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1.
Cell ; 187(4): 846-860.e17, 2024 Feb 15.
Artículo en Inglés | MEDLINE | ID: mdl-38262409

RESUMEN

RNAs localizing to the outer cell surface have been recently identified in mammalian cells, including RNAs with glycan modifications known as glycoRNAs. However, the functional significance of cell surface RNAs and their production are poorly known. We report that cell surface RNAs are critical for neutrophil recruitment and that the mammalian homologs of the sid-1 RNA transporter are required for glycoRNA expression. Cell surface RNAs can be readily detected in murine neutrophils, the elimination of which substantially impairs neutrophil recruitment to inflammatory sites in vivo and reduces neutrophils' adhesion to and migration through endothelial cells. Neutrophil glycoRNAs are predominantly on cell surface, important for neutrophil-endothelial interactions, and can be recognized by P-selectin (Selp). Knockdown of the murine Sidt genes abolishes neutrophil glycoRNAs and functionally mimics the loss of cell surface RNAs. Our data demonstrate the biological importance of cell surface glycoRNAs and highlight a noncanonical dimension of RNA-mediated cellular functions.


Asunto(s)
Células Endoteliales , Infiltración Neutrófila , Neutrófilos , ARN , Animales , Ratones , Células Endoteliales/metabolismo , Neutrófilos/metabolismo , ARN/química , ARN/metabolismo , Proteínas de Transporte de Nucleótidos/genética , Proteínas de Transporte de Nucleótidos/metabolismo
2.
Cell ; 187(10): 2375-2392.e33, 2024 May 09.
Artículo en Inglés | MEDLINE | ID: mdl-38653238

RESUMEN

Lysine lactylation is a post-translational modification that links cellular metabolism to protein function. Here, we find that AARS1 functions as a lactate sensor that mediates global lysine lacylation in tumor cells. AARS1 binds to lactate and catalyzes the formation of lactate-AMP, followed by transfer of lactate to the lysince acceptor residue. Proteomics studies reveal a large number of AARS1 targets, including p53 where lysine 120 and lysine 139 in the DNA binding domain are lactylated. Generation and utilization of p53 variants carrying constitutively lactylated lysine residues revealed that AARS1 lactylation of p53 hinders its liquid-liquid phase separation, DNA binding, and transcriptional activation. AARS1 expression and p53 lacylation correlate with poor prognosis among cancer patients carrying wild type p53. ß-alanine disrupts lactate binding to AARS1, reduces p53 lacylation, and mitigates tumorigenesis in animal models. We propose that AARS1 contributes to tumorigenesis by coupling tumor cell metabolism to proteome alteration.


Asunto(s)
Carcinogénesis , Ácido Láctico , Proteína p53 Supresora de Tumor , Animales , Femenino , Humanos , Ratones , Carcinogénesis/metabolismo , Carcinogénesis/genética , Línea Celular Tumoral , Ácido Láctico/metabolismo , Lisina/metabolismo , Neoplasias/metabolismo , Neoplasias/genética , Procesamiento Proteico-Postraduccional , Proteína p53 Supresora de Tumor/metabolismo , Masculino
3.
Annu Rev Biochem ; 92: 227-245, 2023 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-37001134

RESUMEN

Messenger RNA (mRNA) stability and translational efficiency are two crucial aspects of the post-transcriptional process that profoundly impact protein production in a cell. While it is widely known that ribosomes produce proteins, studies during the past decade have surprisingly revealed that ribosomes also control mRNA stability in a codon-dependent manner, a process referred to as codon optimality. Therefore, codons, the three-nucleotide words read by the ribosome, have a potent effect on mRNA stability and provide cis-regulatory information that extends beyond the amino acids they encode. While the codon optimality molecular mechanism is still unclear, the translation elongation rate appears to trigger mRNA decay. Thus, transfer RNAs emerge as potential master gene regulators affecting mRNA stability. Furthermore, while few factors related to codon optimality have been identified in yeast, the orthologous genes in vertebrates do not necessary share the same functions. Here, we discuss codon optimality findings and gene regulation layers related to codon composition in different eukaryotic species.


