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1.
Annu Rev Biochem ; 93(1): 109-137, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38598854

RESUMO

Methylation of RNA nucleotides represents an important layer of gene expression regulation, and perturbation of the RNA methylome is associated with pathophysiology. In cells, RNA methylations are installed by RNA methyltransferases (RNMTs) that are specialized to catalyze particular types of methylation (ribose or different base positions). Furthermore, RNMTs must specifically recognize their appropriate target RNAs within the RNA-dense cellular environment. Some RNMTs are catalytically active alone and achieve target specificity via recognition of sequence motifs and/or RNA structures. Others function together with protein cofactors that can influence stability, S-adenosyl-L-methionine binding, and RNA affinity as well as aiding specific recruitment and catalytic activity. Association of RNMTs with guide RNAs represents an alternative mechanism to direct site-specific methylation by an RNMT that lacks intrinsic specificity. Recently, ribozyme-catalyzed methylation of RNA has been achieved in vitro, and here, we compare these different strategies for RNA methylation from structural and mechanistic perspectives.


Assuntos
Conformação de Ácido Nucleico , RNA Catalítico , RNA , RNA Catalítico/metabolismo , RNA Catalítico/química , RNA Catalítico/genética , Metilação , RNA/metabolismo , RNA/genética , RNA/química , Humanos , S-Adenosilmetionina/metabolismo , S-Adenosilmetionina/química , Nucleotídeos/metabolismo , Nucleotídeos/química , Nucleotídeos/genética , tRNA Metiltransferases/metabolismo , tRNA Metiltransferases/genética , tRNA Metiltransferases/química , Especificidade por Substrato , Animais , Modelos Moleculares
2.
Cell ; 187(13): 3249-3261.e14, 2024 Jun 20.
Artigo em Inglês | MEDLINE | ID: mdl-38781968

RESUMO

Thermostable clustered regularly interspaced short palindromic repeats (CRISPR) and CRISPR-associated (Cas9) enzymes could improve genome-editing efficiency and delivery due to extended protein lifetimes. However, initial experimentation demonstrated Geobacillus stearothermophilus Cas9 (GeoCas9) to be virtually inactive when used in cultured human cells. Laboratory-evolved variants of GeoCas9 overcome this natural limitation by acquiring mutations in the wedge (WED) domain that produce >100-fold-higher genome-editing levels. Cryoelectron microscopy (cryo-EM) structures of the wild-type and improved GeoCas9 (iGeoCas9) enzymes reveal extended contacts between the WED domain of iGeoCas9 and DNA substrates. Biochemical analysis shows that iGeoCas9 accelerates DNA unwinding to capture substrates under the magnesium-restricted conditions typical of mammalian but not bacterial cells. These findings enabled rational engineering of other Cas9 orthologs to enhance genome-editing levels, pointing to a general strategy for editing enzyme improvement. Together, these results uncover a new role for the Cas9 WED domain in DNA unwinding and demonstrate how accelerated target unwinding dramatically improves Cas9-induced genome-editing activity.


Assuntos
Proteína 9 Associada à CRISPR , Sistemas CRISPR-Cas , Microscopia Crioeletrônica , DNA , Edição de Genes , Humanos , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/genética , Proteínas de Bactérias/química , Proteína 9 Associada à CRISPR/metabolismo , Proteína 9 Associada à CRISPR/genética , Sistemas CRISPR-Cas/genética , DNA/metabolismo , DNA/genética , Edição de Genes/métodos , Geobacillus stearothermophilus/genética , Geobacillus stearothermophilus/metabolismo , Células HEK293 , Domínios Proteicos , Genoma Humano , Modelos Moleculares , Estrutura Terciária de Proteína , Conformação de Ácido Nucleico , Biocatálise , Magnésio/química , Magnésio/metabolismo
3.
Cell ; 186(25): 5517-5535.e24, 2023 12 07.
Artigo em Inglês | MEDLINE | ID: mdl-37992713

RESUMO

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.


