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1.
Nat Biotechnol ; 42(1): 72-86, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-37024678

RESUMO

Transfer RNAs (tRNAs) play a central role in protein translation. Studying them has been difficult in part because a simple method to simultaneously quantify their abundance and chemical modifications is lacking. Here we introduce Nano-tRNAseq, a nanopore-based approach to sequence native tRNA populations that provides quantitative estimates of both tRNA abundances and modification dynamics in a single experiment. We show that default nanopore sequencing settings discard the vast majority of tRNA reads, leading to poor sequencing yields and biased representations of tRNA abundances based on their transcript length. Re-processing of raw nanopore current intensity signals leads to a 12-fold increase in the number of recovered tRNA reads and enables recapitulation of accurate tRNA abundances. We then apply Nano-tRNAseq to Saccharomyces cerevisiae tRNA populations, revealing crosstalks and interdependencies between different tRNA modification types within the same molecule and changes in tRNA populations in response to oxidative stress.


Assuntos
Sequenciamento por Nanoporos , Nanoporos , RNA , RNA de Transferência/química , Análise de Sequência de RNA/métodos
2.
Protein Sci ; 33(3): e4844, 2023 Nov 27.
Artigo em Inglês | MEDLINE | ID: mdl-38009704

RESUMO

Aminoacyl-tRNA synthetases (aaRSs) establish the genetic code. Each aaRS covalently links a given canonical amino acid to a cognate set of tRNA isoacceptors. Glycyl tRNA aminoacylation is unusual in that it is catalyzed by different aaRSs in different lineages of the Tree of Life. We have investigated the phylogenetic distribution and evolutionary history of bacterial glycyl tRNA synthetase (bacGlyRS). This enzyme is found in early diverging bacterial phyla such as Firmicutes, Acidobacteria, and Proteobacteria, but not in archaea or eukarya. We observe relationships between each of six domains of bacGlyRS and six domains of four different RNA-modifying proteins. Component domains of bacGlyRS show common ancestry with (i) the catalytic domain of class II tRNA synthetases; (ii) the HD domain of the bacterial RNase Y; (iii) the body and tail domains of the archaeal CCA-adding enzyme; (iv) the anti-codon binding domain of the arginyl tRNA synthetase; and (v) a previously unrecognized domain that we call ATL (Ancient tRNA latch). The ATL domain has been found thus far only in bacGlyRS and in the universal alanyl tRNA synthetase (uniAlaRS). Further, the catalytic domain of bacGlyRS is more closely related to the catalytic domain of uniAlaRS than to any other aminoacyl tRNA synthetase. The combined results suggest that the ATL and catalytic domains of these two enzymes are ancestral to bacGlyRS and uniAlaRS, which emerged from common protein ancestors by bricolage, stepwise accumulation of protein domains, before the last universal common ancestor of life.

3.
Nucleic Acids Res ; 51(18): 10001-10010, 2023 Oct 13.
Artigo em Inglês | MEDLINE | ID: mdl-37638745

RESUMO

Through their aminoacylation reactions, aminoacyl tRNA-synthetases (aaRS) establish the rules of the genetic code throughout all of nature. During their long evolution in eukaryotes, additional domains and splice variants were added to what is commonly a homodimeric or monomeric structure. These changes confer orthogonal functions in cellular activities that have recently been uncovered. An unusual exception to the familiar architecture of aaRSs is the heterodimeric metazoan mitochondrial SerRS. In contrast to domain additions or alternative splicing, here we show that heterodimeric metazoan mitochondrial SerRS arose from its homodimeric ancestor not by domain additions, but rather by collapse of an entire domain (in one subunit) and an active site ablation (in the other). The collapse/ablation retains aminoacylation activity while creating a new surface, which is necessary for its orthogonal function. The results highlight a new paradigm for repurposing a member of the ancient tRNA synthetase family.


Assuntos
Serina-tRNA Ligase , Animais , Aminoacil-tRNA Sintetases/metabolismo , Domínio Catalítico , Serina-tRNA Ligase/química , Serina-tRNA Ligase/metabolismo
4.
Annu Rev Microbiol ; 77: 111-129, 2023 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-37018842

RESUMO

Infections caused by malaria parasites place an enormous burden on the world's poorest communities. Breakthrough drugs with novel mechanisms of action are urgently needed. As an organism that undergoes rapid growth and division, the malaria parasite Plasmodium falciparum is highly reliant on protein synthesis, which in turn requires aminoacyl-tRNA synthetases (aaRSs) to charge tRNAs with their corresponding amino acid. Protein translation is required at all stages of the parasite life cycle; thus, aaRS inhibitors have the potential for whole-of-life-cycle antimalarial activity. This review focuses on efforts to identify potent plasmodium-specific aaRS inhibitors using phenotypic screening, target validation, and structure-guided drug design. Recent work reveals that aaRSs are susceptible targets for a class of AMP-mimicking nucleoside sulfamates that target the enzymes via a novel reaction hijacking mechanism. This finding opens up the possibility of generating bespoke inhibitors of different aaRSs, providing new drug leads.