Asunto(s)
Biosíntesis de Proteínas , Proteínas , Animales , ARN Mensajero/metabolismo , Codón/genética , Proteínas/genética , Estabilidad del ARN , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo
4.
Cell ; 186(25): 5517-5535.e24, 2023 12 07.
Artículo en Inglés | MEDLINE | ID: mdl-37992713

RESUMEN

Transfer RNA (tRNA) modifications are critical for protein synthesis. Queuosine (Q), a 7-deaza-guanosine derivative, is present in tRNA anticodons. In vertebrate tRNAs for Tyr and Asp, Q is further glycosylated with galactose and mannose to generate galQ and manQ, respectively. However, biogenesis and physiological relevance of Q-glycosylation remain poorly understood. Here, we biochemically identified two RNA glycosylases, QTGAL and QTMAN, and successfully reconstituted Q-glycosylation of tRNAs using nucleotide diphosphate sugars. Ribosome profiling of knockout cells revealed that Q-glycosylation slowed down elongation at cognate codons, UAC and GAC (GAU), respectively. We also found that galactosylation of Q suppresses stop codon readthrough. Moreover, protein aggregates increased in cells lacking Q-glycosylation, indicating that Q-glycosylation contributes to proteostasis. Cryo-EM of human ribosome-tRNA complex revealed the molecular basis of codon recognition regulated by Q-glycosylations. Furthermore, zebrafish qtgal and qtman knockout lines displayed shortened body length, implying that Q-glycosylation is required for post-embryonic growth in vertebrates.


Asunto(s)
ARN de Transferencia , Animales , Humanos , Ratas , Anticodón , Línea Celular , Codón , Glicosilación , Nucleósido Q/química , Nucleósido Q/genética , Nucleósido Q/metabolismo , ARN de Transferencia/química , ARN de Transferencia/metabolismo , Porcinos , Pez Cebra/metabolismo , Conformación de Ácido Nucleico
5.
Cell ; 186(25): 5638-5655.e25, 2023 12 07.
Artículo en Inglés | MEDLINE | ID: mdl-38065083

RESUMEN

Photosynthesis is central to food production and the Earth's biogeochemistry, yet the molecular basis for its regulation remains poorly understood. Here, using high-throughput genetics in the model eukaryotic alga Chlamydomonas reinhardtii, we identify with high confidence (false discovery rate [FDR] < 0.11) 70 poorly characterized genes required for photosynthesis. We then enable the functional characterization of these genes by providing a resource of proteomes of mutant strains, each lacking one of these genes. The data allow assignment of 34 genes to the biogenesis or regulation of one or more specific photosynthetic complexes. Further analysis uncovers biogenesis/regulatory roles for at least seven proteins, including five photosystem I mRNA maturation factors, the chloroplast translation factor MTF1, and the master regulator PMR1, which regulates chloroplast genes via nuclear-expressed factors. Our work provides a rich resource identifying regulatory and functional genes and placing them into pathways, thereby opening the door to a system-level understanding of photosynthesis.


Asunto(s)
Chlamydomonas reinhardtii , Fotosíntesis , Chlamydomonas reinhardtii/genética , Chlamydomonas reinhardtii/metabolismo , Cloroplastos/genética , Cloroplastos/metabolismo , Fotosíntesis/genética , Regulación de la Expresión Génica , Proteínas/genética , Proteínas/metabolismo , Mutación , Ribosomas/genética , Ribosomas/metabolismo , ARN Mensajero/genética
6.
Cell ; 186(24): 5237-5253.e22, 2023 11 22.
Artículo en Inglés | MEDLINE | ID: mdl-37944512

RESUMEN

Here, we report the design, construction, and characterization of a tRNA neochromosome, a designer chromosome that functions as an additional, de novo counterpart to the native complement of Saccharomyces cerevisiae. Intending to address one of the central design principles of the Sc2.0 project, the ∼190-kb tRNA neochromosome houses all 275 relocated nuclear tRNA genes. To maximize stability, the design incorporates orthogonal genetic elements from non-S. cerevisiae yeast species. Furthermore, the presence of 283 rox recombination sites enables an orthogonal tRNA SCRaMbLE system. Following construction in yeast, we obtained evidence of a potent selective force, manifesting as a spontaneous doubling in cell ploidy. Furthermore, tRNA sequencing, transcriptomics, proteomics, nucleosome mapping, replication profiling, FISH, and Hi-C were undertaken to investigate questions of tRNA neochromosome behavior and function. Its construction demonstrates the remarkable tractability of the yeast model and opens up opportunities to directly test hypotheses surrounding these essential non-coding RNAs.