Assuntos
RNA de Transferência , Animais , Humanos , Ratos , Anticódon , Linhagem Celular , Códon , Glicosilação , Nucleosídeo Q/química , Nucleosídeo Q/genética , Nucleosídeo Q/metabolismo , RNA de Transferência/química , RNA de Transferência/metabolismo , Suínos , Peixe-Zebra/metabolismo , Conformação de Ácido Nucleico
4.
Cell ; 184(15): 4064-4072.e28, 2021 07 22.
Artigo em Inglês | MEDLINE | ID: mdl-34133942

RESUMO

Transcription initiation requires assembly of the RNA polymerase II (Pol II) pre-initiation complex (PIC) and opening of promoter DNA. Here, we present the long-sought high-resolution structure of the yeast PIC and define the mechanism of initial DNA opening. We trap the PIC in an intermediate state that contains half a turn of open DNA located 30-35 base pairs downstream of the TATA box. The initially opened DNA region is flanked and stabilized by the polymerase "clamp head loop" and the TFIIF "charged region" that both contribute to promoter-initiated transcription. TFIIE facilitates initiation by buttressing the clamp head loop and by regulating the TFIIH translocase. The initial DNA bubble is then extended in the upstream direction, leading to the open promoter complex and enabling start-site scanning and RNA synthesis. This unique mechanism of DNA opening may permit more intricate regulation than in the Pol I and Pol III systems.


Assuntos
DNA/química , RNA Polimerase II/química , RNA Polimerase II/metabolismo , Saccharomyces cerevisiae/metabolismo , Iniciação da Transcrição Genética , Sequência de Aminoácidos , Microscopia Crioeletrônica , DNA/ultraestrutura , Modelos Biológicos , Modelos Moleculares , Conformação de Ácido Nucleico , Regiões Promotoras Genéticas , RNA Polimerase II/ultraestrutura , Deleção de Sequência , Fator de Transcrição TFIIH , Fatores de Transcrição TFII/metabolismo
5.
Cell ; 184(21): 5448-5464.e22, 2021 10 14.
Artigo em Inglês | MEDLINE | ID: mdl-34624221

RESUMO

Structural maintenance of chromosomes (SMC) complexes organize genome topology in all kingdoms of life and have been proposed to perform this function by DNA loop extrusion. How this process works is unknown. Here, we have analyzed how loop extrusion is mediated by human cohesin-NIPBL complexes, which enable chromatin folding in interphase cells. We have identified DNA binding sites and large-scale conformational changes that are required for loop extrusion and have determined how these are coordinated. Our results suggest that DNA is translocated by a spontaneous 50 nm-swing of cohesin's hinge, which hands DNA over to the ATPase head of SMC3, where upon binding of ATP, DNA is clamped by NIPBL. During this process, NIPBL "jumps ship" from the hinge toward the SMC3 head and might thereby couple the spontaneous hinge swing to ATP-dependent DNA clamping. These results reveal mechanistic principles of how cohesin-NIPBL and possibly other SMC complexes mediate loop extrusion.


Assuntos
Proteínas de Ciclo Celular/metabolismo , Proteínas Cromossômicas não Histona/metabolismo , DNA/química , Conformação de Ácido Nucleico , Adenosina Trifosfatases/metabolismo , Trifosfato de Adenosina/metabolismo , Sítios de Ligação , Proteínas de Ciclo Celular/química , DNA/metabolismo , Transferência Ressonante de Energia de Fluorescência , Células HeLa , Humanos , Hidrólise , Cinética , Microscopia de Força Atômica , Modelos Moleculares , Proteínas Nucleares/metabolismo , Conformação Proteica , Coesinas
6.
Cell ; 184(7): 1865-1883.e20, 2021 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-33636127

RESUMO

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is the cause of the ongoing coronavirus disease 2019 (COVID-19) pandemic. Understanding of the RNA virus and its interactions with host proteins could improve therapeutic interventions for COVID-19. By using icSHAPE, we determined the structural landscape of SARS-CoV-2 RNA in infected human cells and from refolded RNAs, as well as the regulatory untranslated regions of SARS-CoV-2 and six other coronaviruses. We validated several structural elements predicted in silico and discovered structural features that affect the translation and abundance of subgenomic viral RNAs in cells. The structural data informed a deep-learning tool to predict 42 host proteins that bind to SARS-CoV-2 RNA. Strikingly, antisense oligonucleotides targeting the structural elements and FDA-approved drugs inhibiting the SARS-CoV-2 RNA binding proteins dramatically reduced SARS-CoV-2 infection in cells derived from human liver and lung tumors. Our findings thus shed light on coronavirus and reveal multiple candidate therapeutics for COVID-19 treatment.


