. coli as an operon with the dksA gene, which encodes a protein involved in the general stress response by means of its action at the translational level. The fate of the glutamylated tRNA(Asp) is not known, but its incapacity to bind elongation factor Tu suggests that it is not involved in ribosomal protein synthesis. Genes homologous to yadB are present only in bacteria, mostly in Proteobacteria. Sequence alignments and phylogenetic analyses show that the YadB proteins form a distinct monophyletic group related to the bacterial and organellar GluRSs (alpha-type GlxRSs superfamily) with ubiquitous function as suggested by the similar functional properties of the YadB homologue from Neisseria meningitidis.


Assuntos
Aminoacil-tRNA Sintetases/metabolismo , Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Ácido Glutâmico/metabolismo , RNA de Transferência de Ácido Aspártico/metabolismo , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/genética , Cristalografia por Raios X , Escherichia coli/enzimologia , Escherichia coli/genética , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Fator 2 de Elongação de Peptídeos/metabolismo , Filogenia , Estrutura Terciária de Proteína , RNA Mensageiro/metabolismo
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