Asunto(s)
Cromosomas Artificiales de Levadura , Genoma Fúngico , Saccharomyces cerevisiae , Perfilación de la Expresión Génica , Proteómica , Saccharomyces cerevisiae/genética , Biología Sintética , ARN de Transferencia/genética , Cromosomas Artificiales de Levadura/genética
7.
Annu Rev Cell Dev Biol ; 39: 223-252, 2023 Oct 16.
Artículo en Inglés | MEDLINE | ID: mdl-37339680

RESUMEN

Transfer RNAs (tRNAs) decode messenger RNA codons to peptides at the ribosome. The nuclear genome contains many tRNA genes for each amino acid and even each anticodon. Recent evidence indicates that expression of these tRNAs in neurons is regulated, and they are not functionally redundant. When specific tRNA genes are nonfunctional, this results in an imbalance between codon demand and tRNA availability. Furthermore, tRNAs are spliced, processed, and posttranscriptionally modified. Defects in these processes lead to neurological disorders. Finally, mutations in the aminoacyl tRNA synthetases (aaRSs) also lead to disease. Recessive mutations in several aaRSs cause syndromic disorders, while dominant mutations in a subset of aaRSs lead to peripheral neuropathy, again due to an imbalance between tRNA supply and codon demand. While it is clear that disrupting tRNA biology often leads to neurological disease, additional research is needed to understand the sensitivity of neurons to these changes.

8.
Annu Rev Biochem ; 87: 75-100, 2018 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-29328783

RESUMEN

RNA polymerase (Pol) III has a specialized role in transcribing the most abundant RNAs in eukaryotic cells, transfer RNAs (tRNAs), along with other ubiquitous small noncoding RNAs, many of which have functions related to the ribosome and protein synthesis. The high energetic cost of producing these RNAs and their central role in protein synthesis underlie the robust regulation of Pol III transcription in response to nutrients and stress by growth regulatory pathways. Downstream of Pol III, signaling impacts posttranscriptional processes affecting tRNA function in translation and tRNA cleavage into smaller fragments that are increasingly attributed with novel cellular activities. In this review, we consider how nutrients and stress control Pol III transcription via its factors and its negative regulator, Maf1. We highlight recent work showing that the composition of the tRNA population and the function of individual tRNAs is dynamically controlled and that unrestrained Pol III transcription can reprogram central metabolic pathways.


Asunto(s)
ARN Polimerasa III/genética , ARN Polimerasa III/metabolismo , ARN de Transferencia/genética , ARN de Transferencia/metabolismo , Animales , Humanos , Modelos Biológicos , Modelos Moleculares , Neoplasias/genética , Neoplasias/metabolismo , Fosforilación , Conformación Proteica , ARN Polimerasa III/química , Procesamiento Postranscripcional del ARN , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Transducción de Señal , Estrés Fisiológico , Serina-Treonina Quinasas TOR/genética , Serina-Treonina Quinasas TOR/metabolismo , Factor de Transcripción TFIIIB/genética , Factor de Transcripción TFIIIB/metabolismo , Factores de Transcripción/química , Factores de Transcripción/genética , Factores de Transcripción/metabolismo , Transcripción Genética
9.
Cell ; 173(5): 1204-1216.e26, 2018 05 17.
Artículo en Inglés | MEDLINE | ID: mdl-29628141

RESUMEN

Pseudouridylation (Ψ) is the most abundant and widespread type of RNA epigenetic modification in living organisms; however, the biological role of Ψ remains poorly understood. Here, we show that a Ψ-driven posttranscriptional program steers translation control to impact stem cell commitment during early embryogenesis. Mechanistically, the Ψ "writer" PUS7 modifies and activates a novel network of tRNA-derived small fragments (tRFs) targeting the translation initiation complex. PUS7 inactivation in embryonic stem cells impairs tRF-mediated translation regulation, leading to increased protein biosynthesis and defective germ layer specification. Remarkably, dysregulation of this posttranscriptional regulatory circuitry impairs hematopoietic stem cell commitment and is common to aggressive subtypes of human myelodysplastic syndromes. Our findings unveil a critical function of Ψ in directing translation control in stem cells with important implications for development and disease.