Assuntos
Tratamento Farmacológico da COVID-19 , Reposicionamento de Medicamentos , RNA Viral , Proteínas de Ligação a RNA/antagonistas & inibidores , SARS-CoV-2 , Animais , Linhagem Celular , Chlorocebus aethiops , Aprendizado Profundo , Humanos , Conformação de Ácido Nucleico , RNA Viral/química , Proteínas de Ligação a RNA/metabolismo , SARS-CoV-2/efeitos dos fármacos , SARS-CoV-2/genética
7.
Cell ; 184(12): 3125-3142.e25, 2021 06 10.
Artigo em Inglês | MEDLINE | ID: mdl-33930289

RESUMO

The N6-methyladenosine (m6A) RNA modification is used widely to alter the fate of mRNAs. Here we demonstrate that the C. elegans writer METT-10 (the ortholog of mouse METTL16) deposits an m6A mark on the 3' splice site (AG) of the S-adenosylmethionine (SAM) synthetase pre-mRNA, which inhibits its proper splicing and protein production. The mechanism is triggered by a rich diet and acts as an m6A-mediated switch to stop SAM production and regulate its homeostasis. Although the mammalian SAM synthetase pre-mRNA is not regulated via this mechanism, we show that splicing inhibition by 3' splice site m6A is conserved in mammals. The modification functions by physically preventing the essential splicing factor U2AF35 from recognizing the 3' splice site. We propose that use of splice-site m6A is an ancient mechanism for splicing regulation.


Assuntos
Adenosina/análogos & derivados , Sítios de Splice de RNA/genética , Splicing de RNA/genética , Fator de Processamento U2AF/metabolismo , Adenosina/metabolismo , Sequência de Aminoácidos , Animais , Sequência de Bases , Caenorhabditis elegans/genética , Sequência Conservada/genética , Dieta , Células HeLa , Humanos , Íntrons/genética , Metionina Adenosiltransferase , Metilação , Metiltransferases/química , Camundongos , Mutação/genética , Conformação de Ácido Nucleico , Ligação Proteica , Precursores de RNA/química , Precursores de RNA/genética , Precursores de RNA/metabolismo , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , RNA Nuclear Pequeno , S-Adenosilmetionina , Transcriptoma/genética
8.
Cell ; 184(17): 4531-4546.e26, 2021 08 19.
Artigo em Inglês | MEDLINE | ID: mdl-34314702

RESUMO

Defects in translation lead to changes in the expression of proteins that can serve as drivers of cancer formation. Here, we show that cytosolic NAD+ synthesis plays an essential role in ovarian cancer by regulating translation and maintaining protein homeostasis. Expression of NMNAT-2, a cytosolic NAD+ synthase, is highly upregulated in ovarian cancers. NMNAT-2 supports the catalytic activity of the mono(ADP-ribosyl) transferase (MART) PARP-16, which mono(ADP-ribosyl)ates (MARylates) ribosomal proteins. Depletion of NMNAT-2 or PARP-16 leads to inhibition of MARylation, increased polysome association and enhanced translation of specific mRNAs, aggregation of their translated protein products, and reduced growth of ovarian cancer cells. Furthermore, MARylation of the ribosomal proteins, such as RPL24 and RPS6, inhibits polysome assembly by stabilizing eIF6 binding to ribosomes. Collectively, our results demonstrate that ribosome MARylation promotes protein homeostasis in cancers by fine-tuning the levels of protein synthesis and preventing toxic protein aggregation.