Assuntos
Aminoacil-tRNA Sintetases , Antimaláricos , Malária , Humanos , Antimaláricos/farmacologia , Antimaláricos/uso terapêutico , Aminoacil-tRNA Sintetases/química , Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/metabolismo , Plasmodium falciparum/genética , Malária/tratamento farmacológico , RNA de Transferência/genética , RNA de Transferência/metabolismo , RNA de Transferência/uso terapêutico
5.
J Biol Chem ; 299(1): 102755, 2023 01.
Artigo em Inglês | MEDLINE | ID: mdl-36455626

RESUMO

Engineering new protein functionalities through the addition of noncoded amino acids is a major biotechnological endeavor that needs to overcome the natural firewalls that prevent misincorporation during protein synthesis. This field is in constant evolution driven by the discovery or design of new tools, many of which are based on archeal biology. In a recent article published in JBC, one such tool is characterized and its evolution studied, revealing unexpected details regarding the emergence of the universal genetic code machinery.


Assuntos
Aminoacil-tRNA Sintetases , Vacinas , Archaea/genética , Lisina/metabolismo , Código Genético , RNA de Transferência/genética , RNA de Transferência/metabolismo , Aminoacil-tRNA Sintetases/metabolismo
6.
RSC Adv ; 12(23): 14321-14327, 2022 May 12.
Artigo em Inglês | MEDLINE | ID: mdl-35702248

RESUMO

A set of 3-bromo-1,2,4,5-tetrazines with three distinct substitutions have been used as reagents for late-stage functionalization of small molecules through nucleophilic aromatic substitution. Spectroscopic studies of the products obtained proved that tetrazine ethers are intrinsically fluorescent. This fluorescence is lost upon inverse Electron-Demand Diels-Alder (iEDDA) cycloaddition with strained alkenes. Tetrazine-phenol ethers are rather interesting because they can undergo rapid iEDDA reactions with a second order rate constant (k 2) compatible with bioorthogonal ligations. As a showcase, l-tyrosine was derivatized with 3-bromo-6-methyl-1,2,4,5-tetrazine and coupled to the peptide drug octreotide. This peptide was detected in cellular flow cytometry, and its fluorescence turned off through a bioorthogonal iEDDA cycloaddition with a strained alkene, showing for the first time the detection and reactivity of intrinsically fluorescent tetrazines in a biologically relevant context. The synthesis and characterization of fluorescent tetrazine ethers with bioorthogonal applicability pave the way for the generation of useful compounds for both detection and bioconjugation in vivo.

7.
Bioinformatics ; 38(10): 2934-2936, 2022 05 13.
Artigo em Inglês | MEDLINE | ID: mdl-35561195

RESUMO

SUMMARY: High-throughput sequencing of transfer RNAs (tRNA-Seq) is a powerful approach to characterize the cellular tRNA pool. Currently, however, analyzing tRNA-Seq datasets requires strong bioinformatics and programming skills. tRNAstudio facilitates the analysis of tRNA-Seq datasets and extracts information on tRNA gene expression, post-transcriptional tRNA modification levels, and tRNA processing steps. Users need only running a few simple bash commands to activate a graphical user interface that allows the easy processing of tRNA-Seq datasets in local mode. Output files include extensive graphical representations and associated numerical tables, and an interactive html summary report to help interpret the data. We have validated tRNAstudio using datasets generated by different experimental methods and derived from human cell lines and tissues that present distinct patterns of tRNA expression, modification and processing. AVAILABILITY AND IMPLEMENTATION: Freely available at https://github.com/GeneTranslationLab-IRB/tRNAstudio under an open-source GNU GPL v3.0 license. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.