Asunto(s)
Transferasas Intramoleculares/metabolismo , Biosíntesis de Proteínas , Seudouridina/metabolismo , ARN de Transferencia/metabolismo , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Animales , Proteínas de Ciclo Celular , Diferenciación Celular , Factores Eucarióticos de Iniciación/metabolismo , Células Madre Hematopoyéticas/citología , Células Madre Hematopoyéticas/metabolismo , Células Madre Embrionarias Humanas/citología , Células Madre Embrionarias Humanas/metabolismo , Humanos , Transferasas Intramoleculares/antagonistas & inhibidores , Transferasas Intramoleculares/genética , Ratones , Ratones Endogámicos NOD , Ratones SCID , Síndromes Mielodisplásicos/patología , Conformación de Ácido Nucleico , Fosfoproteínas/metabolismo , Proteína I de Unión a Poli(A)/antagonistas & inhibidores , Proteína I de Unión a Poli(A)/genética , Proteína I de Unión a Poli(A)/metabolismo , Interferencia de ARN , ARN Interferente Pequeño/metabolismo , Nicho de Células Madre
10.
Cell ; 170(1): 61-71.e11, 2017 Jun 29.
Artículo en Inglés | MEDLINE | ID: mdl-28666125

RESUMEN

Transposon reactivation is an inherent danger in cells that lose epigenetic silencing during developmental reprogramming. In the mouse, long terminal repeat (LTR)-retrotransposons, or endogenous retroviruses (ERV), account for most novel insertions and are expressed in the absence of histone H3 lysine 9 trimethylation in preimplantation stem cells. We found abundant 18 nt tRNA-derived small RNA (tRF) in these cells and ubiquitously expressed 22 nt tRFs that include the 3' terminal CCA of mature tRNAs and target the tRNA primer binding site (PBS) essential for ERV reverse transcription. We show that the two most active ERV families, IAP and MusD/ETn, are major targets and are strongly inhibited by tRFs in retrotransposition assays. 22 nt tRFs post-transcriptionally silence coding-competent ERVs, while 18 nt tRFs specifically interfere with reverse transcription and retrotransposon mobility. The PBS offers a unique target to specifically inhibit LTR-retrotransposons, and tRF-targeting is a potentially highly conserved mechanism of small RNA-mediated transposon control.


Asunto(s)
Silenciador del Gen , ARN Pequeño no Traducido/metabolismo , ARN de Transferencia/metabolismo , Retroviridae/genética , Células Madre/virología , Animales , Células HeLa , Humanos , Ratones , Secuencias Repetidas Terminales
11.
Cell ; 171(5): 1125-1137.e11, 2017 Nov 16.
Artículo en Inglés | MEDLINE | ID: mdl-29107333

RESUMEN

Human cytotoxic lymphocytes kill intracellular microbes. The cytotoxic granule granzyme proteases released by cytotoxic lymphocytes trigger oxidative bacterial death by disrupting electron transport, generating superoxide anion and inactivating bacterial oxidative defenses. However, they also cause non-oxidative cell death because anaerobic bacteria are also killed. Here, we use differential proteomics to identify granzyme B substrates in three unrelated bacteria: Escherichia coli, Listeria monocytogenes, and Mycobacteria tuberculosis. Granzyme B cleaves a highly conserved set of proteins in all three bacteria, which function in vital biosynthetic and metabolic pathways that are critical for bacterial survival under diverse environmental conditions. Key proteins required for protein synthesis, folding, and degradation are also substrates, including multiple aminoacyl tRNA synthetases, ribosomal proteins, protein chaperones, and the Clp system. Because killer cells use a multipronged strategy to target vital pathways, bacteria may not easily become resistant to killer cell attack.


Asunto(s)
Escherichia coli/citología , Granzimas/metabolismo , Células Asesinas Naturales/enzimología , Listeria monocytogenes/citología , Mycobacterium tuberculosis/citología , Linfocitos T Citotóxicos/enzimología , Aminoacil-ARNt Sintetasas/metabolismo , Animales , Escherichia coli/metabolismo , Humanos , Células Asesinas Naturales/inmunología , Listeria monocytogenes/metabolismo , Redes y Vías Metabólicas , Ratones , Mycobacterium tuberculosis/metabolismo , Biosíntesis de Proteínas , Proteómica , Ribosomas/metabolismo , Linfocitos T Citotóxicos/inmunología
12.
Annu Rev Cell Dev Biol ; 34: 239-264, 2018 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-30125138