Assuntos
ADP-Ribosilação , Neoplasias Ovarianas/metabolismo , Biossíntese de Proteínas , Proteostase , Ribossomos/metabolismo , Regiões 3' não Traduzidas/genética , Animais , Sequência de Bases , Linhagem Celular Tumoral , Proliferação de Células , Estresse do Retículo Endoplasmático , Tubas Uterinas/metabolismo , Feminino , Humanos , Camundongos Endogâmicos NOD , Camundongos SCID , NAD/metabolismo , Nicotinamida-Nucleotídeo Adenililtransferase , Conformação de Ácido Nucleico , Neoplasias Ovarianas/patologia , Poli(ADP-Ribose) Polimerases/metabolismo , Polirribossomos/metabolismo , RNA Mensageiro/química , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , RNA Interferente Pequeno/metabolismo , Proteínas Ribossômicas/metabolismo
9.
Cell ; 184(14): 3626-3642.e14, 2021 07 08.
Artigo em Inglês | MEDLINE | ID: mdl-34186018

RESUMO

All cells fold their genomes, including bacterial cells, where the chromosome is compacted into a domain-organized meshwork called the nucleoid. How compaction and domain organization arise is not fully understood. Here, we describe a method to estimate the average mesh size of the nucleoid in Escherichia coli. Using nucleoid mesh size and DNA concentration estimates, we find that the cytoplasm behaves as a poor solvent for the chromosome when the cell is considered as a simple semidilute polymer solution. Monte Carlo simulations suggest that a poor solvent leads to chromosome compaction and DNA density heterogeneity (i.e., domain formation) at physiological DNA concentration. Fluorescence microscopy reveals that the heterogeneous DNA density negatively correlates with ribosome density within the nucleoid, consistent with cryoelectron tomography data. Drug experiments, together with past observations, suggest the hypothesis that RNAs contribute to the poor solvent effects, connecting chromosome compaction and domain formation to transcription and intracellular organization.


Assuntos
Cromossomos Bacterianos/química , Escherichia coli/metabolismo , Conformação de Ácido Nucleico , Solventes/química , Transcrição Gênica , Aminoglicosídeos/farmacologia , Simulação por Computador , DNA Bacteriano/química , Difusão , Escherichia coli/efeitos dos fármacos , Proteínas de Fluorescência Verde/metabolismo , Tamanho da Partícula , RNA Bacteriano/metabolismo , Ribossomos/metabolismo , Ribossomos/ultraestrutura , Transcrição Gênica/efeitos dos fármacos
10.
Annu Rev Biochem ; 89: 283-308, 2020 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-32569523

RESUMO

We have known for decades that long noncoding RNAs (lncRNAs) can play essential functions across most forms of life. The maintenance of chromosome length requires an lncRNA (e.g., hTERC) and two lncRNAs in the ribosome that are required for protein synthesis. Thus, lncRNAs can represent powerful RNA machines. More recently, it has become clear that mammalian genomes encode thousands more lncRNAs. Thus, we raise the question: Which, if any, of these lncRNAs could also represent RNA-based machines? Here we synthesize studies that are beginning to address this question by investigating fundamental properties of lncRNA genes, revealing new insights into the RNA structure-function relationship, determining cis- and trans-acting lncRNAs in vivo, and generating new developments in high-throughput screening used to identify functional lncRNAs. Overall, these findings provide a context toward understanding the molecular grammar underlying lncRNA biology.


Assuntos
Genoma , Biossíntese de Proteínas , RNA Longo não Codificante/genética , RNA Mensageiro/genética , RNA/genética , Telomerase/genética , Animais , Núcleo Celular/genética , Núcleo Celular/metabolismo , Células Eucarióticas/citologia , Células Eucarióticas/metabolismo , Humanos , Conformação de Ácido Nucleico , Regiões Promotoras Genéticas , RNA/metabolismo , RNA Longo não Codificante/química , RNA Longo não Codificante/metabolismo , RNA Mensageiro/química , RNA Mensageiro/metabolismo , Relação Estrutura-Atividade , Telomerase/metabolismo , Homeostase do Telômero , Transcrição Gênica
11.
Annu Rev Biochem ; 89: 359-388, 2020 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-31794245