Assuntos
RNA de Transferência , Software , Sequenciamento de Nucleotídeos em Larga Escala/métodos , Humanos , Processamento Pós-Transcricional do RNA , RNA de Transferência/genética , Análise de Sequência de RNA/métodos
9.
Nucleic Acids Res ; 49(12): 7011-7034, 2021 07 09.
Artigo em Inglês | MEDLINE | ID: mdl-34125917

RESUMO

The modification of adenosine to inosine at the wobble position (I34) of tRNA anticodons is an abundant and essential feature of eukaryotic tRNAs. The expansion of inosine-containing tRNAs in eukaryotes followed the transformation of the homodimeric bacterial enzyme TadA, which generates I34 in tRNAArg and tRNALeu, into the heterodimeric eukaryotic enzyme ADAT, which modifies up to eight different tRNAs. The emergence of ADAT and its larger set of substrates, strongly influenced the tRNA composition and codon usage of eukaryotic genomes. However, the selective advantages that drove the expansion of I34-tRNAs remain unknown. Here we investigate the functional relevance of I34-tRNAs in human cells and show that a full complement of these tRNAs is necessary for the translation of low-complexity protein domains enriched in amino acids cognate for I34-tRNAs. The coding sequences for these domains require codons translated by I34-tRNAs, in detriment of synonymous codons that use other tRNAs. I34-tRNA-dependent low-complexity proteins are enriched in functional categories related to cell adhesion, and depletion in I34-tRNAs leads to cellular phenotypes consistent with these roles. We show that the distribution of these low-complexity proteins mirrors the distribution of I34-tRNAs in the phylogenetic tree.


Assuntos
Inosina/metabolismo , Biossíntese de Proteínas , RNA de Transferência/metabolismo , Adenosina Desaminase/genética , Adesão Celular , Processos de Crescimento Celular , Linhagem Celular , Códon , Eucariotos/genética , Feminino , Células HEK293 , Humanos , Domínios Proteicos/genética , Inibidores da Síntese de Proteínas/farmacologia , RNA Mensageiro/metabolismo , RNA de Transferência/química , Ribossomos/metabolismo
10.
Genes (Basel) ; 12(4)2021 04 19.
Artigo em Inglês | MEDLINE | ID: mdl-33921764

RESUMO

The nucleoside inosine plays an important role in purine biosynthesis, gene translation, and modulation of the fate of RNAs. The editing of adenosine to inosine is a widespread post-transcriptional modification in transfer RNAs (tRNAs) and messenger RNAs (mRNAs). At the wobble position of tRNA anticodons, inosine profoundly modifies codon recognition, while in mRNA, inosines can modify the sequence of the translated polypeptide or modulate the stability, localization, and splicing of transcripts. Inosine is also found in non-coding and exogenous RNAs, where it plays key structural and functional roles. In addition, molecular inosine is an important secondary metabolite in purine metabolism that also acts as a molecular messenger in cell signaling pathways. Here, we review the functional roles of inosine in biology and their connections to human health.


Assuntos
Códon , Doença/genética , Inosina/genética , Biossíntese de Proteínas , RNA Mensageiro/genética , RNA de Transferência/genética , Animais , Humanos , Inosina/metabolismo , RNA Mensageiro/metabolismo , RNA de Transferência/metabolismo
11.
RNA Biol ; 18(11): 1905-1919, 2021 11.
Artigo em Inglês | MEDLINE | ID: mdl-33499731

RESUMO

RNA modifications are dynamic chemical entities that expand the RNA lexicon and regulate RNA fate. The most abundant modification present in mRNAs, N6-methyladenosine (m6A), has been implicated in neurogenesis and memory formation. However, whether additional RNA modifications may be playing a role in neuronal functions and in response to environmental queues is largely unknown. Here we characterize the biochemical function and cellular dynamics of two human RNA methyltransferases previously associated with neurological dysfunction, TRMT1 and its homolog, TRMT1-like (TRMT1L). Using a combination of next-generation sequencing, LC-MS/MS, patient-derived cell lines and knockout mouse models, we confirm the previously reported dimethylguanosine (m2,2G) activity of TRMT1 in tRNAs, as well as reveal that TRMT1L, whose activity was unknown, is responsible for methylating a subset of cytosolic tRNAAla(AGC) isodecoders at position 26. Using a cellular in vitro model that mimics neuronal activation and long term potentiation, we find that both TRMT1 and TRMT1L change their subcellular localization upon neuronal activation. Specifically, we observe a major subcellular relocalization from mitochondria and other cytoplasmic domains (TRMT1) and nucleoli (TRMT1L) to different small punctate compartments in the nucleus, which are as yet uncharacterized. This phenomenon does not occur upon heat shock, suggesting that the relocalization of TRMT1 and TRMT1L is not a general reaction to stress, but rather a specific response to neuronal activation. Our results suggest that subcellular relocalization of RNA modification enzymes may play a role in neuronal plasticity and transmission of information, presumably by addressing new targets.