RESUMEN

The pool of transfer RNA (tRNA) molecules in cells allows the ribosome to decode genetic information. This repertoire of molecular decoders is positioned in the crossroad of the genome, the transcriptome, and the proteome. Omics and systems biology now allow scientists to explore the entire repertoire of tRNAs of many organisms, revealing basic exciting biology. The tRNA gene set of hundreds of species is now characterized, in addition to the tRNA genes of organelles and viruses. Genes encoding tRNAs for certain anticodon types appear in dozens of copies in a genome, while others are universally absent from any genome. Transcriptome measurement of tRNAs is challenging, but in recent years new technologies have allowed researchers to determine the dynamic expression patterns of tRNAs. These advances reveal that availability of ready-to-translate tRNA molecules is highly controlled by several transcriptional and posttranscriptional regulatory processes. This regulation shapes the proteome according to the cellular state. The tRNA pool profoundly impacts many aspects of cellular and organismal life, including protein expression level, translation accuracy, adequacy of folding, and even mRNA stability. As a result, the shape of the tRNA pool affects organismal health and may participate in causing conditions such as cancer and neurological conditions.


Asunto(s)
Genoma/genética , Biosíntesis de Proteínas , Proteómica/tendencias , ARN de Transferencia/genética , Anticodón/genética , Codón/genética , Genómica/tendencias , Humanos , Transcriptoma/genética
13.
Mol Cell ; 84(1): 94-106, 2024 Jan 04.
Artículo en Inglés | MEDLINE | ID: mdl-38181765

RESUMEN

RNA molecules are modified post-transcriptionally to acquire their diverse functions. Transfer RNA (tRNA) has the widest variety and largest numbers of RNA modifications. tRNA modifications are pivotal for decoding the genetic code and stabilizing the tertiary structure of tRNA molecules. Alternation of tRNA modifications directly modulates the structure and function of tRNAs and regulates gene expression. Notably, thermophilic organisms exhibit characteristic tRNA modifications that are dynamically regulated in response to varying growth temperatures, thereby bolstering fitness in extreme environments. Here, we review the history and latest findings regarding the functions and biogenesis of several tRNA modifications that contribute to the cellular thermotolerance of thermophiles.


Asunto(s)
Termotolerancia , Termotolerancia/genética , Procesamiento Postranscripcional del ARN , Código Genético , ARN de Transferencia/genética , ARN/genética
14.
Mol Cell ; 84(4): 687-701.e7, 2024 Feb 15.
Artículo en Inglés | MEDLINE | ID: mdl-38266641

RESUMEN

Molecular chaperones are critical for protein homeostasis and are implicated in several human pathologies such as neurodegeneration and cancer. While the binding of chaperones to nascent and misfolded proteins has been studied in great detail, the direct interaction between chaperones and RNA has not been systematically investigated. Here, we provide the evidence for widespread interaction between chaperones and RNA in human cells. We show that the major chaperone heat shock protein 70 (HSP70) binds to non-coding RNA transcribed by RNA polymerase III (RNA Pol III) such as tRNA and 5S rRNA. Global chromatin profiling revealed that HSP70 binds genomic sites of transcription by RNA Pol III. Detailed biochemical analyses showed that HSP70 alleviates the inhibitory effect of cognate tRNA transcript on tRNA gene transcription. Thus, our study uncovers an unexpected role of HSP70-RNA interaction in the biogenesis of a specific class of non-coding RNA with wider implications in cancer therapeutics.


Asunto(s)
Proteínas HSP70 de Choque Térmico , Neoplasias , Humanos , Proteínas HSP70 de Choque Térmico/genética , Proteínas HSP70 de Choque Térmico/metabolismo , Chaperonas Moleculares/metabolismo , ARN , ARN Polimerasa III/genética , ARN Polimerasa III/metabolismo , ARN de Transferencia/genética , ARN no Traducido/genética
15.
Annu Rev Biochem ; 85: 485-514, 2016 Jun 02.
Artículo en Inglés | MEDLINE | ID: mdl-27145839

RESUMEN

Radical S-adenosylmethionine (SAM) enzymes catalyze an astonishing array of complex and chemically challenging reactions across all domains of life. Of approximately 114,000 of these enzymes, 8 are known to be present in humans: MOCS1, molybdenum cofactor biosynthesis; LIAS, lipoic acid biosynthesis; CDK5RAP1, 2-methylthio-N(6)-isopentenyladenosine biosynthesis; CDKAL1, methylthio-N(6)-threonylcarbamoyladenosine biosynthesis; TYW1, wybutosine biosynthesis; ELP3, 5-methoxycarbonylmethyl uridine; and RSAD1 and viperin, both of unknown function. Aberrations in the genes encoding these proteins result in a variety of diseases. In this review, we summarize the biochemical characterization of these 8 radical S-adenosylmethionine enzymes and, in the context of human health, describe the deleterious effects that result from such genetic mutations.