RESUMO

The spliceosome removes introns from messenger RNA precursors (pre-mRNA). Decades of biochemistry and genetics combined with recent structural studies of the spliceosome have produced a detailed view of the mechanism of splicing. In this review, we aim to make this mechanism understandable and provide several videos of the spliceosome in action to illustrate the intricate choreography of splicing. The U1 and U2 small nuclear ribonucleoproteins (snRNPs) mark an intron and recruit the U4/U6.U5 tri-snRNP. Transfer of the 5' splice site (5'SS) from U1 to U6 snRNA triggers unwinding of U6 snRNA from U4 snRNA. U6 folds with U2 snRNA into an RNA-based active site that positions the 5'SS at two catalytic metal ions. The branch point (BP) adenosine attacks the 5'SS, producing a free 5' exon. Removal of the BP adenosine from the active site allows the 3'SS to bind, so that the 5' exon attacks the 3'SS to produce mature mRNA and an excised lariat intron.


Assuntos
RNA Helicases DEAD-box/genética , Fatores de Processamento de RNA/genética , Splicing de RNA , RNA Nuclear Pequeno/genética , Saccharomyces cerevisiae/genética , Spliceossomos/metabolismo , Domínio Catalítico , RNA Helicases DEAD-box/química , RNA Helicases DEAD-box/metabolismo , Éxons , Humanos , Íntrons , Modelos Moleculares , Conformação de Ácido Nucleico , Ligação Proteica , Estrutura Secundária de Proteína , RNA Helicases/química , RNA Helicases/genética , RNA Helicases/metabolismo , Precursores de RNA/química , Precursores de RNA/genética , Precursores de RNA/metabolismo , Fatores de Processamento de RNA/química , Fatores de Processamento de RNA/metabolismo , RNA Nuclear Pequeno/química , RNA Nuclear Pequeno/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Spliceossomos/genética , Spliceossomos/ultraestrutura
12.
Annu Rev Biochem ; 89: 333-358, 2020 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-31815536

RESUMO

Splicing of the precursor messenger RNA, involving intron removal and exon ligation, is mediated by the spliceosome. Together with biochemical and genetic investigations of the past four decades, structural studies of the intact spliceosome at atomic resolution since 2015 have led to mechanistic delineation of RNA splicing with remarkable insights. The spliceosome is proven to be a protein-orchestrated metalloribozyme. Conserved elements of small nuclear RNA (snRNA) constitute the splicing active site with two catalytic metal ions and recognize three conserved intron elements through duplex formation, which are delivered into the splicing active site for branching and exon ligation. The protein components of the spliceosome stabilize the conformation of the snRNA, drive spliceosome remodeling, orchestrate the movement of the RNA elements, and facilitate the splicing reaction. The overall organization of the spliceosome and the configuration of the splicing active site are strictly conserved between human and yeast.


Assuntos
Fatores de Processamento de RNA/genética , Splicing de RNA , Proteínas de Ligação a RNA/genética , Ribonucleoproteína Nuclear Pequena U4-U6/genética , Ribonucleoproteína Nuclear Pequena U5/genética , Proteínas de Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/genética , Spliceossomos/metabolismo , Domínio Catalítico , Sequência Conservada , Éxons , Humanos , Íntrons , Modelos Moleculares , Conformação de Ácido Nucleico , Estrutura Secundária de Proteína , RNA Helicases/química , RNA Helicases/genética , RNA Helicases/metabolismo , Precursores de RNA/química , Precursores de RNA/genética , Precursores de RNA/metabolismo , Fatores de Processamento de RNA/química , Fatores de Processamento de RNA/metabolismo , RNA Nuclear Pequeno/química , RNA Nuclear Pequeno/genética , RNA Nuclear Pequeno/metabolismo , Proteínas de Ligação a RNA/química , Proteínas de Ligação a RNA/metabolismo , Ribonucleoproteína Nuclear Pequena U4-U6/química , Ribonucleoproteína Nuclear Pequena U4-U6/metabolismo , Ribonucleoproteína Nuclear Pequena U5/química , Ribonucleoproteína Nuclear Pequena U5/metabolismo , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/metabolismo , Spliceossomos/genética , Spliceossomos/ultraestrutura
13.
Cell ; 181(2): 346-361.e17, 2020 04 16.
Artigo em Inglês | MEDLINE | ID: mdl-32302572