Assuntos
Encéfalo/metabolismo , Núcleo Celular/metabolismo , Neuroblastoma/patologia , Neurônios/metabolismo , Frações Subcelulares/metabolismo , tRNA Metiltransferases/metabolismo , Animais , Feminino , Camundongos , Camundongos Knockout , Neuroblastoma/genética , Neuroblastoma/metabolismo , Neurônios/citologia , tRNA Metiltransferases/genética
12.
Trends Biotechnol ; 39(5): 460-473, 2021 05.
Artigo em Inglês | MEDLINE | ID: mdl-32896440

RESUMO

The genetic code is the manual that cells use to incorporate amino acids into proteins. It is possible to artificially expand this manual through cellular, molecular, and chemical manipulations to improve protein functionality. Strategies for in vivo genetic code expansion are under the same functional constraints as natural protein synthesis. Here, we review the approaches used to incorporate noncanonical amino acids (ncAAs) into designer proteins through the manipulation of the translation machinery and draw parallels between these methods and natural adaptations that improve translation in extant organisms. Following this logic, we propose new nature-inspired tactics to improve genetic code expansion (GCE) in synthetic organisms.


Assuntos
Aminoácidos , Aminoacil-tRNA Sintetases , Código Genético , Proteínas , Aminoácidos/genética , Aminoácidos/metabolismo , Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/metabolismo , Código Genético/genética , Biossíntese de Proteínas , Proteínas/química , RNA de Transferência/metabolismo , Biologia Sintética/tendências
13.
Nat Rev Mol Cell Biol ; 21(7): 361, 2020 07.
Artigo em Inglês | MEDLINE | ID: mdl-32001807
14.
Bioconjug Chem ; 31(3): 933-938, 2020 03 18.
Artigo em Inglês | MEDLINE | ID: mdl-32057238

RESUMO

3-Bromo-1,2,4,5-tetrazine has been synthesized in an oxidant- and metal-free method. The synthesis is scalable and relies on inexpensive starting materials. 3-Bromo-1,2,4,5-tetrazine can undergo nucleophilic aromatic substitutions with differently substituted heteroatoms under mild conditions. In particular, its excellent reactivity has been used to attain chemoselective protein labeling. The resulting labeled lysines can react with strained dienophiles to trigger fast click-to-release (CtR) biorthogonal reactions. The characterization of the CtR reaction in physiological conditions and a therapeutically relevant example with the monoclonal antibody Trastuzumab to showcase its application is presented. Finally, 3-bromo-1,2,4,5-tetrazine has been used to achieve site-selective protein labeling through the genetic incorporation of the first unnatural amino acid bearing an unsubstituted 1,2,4,5-tetrazin-3-yl functionality, which can also undergo CtR reactions.


Assuntos
Compostos Aza/química , Compostos Aza/síntese química , Derivados de Benzeno/química , Derivados de Benzeno/síntese química , Proteínas/química , Coloração e Rotulagem/métodos , Química Click , Liberação Controlada de Fármacos , Cinética , Modelos Moleculares , Conformação Proteica , Ribonuclease Pancreático/química
15.
Enzymes ; 48: 11-37, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-33837701

RESUMO

The origin of all extant life on earth is intimately linked to the establishment of the principal components of the Genetic Code. Aminoacyl-tRNA synthetases (aaRS), by virtue of their universality and essential functions in protein synthesis, count among the biomolecules that evolved to a level of complexity comparable to their extant state before the advent of the Last Universal Common Ancestor (LUCA). Despite the enormous technical difficulties in analyzing such an ancient process, proposals have been put forward to describe the emergence and evolution of the two aaRS families. In this chapter, I critically review some of these proposals and place them along a hypothetical timeline based on other essential aspects of the origin of life. This chapter focuses on the evolution of the aaRS prior to LUCA. Readers will be referred to excellent literature that covers the phylogeny of aaRS in the three extant domains of life.


Assuntos
Aminoacil-tRNA Sintetases , Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/metabolismo , Código Genético/genética , Humanos , Filogenia , Biossíntese de Proteínas , RNA de Transferência
16.
Enzymes ; 48: xiii, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-33837713
17.
Cell Rep ; 27(1): 40-47.e5, 2019 04 02.
Artigo em Inglês | MEDLINE | ID: mdl-30943413

RESUMO

The aminoacylation of tRNAs by aminoacyl-tRNA synthetases (ARSs) is a central reaction in biology. Multiple regulatory pathways use the aminoacylation status of cytosolic tRNAs to monitor and regulate metabolism. The existence of equivalent regulatory networks within the mitochondria is unknown. Here, we describe a functional network that couples protein synthesis to DNA replication in animal mitochondria. We show that a duplication of the gene coding for mitochondrial seryl-tRNA synthetase (SerRS2) generated in arthropods a paralog protein (SLIMP) that forms a heterodimeric complex with a SerRS2 monomer. This seryl-tRNA synthetase variant is essential for protein synthesis and mitochondrial respiration. In addition, SLIMP interacts with the substrate binding domain of the mitochondrial protease LON, thus stimulating proteolysis of the DNA-binding protein TFAM and preventing mitochondrial DNA (mtDNA) accumulation. Thus, mitochondrial translation is directly coupled to mtDNA levels by a network based upon a profound structural modification of an animal ARS.