Asunto(s)
Diabetes Mellitus Tipo 2/genética , Cardiopatías Congénitas/genética , Errores Innatos del Metabolismo de los Metales/genética , Mutación , Enfermedades Neurodegenerativas/genética , S-Adenosilmetionina/metabolismo , Liasas de Carbono-Carbono , Diabetes Mellitus Tipo 2/enzimología , Diabetes Mellitus Tipo 2/patología , Expresión Génica , Cardiopatías Congénitas/enzimología , Cardiopatías Congénitas/patología , Histona Acetiltransferasas/genética , Histona Acetiltransferasas/metabolismo , Humanos , Péptidos y Proteínas de Señalización Intracelular/genética , Péptidos y Proteínas de Señalización Intracelular/metabolismo , Proteínas Hierro-Azufre/genética , Proteínas Hierro-Azufre/metabolismo , Errores Innatos del Metabolismo de los Metales/enzimología , Errores Innatos del Metabolismo de los Metales/patología , Proteínas del Tejido Nervioso/genética , Proteínas del Tejido Nervioso/metabolismo , Enfermedades Neurodegenerativas/enzimología , Enfermedades Neurodegenerativas/patología , Proteínas Nucleares/genética , Proteínas Nucleares/metabolismo , Oxidorreductasas/genética , Oxidorreductasas/metabolismo , Oxidorreductasas actuantes sobre Donantes de Grupo CH-CH , Proteínas/genética , Proteínas/metabolismo , Ácido Tióctico/metabolismo , ARNt Metiltransferasas/genética , ARNt Metiltransferasas/metabolismo
16.
Annu Rev Genet ; 57: 461-489, 2023 11 27.
Artículo en Inglés | MEDLINE | ID: mdl-37722686

RESUMEN

Enzymes that phosphorylate, dephosphorylate, and ligate RNA 5' and 3' ends were discovered more than half a century ago and were eventually shown to repair purposeful site-specific endonucleolytic breaks in the RNA phosphodiester backbone. The pace of discovery and characterization of new candidate RNA repair activities in taxa from all phylogenetic domains greatly exceeds our understanding of the biological pathways in which they act. The key questions anent RNA break repair in vivo are (a) identifying the triggers, agents, and targets of RNA cleavage and (b) determining whether RNA repair results in restoration of the original RNA, modification of the RNA (by loss or gain at the ends), or rearrangements of the broken RNA segments (i.e., RNA recombination). This review provides a perspective on the discovery, mechanisms, and physiology of purposeful RNA break repair, highlighting exemplary repair pathways (e.g., tRNA restriction-repair and tRNA splicing) for which genetics has figured prominently in their elucidation.


Asunto(s)
ARN Ligasa (ATP) , ARN , Filogenia , ARN Ligasa (ATP)/genética , ARN Ligasa (ATP)/metabolismo , ARN/genética , ARN de Transferencia/genética , ARN de Transferencia/metabolismo , Empalme del ARN/genética
17.
Cell ; 167(3): 816-828.e16, 2016 Oct 20.
Artículo en Inglés | MEDLINE | ID: mdl-27745969

RESUMEN

tRNA is a central component of protein synthesis and the cell signaling network. One salient feature of tRNA is its heavily modified status, which can critically impact its function. Here, we show that mammalian ALKBH1 is a tRNA demethylase. It mediates the demethylation of N1-methyladenosine (m1A) in tRNAs. The ALKBH1-catalyzed demethylation of the target tRNAs results in attenuated translation initiation and decreased usage of tRNAs in protein synthesis. This process is dynamic and responds to glucose availability to affect translation. Our results uncover reversible methylation of tRNA as a new mechanism of post-transcriptional gene expression regulation.