RESUMO

Stressed cells shut down translation, release mRNA molecules from polysomes, and form stress granules (SGs) via a network of interactions that involve G3BP. Here we focus on the mechanistic underpinnings of SG assembly. We show that, under non-stress conditions, G3BP adopts a compact auto-inhibited state stabilized by electrostatic intramolecular interactions between the intrinsically disordered acidic tracts and the positively charged arginine-rich region. Upon release from polysomes, unfolded mRNAs outcompete G3BP auto-inhibitory interactions, engendering a conformational transition that facilitates clustering of G3BP through protein-RNA interactions. Subsequent physical crosslinking of G3BP clusters drives RNA molecules into networked RNA/protein condensates. We show that G3BP condensates impede RNA entanglement and recruit additional client proteins that promote SG maturation or induce a liquid-to-solid transition that may underlie disease. We propose that condensation coupled to conformational rearrangements and heterotypic multivalent interactions may be a general principle underlying RNP granule assembly.


Assuntos
Grânulos Citoplasmáticos/metabolismo , DNA Helicases/metabolismo , Proteínas de Ligação a Poli-ADP-Ribose/metabolismo , RNA Helicases/metabolismo , Proteínas com Motivo de Reconhecimento de RNA/metabolismo , Ribonucleoproteínas/metabolismo , Proteínas de Transporte/metabolismo , Linhagem Celular Tumoral , Citoplasma/metabolismo , Células HeLa , Humanos , Conformação de Ácido Nucleico , Organelas/metabolismo , Fosforilação , RNA Mensageiro/metabolismo , Estresse Fisiológico/genética
14.
Cell ; 180(5): 1018-1032.e16, 2020 03 05.
Artigo em Inglês | MEDLINE | ID: mdl-32109416

RESUMO

The ability to identify single-nucleotide mutations is critical for probing cell biology and for precise detection of disease. However, the small differences in hybridization energy provided by single-base changes makes identification of these mutations challenging in living cells and complex reaction environments. Here, we report a class of de novo-designed prokaryotic riboregulators that provide ultraspecific RNA detection capabilities in vivo and in cell-free transcription-translation reactions. These single-nucleotide-specific programmable riboregulators (SNIPRs) provide over 100-fold differences in gene expression in response to target RNAs differing by a single nucleotide in E. coli and resolve single epitranscriptomic marks in vitro. By exploiting the programmable SNIPR design, we implement an automated design algorithm to develop riboregulators for a range of mutations associated with cancer, drug resistance, and genetic disorders. Integrating SNIPRs with portable paper-based cell-free reactions enables convenient isothermal detection of cancer-associated mutations from clinical samples and identification of Zika strains through unambiguous colorimetric reactions.


Assuntos
Epigenômica , Polimorfismo de Nucleotídeo Único/genética , RNA/genética , Transcriptoma/genética , Resistência a Medicamentos/genética , Escherichia coli/genética , Regulação da Expressão Gênica/genética , Humanos , Mutação/genética , Neoplasias/genética , Conformação de Ácido Nucleico , Células Procarióticas/metabolismo , Biologia Sintética , Zika virus/genética , Zika virus/isolamento & purificação , Zika virus/patogenicidade
15.
Cell ; 180(4): 703-716.e18, 2020 02 20.
Artigo em Inglês | MEDLINE | ID: mdl-32059782

RESUMO

The three-dimensional structures of chromosomes are increasingly being recognized as playing a major role in cellular regulatory states. The efficiency and promiscuity of phage Mu transposition was exploited to directly measure in vivo interactions between genomic loci in E. coli. Two global organizing principles have emerged: first, the chromosome is well-mixed and uncompartmentalized, with transpositions occurring freely between all measured loci; second, several gene families/regions show "clustering": strong three-dimensional co-localization regardless of linear genomic distance. The activities of the SMC/condensin protein MukB and nucleoid-compacting protein subunit HU-α are essential for the well-mixed state; HU-α is also needed for clustering of 6/7 ribosomal RNA-encoding loci. The data are explained by a model in which the chromosomal structure is driven by dynamic competition between DNA replication and chromosomal relaxation, providing a foundation for determining how region-specific properties contribute to both chromosomal structure and gene regulation.