Assuntos
DNA Mitocondrial/metabolismo , Proteínas de Drosophila/fisiologia , Proteínas Mitocondriais/biossíntese , Biossíntese de Proteínas/fisiologia , Serina-tRNA Ligase/fisiologia , Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/fisiologia , Animais , Células Cultivadas , Proteínas de Drosophila/química , Proteínas de Drosophila/genética , Drosophila melanogaster , Duplicação Gênica , Subunidades Proteicas/genética , Subunidades Proteicas/fisiologia , Serina-tRNA Ligase/química , Serina-tRNA Ligase/genética
18.
Proc Natl Acad Sci U S A ; 116(17): 8451-8456, 2019 04 23.
Artigo em Inglês | MEDLINE | ID: mdl-30962382

RESUMO

The human genome encodes hundreds of transfer RNA (tRNA) genes but their individual contribution to the tRNA pool is not fully understood. Deep sequencing of tRNA transcripts (tRNA-Seq) can estimate tRNA abundance at single gene resolution, but tRNA structures and posttranscriptional modifications impair these analyses. Here we present a bioinformatics strategy to investigate differential tRNA gene expression and use it to compare tRNA-Seq datasets from cultured human cells and human brain. We find that sequencing caveats affect quantitation of only a subset of human tRNA genes. Unexpectedly, we detect several cases where the differences in tRNA expression among samples do not involve variations at the level of isoacceptor tRNA sets (tRNAs charged with the same amino acid but using different anticodons), but rather among tRNA genes within the same isodecoder set (tRNAs having the same anticodon sequence). Because isodecoder tRNAs are functionally equal in terms of genetic translation, their differential expression may be related to noncanonical tRNA functions. We show that several instances of differential tRNA gene expression result in changes in the abundance of tRNA-derived fragments (tRFs) but not of mature tRNAs. Examples of differentially expressed tRFs include PIWI-associated RNAs, tRFs present in tissue samples but not in cells cultured in vitro, and somatic tissue-specific tRFs. Our data support that differential expression of tRNA genes regulate noncanonical tRNA functions performed by tRFs.


Assuntos
Especificidade de Órgãos/genética , RNA de Transferência , Transcriptoma/genética , Anticódon/genética , Encéfalo/metabolismo , Células Cultivadas , Biologia Computacional , Perfilação da Expressão Gênica , Células HEK293 , Sequenciamento de Nucleotídeos em Larga Escala , Humanos , RNA Interferente Pequeno/análise , RNA Interferente Pequeno/genética , RNA Interferente Pequeno/metabolismo , RNA de Transferência/análise , RNA de Transferência/genética , RNA de Transferência/metabolismo , Análise de Sequência de RNA
19.
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
20.
Mol Biol Evol ; 36(4): 650-662, 2019 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-30590541

RESUMO

The modification of adenosine to inosine at the first position of transfer RNA (tRNA) anticodons (I34) is widespread among bacteria and eukaryotes. In bacteria, the modification is found in tRNAArg and is catalyzed by tRNA adenosine deaminase A, a homodimeric enzyme. In eukaryotes, I34 is introduced in up to eight different tRNAs by the heterodimeric adenosine deaminase acting on tRNA. This substrate expansion significantly influenced the evolution of eukaryotic genomes in terms of codon usage and tRNA gene composition. However, the selective advantages driving this process remain unclear. Here, we have studied the evolution of I34, tRNA adenosine deaminase A, adenosine deaminase acting on tRNA, and their relevant codons in a large set of bacterial and eukaryotic species. We show that a functional expansion of I34 to tRNAs other than tRNAArg also occurred within bacteria, in a process likely initiated by the emergence of unmodified A34-containing tRNAs. In eukaryotes, we report on a large variability in the use of I34 in protists, in contrast to a more uniform presence in fungi, plans, and animals. Our data support that the eukaryotic expansion of I34-tRNAs was driven by the improvement brought by these tRNAs to the synthesis of proteins highly enriched in certain amino acids.


Assuntos
Evolução Molecular , Inosina , RNA de Transferência/genética , Animais , Oenococcus/genética , Filogenia , Proteoma , Tetrahymena thermophila/genética
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