Asunto(s)
Histona H2a Dioxigenasa, Homólogo 1 de AlkB/metabolismo , Regulación de la Expresión Génica , Biosíntesis de Proteínas/genética , ARN de Transferencia/metabolismo , Adenosina/análogos & derivados , Adenosina/metabolismo , Histona H2a Dioxigenasa, Homólogo 1 de AlkB/genética , Glucosa/deficiencia , Células HeLa , Humanos , Metilación , Polirribosomas/metabolismo
18.
Cell ; 167(1): 133-144.e13, 2016 Sep 22.
Artículo en Inglés | MEDLINE | ID: mdl-27662086

RESUMEN

In bacterial translational initiation, three initiation factors (IFs 1-3) enable the selection of initiator tRNA and the start codon in the P site of the 30S ribosomal subunit. Here, we report 11 single-particle cryo-electron microscopy (cryoEM) reconstructions of the complex of bacterial 30S subunit with initiator tRNA, mRNA, and IFs 1-3, representing different steps along the initiation pathway. IF1 provides key anchoring points for IF2 and IF3, thereby enhancing their activities. IF2 positions a domain in an extended conformation appropriate for capturing the formylmethionyl moiety charged on tRNA. IF3 and tRNA undergo large conformational changes to facilitate the accommodation of the formylmethionyl-tRNA (fMet-tRNA(fMet)) into the P site for start codon recognition.


Asunto(s)
Codón Iniciador , Iniciación de la Cadena Peptídica Traduccional , Factor 3 Procariótico de Iniciación/química , ARN Mensajero/química , ARN de Transferencia de Metionina/química , Subunidades Ribosómicas Pequeñas Bacterianas/química , Thermus thermophilus/metabolismo , Microscopía por Crioelectrón , Cristalografía , Conformación Proteica , Thermus thermophilus/genética
19.
Mol Cell ; 83(8): 1328-1339.e4, 2023 04 20.
Artículo en Inglés | MEDLINE | ID: mdl-37028420

RESUMEN

Removal of the intron from precursor-tRNA (pre-tRNA) is essential in all three kingdoms of life. In humans, this process is mediated by the tRNA splicing endonuclease (TSEN) comprising four subunits: TSEN2, TSEN15, TSEN34, and TSEN54. Here, we report the cryo-EM structures of human TSEN bound to full-length pre-tRNA in the pre-catalytic and post-catalytic states at average resolutions of 2.94 and 2.88 Å, respectively. Human TSEN features an extended surface groove that holds the L-shaped pre-tRNA. The mature domain of pre-tRNA is recognized by conserved structural elements of TSEN34, TSEN54, and TSEN2. Such recognition orients the anticodon stem of pre-tRNA and places the 3'-splice site and 5'-splice site into the catalytic centers of TSEN34 and TSEN2, respectively. The bulk of the intron sequences makes no direct interaction with TSEN, explaining why pre-tRNAs of varying introns can be accommodated and cleaved. Our structures reveal the molecular ruler mechanism of pre-tRNA cleavage by TSEN.


Asunto(s)
Endorribonucleasas , Precursores del ARN , Humanos , Intrones/genética , Precursores del ARN/genética , Precursores del ARN/metabolismo , Endorribonucleasas/genética , ARN de Transferencia/genética , ARN de Transferencia/metabolismo , Sitios de Empalme de ARN , Empalme del ARN , Conformación de Ácido Nucleico , Endonucleasas/genética
20.
Mol Cell ; 83(22): 3953-3971, 2023 Nov 16.
Artículo en Inglés | MEDLINE | ID: mdl-37802077

RESUMEN

tRNA function is based on unique structures that enable mRNA decoding using anticodon trinucleotides. These structures interact with specific aminoacyl-tRNA synthetases and ribosomes using 3D shape and sequence signatures. Beyond translation, tRNAs serve as versatile signaling molecules interacting with other RNAs and proteins. Through evolutionary processes, tRNA fragmentation emerges as not merely random degradation but an act of recreation, generating specific shorter molecules called tRNA-derived small RNAs (tsRNAs). These tsRNAs exploit their linear sequences and newly arranged 3D structures for unexpected biological functions, epitomizing the tRNA "renovatio" (from Latin, meaning renewal, renovation, and rebirth). Emerging methods to uncover full tRNA/tsRNA sequences and modifications, combined with techniques to study RNA structures and to integrate AI-powered predictions, will enable comprehensive investigations of tRNA fragmentation products and new interaction potentials in relation to their biological functions. We anticipate that these directions will herald a new era for understanding biological complexity and advancing pharmaceutical engineering.


Asunto(s)
Aminoacil-ARNt Sintetasas , ARN de Transferencia , ARN de Transferencia/metabolismo , Anticodón , Aminoacil-ARNt Sintetasas/metabolismo , Ribosomas/metabolismo , ARN Mensajero/genética
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