Assuntos
Bacteriófago mu/genética , Cromossomos Bacterianos/genética , Elementos de DNA Transponíveis , Proteínas Cromossômicas não Histona/genética , Proteínas Cromossômicas não Histona/metabolismo , Cromossomos Bacterianos/química , DNA Bacteriano/química , DNA Bacteriano/genética , Proteínas de Ligação a DNA/genética , Proteínas de Ligação a DNA/metabolismo , Escherichia coli , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Genoma Bacteriano , Conformação de Ácido Nucleico , Transposases/genética , Transposases/metabolismo
16.
Annu Rev Biochem ; 88: 137-162, 2019 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-31220977

RESUMO

Genomic DNA is susceptible to endogenous and environmental stresses that modify DNA structure and its coding potential. Correspondingly, cells have evolved intricate DNA repair systems to deter changes to their genetic material. Base excision DNA repair involves a number of enzymes and protein cofactors that hasten repair of damaged DNA bases. Recent advances have identified macromolecular complexes that assemble at the DNA lesion and mediate repair. The repair of base lesions generally requires five enzymatic activities: glycosylase, endonuclease, lyase, polymerase, and ligase. The protein cofactors and mechanisms for coordinating the sequential enzymatic steps of repair are being revealed through a range of experimental approaches. We discuss the enzymes and protein cofactors involved in eukaryotic base excision repair, emphasizing the challenge of integrating findings from multiple methodologies. The results provide an opportunity to assimilate biochemical findings with cell-based assays to uncover new insights into this deceptively complex repair pathway.


Assuntos
DNA Glicosilases/química , DNA Polimerase Dirigida por DNA/química , DNA/química , Endonucleases/química , Genoma , Ligases/química , Liases/química , DNA/metabolismo , DNA/ultraestrutura , Dano ao DNA , DNA Glicosilases/metabolismo , DNA Glicosilases/ultraestrutura , Reparo do DNA , DNA Polimerase Dirigida por DNA/metabolismo , DNA Polimerase Dirigida por DNA/ultraestrutura , Endonucleases/metabolismo , Endonucleases/ultraestrutura , Eucariotos/genética , Eucariotos/metabolismo , Células Eucarióticas/citologia , Células Eucarióticas/enzimologia , Instabilidade Genômica , Humanos , Ligases/metabolismo , Ligases/ultraestrutura , Liases/metabolismo , Liases/ultraestrutura , Modelos Moleculares , Mutagênese , Conformação de Ácido Nucleico , Conformação Proteica
17.
Cell ; 179(6): 1357-1369.e16, 2019 11 27.
Artigo em Inglês | MEDLINE | ID: mdl-31761533

RESUMO

Ribosome assembly is an efficient but complex and heterogeneous process during which ribosomal proteins assemble on the nascent rRNA during transcription. Understanding how the interplay between nascent RNA folding and protein binding determines the fate of transcripts remains a major challenge. Here, using single-molecule fluorescence microscopy, we follow assembly of the entire 3' domain of the bacterial small ribosomal subunit in real time. We find that co-transcriptional rRNA folding is complicated by the formation of long-range RNA interactions and that r-proteins self-chaperone the rRNA folding process prior to stable incorporation into a ribonucleoprotein (RNP) complex. Assembly is initiated by transient rather than stable protein binding, and the protein-RNA binding dynamics gradually decrease during assembly. This work questions the paradigm of strictly sequential and cooperative ribosome assembly and suggests that transient binding of RNA binding proteins to cellular RNAs could provide a general mechanism to shape nascent RNA folding during RNP assembly.


Assuntos
Dobramento de RNA , RNA Ribossômico/metabolismo , Proteínas de Ligação a RNA/metabolismo , Modelos Biológicos , Conformação de Ácido Nucleico , Ligação Proteica , Estabilidade de RNA , RNA Ribossômico/química , Transcrição Gênica
18.
Cell ; 176(3): 625-635.e14, 2019 01 24.
Artigo em Inglês | MEDLINE | ID: mdl-30682371

RESUMO

Programmed -1 ribosomal frameshifting (-1PRF) is a widely used translation recoding mechanism. HIV-1 expresses Gag-Pol protein from the Gag-coding mRNA through -1PRF, and the ratio of Gag to Gag-Pol is strictly maintained for efficient viral replication. Here, we report that the interferon-stimulated gene product C19orf66 (herein named Shiftless) is a host factor that inhibits the -1PRF of HIV-1. Shiftless (SFL) also inhibited the -1PRF of a variety of mRNAs from both viruses and cellular genes. SFL interacted with the -1PRF signal of target mRNA and translating ribosomes and caused premature translation termination at the frameshifting site. Downregulation of translation release factor eRF3 or eRF1 reduced SFL-mediated premature translation termination. We propose that SFL binding to target mRNA and the translating ribosome interferes with the frameshifting process. These findings identify SFL as a broad-spectrum inhibitor of -1PRF and help to further elucidate the mechanisms of -1PRF.


Assuntos
Proteínas de Fusão gag-pol/genética , HIV-1/genética , Sequência de Bases , Mudança da Fase de Leitura do Gene Ribossômico/genética , Regulação Viral da Expressão Gênica/genética , Humanos , Conformação de Ácido Nucleico , Biossíntese de Proteínas , RNA Mensageiro/metabolismo , RNA Viral/metabolismo , Ribossomos/metabolismo , Replicação Viral/genética
19.
Cell ; 178(3): 612-623.e12, 2019 07 25.
Artigo em Inglês | MEDLINE | ID: mdl-31348888

RESUMO

Group II introns are a class of retroelements that invade DNA through a copy-and-paste mechanism known as retrotransposition. Their coordinated activities occur within a complex that includes a maturase protein, which promotes splicing through an unknown mechanism. The mechanism of splice site exchange within the RNA active site during catalysis also remains unclear. We determined two cryo-EM structures at 3.6-Å resolution of a group II intron reverse splicing into DNA. These structures reveal that the branch-site domain VI helix swings 90°, enabling substrate exchange during DNA integration. The maturase assists catalysis through a transient RNA-protein contact with domain VI that positions the branch-site adenosine for lariat formation during forward splicing. These findings provide the first direct evidence of the role the maturase plays during group II intron catalysis. The domain VI dynamics closely parallel spliceosomal branch-site helix movement and provide strong evidence for a retroelement origin of the spliceosome.


Assuntos
Splicing de RNA , DNA Polimerase Dirigida por RNA/química , RNA/química , Domínio Catalítico , Microscopia Crioeletrônica , Escherichia coli/genética , Escherichia coli/metabolismo , Conformação de Ácido Nucleico , Estrutura Terciária de Proteína , RNA/metabolismo , DNA Polimerase Dirigida por RNA/metabolismo , Retroelementos , Spliceossomos/química
20.
Cell ; 179(3): 604-618, 2019 10 17.
Artigo em Inglês | MEDLINE | ID: mdl-31607512

RESUMO

DNA-RNA hybrids play a physiological role in cellular processes, but often, they represent non-scheduled co-transcriptional structures with a negative impact on transcription, replication and DNA repair. Accumulating evidence suggests that they constitute a source of replication stress, DNA breaks and genome instability. Reciprocally, DNA breaks facilitate DNA-RNA hybrid formation by releasing the double helix torsional conformation. Cells avoid DNA-RNA accumulation by either preventing or removing hybrids directly or by DNA repair-coupled mechanisms. Given the R-loop impact on chromatin and genome organization and its potential relation with genetic diseases, we review R-loop homeostasis as well as their physiological and pathological roles.


Assuntos
DNA/genética , Conformação de Ácido Nucleico , Estruturas R-Loop/genética , RNA/genética , Cromatina/química , Cromatina/genética , DNA/química , Quebras de DNA , Reparo do DNA/genética , Replicação do DNA/genética , Instabilidade Genômica/genética , Homeostase/genética , Humanos , RNA/química , Transcrição Gênica
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